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US20150101509A1 - Method of Manufacturing a Stiff Engineered Composite - Google Patents

Method of Manufacturing a Stiff Engineered Composite Download PDF

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Publication number
US20150101509A1
US20150101509A1 US14/510,912 US201414510912A US2015101509A1 US 20150101509 A1 US20150101509 A1 US 20150101509A1 US 201414510912 A US201414510912 A US 201414510912A US 2015101509 A1 US2015101509 A1 US 2015101509A1
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US
United States
Prior art keywords
compressed
set forth
mass
biocomposite material
composite body
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US14/510,912
Inventor
Gavin R. McIntyre
Jeffrey D. Betts
Gregory Tudryn
Liam Mooney
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Ecovative LLC
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Individual
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Filing date
Publication date
Application filed by Individual filed Critical Individual
Priority to US14/510,912 priority Critical patent/US20150101509A1/en
Assigned to ECOVATIVE DESIGN LLC reassignment ECOVATIVE DESIGN LLC ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: MCINTYRE, GAVIN R., BETTS, JEFFERY D., TUDRYN, GREGORY JOHN, MOONEY, LIAM
Publication of US20150101509A1 publication Critical patent/US20150101509A1/en
Priority to US15/258,685 priority patent/US11420366B2/en
Priority to US17/821,121 priority patent/US20230219265A1/en
Assigned to ECOVATIVE LLC reassignment ECOVATIVE LLC CHANGE OF NAME (SEE DOCUMENT FOR DETAILS). Assignors: ECOVATIVE DESIGN LLC
Abandoned legal-status Critical Current

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    • BPERFORMING OPERATIONS; TRANSPORTING
    • B29WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29CSHAPING OR JOINING OF PLASTICS; SHAPING OF MATERIAL IN A PLASTIC STATE, NOT OTHERWISE PROVIDED FOR; AFTER-TREATMENT OF THE SHAPED PRODUCTS, e.g. REPAIRING
    • B29C44/00Shaping by internal pressure generated in the material, e.g. swelling or foaming ; Producing porous or cellular expanded plastics articles
    • B29C44/34Auxiliary operations
    • B29C44/3415Heating or cooling
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B27WORKING OR PRESERVING WOOD OR SIMILAR MATERIAL; NAILING OR STAPLING MACHINES IN GENERAL
    • B27NMANUFACTURE BY DRY PROCESSES OF ARTICLES, WITH OR WITHOUT ORGANIC BINDING AGENTS, MADE FROM PARTICLES OR FIBRES CONSISTING OF WOOD OR OTHER LIGNOCELLULOSIC OR LIKE ORGANIC MATERIAL
    • B27N1/00Pretreatment of moulding material
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B27WORKING OR PRESERVING WOOD OR SIMILAR MATERIAL; NAILING OR STAPLING MACHINES IN GENERAL
    • B27NMANUFACTURE BY DRY PROCESSES OF ARTICLES, WITH OR WITHOUT ORGANIC BINDING AGENTS, MADE FROM PARTICLES OR FIBRES CONSISTING OF WOOD OR OTHER LIGNOCELLULOSIC OR LIKE ORGANIC MATERIAL
    • B27N3/00Manufacture of substantially flat articles, e.g. boards, from particles or fibres
    • B27N3/002Manufacture of substantially flat articles, e.g. boards, from particles or fibres characterised by the type of binder
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B27WORKING OR PRESERVING WOOD OR SIMILAR MATERIAL; NAILING OR STAPLING MACHINES IN GENERAL
    • B27NMANUFACTURE BY DRY PROCESSES OF ARTICLES, WITH OR WITHOUT ORGANIC BINDING AGENTS, MADE FROM PARTICLES OR FIBRES CONSISTING OF WOOD OR OTHER LIGNOCELLULOSIC OR LIKE ORGANIC MATERIAL
    • B27N3/00Manufacture of substantially flat articles, e.g. boards, from particles or fibres
    • B27N3/06Making particle boards or fibreboards, with preformed covering layers, the particles or fibres being compressed with the layers to a board in one single pressing operation
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B27WORKING OR PRESERVING WOOD OR SIMILAR MATERIAL; NAILING OR STAPLING MACHINES IN GENERAL
    • B27NMANUFACTURE BY DRY PROCESSES OF ARTICLES, WITH OR WITHOUT ORGANIC BINDING AGENTS, MADE FROM PARTICLES OR FIBRES CONSISTING OF WOOD OR OTHER LIGNOCELLULOSIC OR LIKE ORGANIC MATERIAL
    • B27N3/00Manufacture of substantially flat articles, e.g. boards, from particles or fibres
    • B27N3/08Moulding or pressing
    • B27N3/18Auxiliary operations, e.g. preheating, humidifying, cutting-off
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B27WORKING OR PRESERVING WOOD OR SIMILAR MATERIAL; NAILING OR STAPLING MACHINES IN GENERAL
    • B27NMANUFACTURE BY DRY PROCESSES OF ARTICLES, WITH OR WITHOUT ORGANIC BINDING AGENTS, MADE FROM PARTICLES OR FIBRES CONSISTING OF WOOD OR OTHER LIGNOCELLULOSIC OR LIKE ORGANIC MATERIAL
    • B27N3/00Manufacture of substantially flat articles, e.g. boards, from particles or fibres
    • B27N3/08Moulding or pressing
    • B27N3/26Moulding or pressing characterised by using continuously acting presses having a heated press drum and an endless belt to compress the material between belt and drum
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B29WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29CSHAPING OR JOINING OF PLASTICS; SHAPING OF MATERIAL IN A PLASTIC STATE, NOT OTHERWISE PROVIDED FOR; AFTER-TREATMENT OF THE SHAPED PRODUCTS, e.g. REPAIRING
    • B29C44/00Shaping by internal pressure generated in the material, e.g. swelling or foaming ; Producing porous or cellular expanded plastics articles
    • B29C44/34Auxiliary operations
    • B29C44/36Feeding the material to be shaped
    • B29C44/46Feeding the material to be shaped into an open space or onto moving surfaces, i.e. to make articles of indefinite length
    • B29C44/50Feeding the material to be shaped into an open space or onto moving surfaces, i.e. to make articles of indefinite length using pressure difference, e.g. by extrusion or by spraying
    • CCHEMISTRY; METALLURGY
    • C08ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
    • C08LCOMPOSITIONS OF MACROMOLECULAR COMPOUNDS
    • C08L3/00Compositions of starch, amylose or amylopectin or of their derivatives or degradation products
    • C08L3/02Starch; Degradation products thereof, e.g. dextrin
    • CCHEMISTRY; METALLURGY
    • C08ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
    • C08LCOMPOSITIONS OF MACROMOLECULAR COMPOUNDS
    • C08L89/00Compositions of proteins; Compositions of derivatives thereof
    • CCHEMISTRY; METALLURGY
    • C08ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
    • C08LCOMPOSITIONS OF MACROMOLECULAR COMPOUNDS
    • C08L97/00Compositions of lignin-containing materials
    • C08L97/02Lignocellulosic material, e.g. wood, straw or bagasse
    • CCHEMISTRY; METALLURGY
    • C12BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
    • C12NMICROORGANISMS OR ENZYMES; COMPOSITIONS THEREOF; PROPAGATING, PRESERVING, OR MAINTAINING MICROORGANISMS; MUTATION OR GENETIC ENGINEERING; CULTURE MEDIA
    • C12N1/00Microorganisms, e.g. protozoa; Compositions thereof; Processes of propagating, maintaining or preserving microorganisms or compositions thereof; Processes of preparing or isolating a composition containing a microorganism; Culture media therefor
    • C12N1/14Fungi; Culture media therefor
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B27WORKING OR PRESERVING WOOD OR SIMILAR MATERIAL; NAILING OR STAPLING MACHINES IN GENERAL
    • B27NMANUFACTURE BY DRY PROCESSES OF ARTICLES, WITH OR WITHOUT ORGANIC BINDING AGENTS, MADE FROM PARTICLES OR FIBRES CONSISTING OF WOOD OR OTHER LIGNOCELLULOSIC OR LIKE ORGANIC MATERIAL
    • B27N3/00Manufacture of substantially flat articles, e.g. boards, from particles or fibres
    • B27N3/02Manufacture of substantially flat articles, e.g. boards, from particles or fibres from particles
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B27WORKING OR PRESERVING WOOD OR SIMILAR MATERIAL; NAILING OR STAPLING MACHINES IN GENERAL
    • B27NMANUFACTURE BY DRY PROCESSES OF ARTICLES, WITH OR WITHOUT ORGANIC BINDING AGENTS, MADE FROM PARTICLES OR FIBRES CONSISTING OF WOOD OR OTHER LIGNOCELLULOSIC OR LIKE ORGANIC MATERIAL
    • B27N3/00Manufacture of substantially flat articles, e.g. boards, from particles or fibres
    • B27N3/04Manufacture of substantially flat articles, e.g. boards, from particles or fibres from fibres
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B27WORKING OR PRESERVING WOOD OR SIMILAR MATERIAL; NAILING OR STAPLING MACHINES IN GENERAL
    • B27NMANUFACTURE BY DRY PROCESSES OF ARTICLES, WITH OR WITHOUT ORGANIC BINDING AGENTS, MADE FROM PARTICLES OR FIBRES CONSISTING OF WOOD OR OTHER LIGNOCELLULOSIC OR LIKE ORGANIC MATERIAL
    • B27N3/00Manufacture of substantially flat articles, e.g. boards, from particles or fibres
    • B27N3/08Moulding or pressing
    • B27N3/20Moulding or pressing characterised by using platen-presses
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B27WORKING OR PRESERVING WOOD OR SIMILAR MATERIAL; NAILING OR STAPLING MACHINES IN GENERAL
    • B27NMANUFACTURE BY DRY PROCESSES OF ARTICLES, WITH OR WITHOUT ORGANIC BINDING AGENTS, MADE FROM PARTICLES OR FIBRES CONSISTING OF WOOD OR OTHER LIGNOCELLULOSIC OR LIKE ORGANIC MATERIAL
    • B27N7/00After-treatment, e.g. reducing swelling or shrinkage, surfacing; Protecting the edges of boards against access of humidity
    • B27N7/005Coating boards, e.g. with a finishing or decorating layer
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B29WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29KINDEXING SCHEME ASSOCIATED WITH SUBCLASSES B29B, B29C OR B29D, RELATING TO MOULDING MATERIALS OR TO MATERIALS FOR MOULDS, REINFORCEMENTS, FILLERS OR PREFORMED PARTS, e.g. INSERTS
    • B29K2995/00Properties of moulding materials, reinforcements, fillers, preformed parts or moulds
    • B29K2995/0037Other properties
    • B29K2995/0063Density
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B29WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29LINDEXING SCHEME ASSOCIATED WITH SUBCLASS B29C, RELATING TO PARTICULAR ARTICLES
    • B29L2031/00Other particular articles
    • B29L2031/44Furniture or parts thereof

Definitions

  • This invention relates to a method of manufacturing a stiff engineered composite. More particularly, this invention relates to a method of producing stiff mycelium bound parts.
  • nonstructural boards rely on compressing wood veneer sheets, fibers, or particles and binding them together with resin to form composites like hardwood plywood and medium density fiberboard, which are used for applications such as furniture and fixtures, cabinetry, paneling, molding and athletic equipment.
  • the ingredients for these typical non-structural boards require considerable pre-processing, and the feedstocks, especially timber and resins, are subject to considerable price volatility.
  • many of the resins used to produce non-structural boards are carcinogenic and can emit volatile organic compounds (VOCs).
  • OSB oriented strand board
  • softwood plywood are used for applications such as wall sheathing, floor sheathing, and concrete framework.
  • the invention provides a method of achieving adhesion between a matrix of fungal mycelium and a slurry of particles and/or fibers (natural or synthetic) through a heated compression process.
  • fungal mycelium can bind natural (lignocellulosic and chitinous waste streams) and/or synthetic (fiberglass) particles together during a controlled incubation process.
  • the mycelium in the latter instance serves as a grown adhesive, digesting a portion of the particles and fibers while encapsulating the slurry in a network of a vegetative tissue.
  • the extracellular matrix of mycelium known as the matrix layer of the cell wall and comprised of polysaccharides (alpha and beta glucans), polymerized amino sugars (N-glucosamine, chitin), monoproteins, and phosopholipids, can serve as a traditional adhesive when heated and dried concurrently.
  • the mycelium is either grown on, or mixed with, an engineered substrate of natural and/or synthetic particles and/or fibers and then compressed under heat and dried to desired geometry.
  • the heating of the mycelium matrix actually provides value in two places, which makes this process distinctly different from the prior art.
  • the fungal cell wall is comprised of chitin and glucans.
  • the glucans when heated and saturated with the moisture embedded within the composite, begin to flow like a traditional resin and when dried stick the particles together beyond the traditional mycelium matrix.
  • biocomposite material By creating sheets of material made from particles bound together with mycelium (hereinafter “the biocomposite material”) and compressing these sheets together, bio-based nonstructural boards can be created with feedstocks.
  • the sheets of biocomposite material can be grown together or compressed together with heat to set and dry the final product.
  • the sheets of biocomposite material can vary in product density, fiber content, particle size, and fiber orientation to selectively promote specific mechanical properties (screw hold strength, core shear, modulus of elasticity).
  • a large mass of mycelium can be cultivated on particles or fibers, milled to a consistent particle size and then pressed in a constrained heated tool.
  • VOCs are not a concern for structural boards produced in this manner because no VOC emitting resins are used in the production process, and the cross-linking occurs between the biochemical construct of the fungal cell wall.
  • veneers, textiles, or laminates that are comprised of wood, plastics (polyester scrim), foam, natural fibers, stone, metal, or the like can be grown and bound to the face or internal structure of the mycelium and particle sheets. These laminates can be stacked and interlaid to the mycelium colonized particle sheets, and then compressed to a desired form (flat or molded).
  • Structural boards can be created by compressing thick blocks of grown material or layered sheets of grown material (particles and/or fibers bound by mycelium) while drying with heat (radiation, conduction, or convective).
  • the compressed biocomposite material can be easily and cheaply shaped during production.
  • the grown material can be compressed in an inexpensive mold (fiberglass, carbon fiber, composite, wooden and/or metal, e.g. aluminum), giving the material the desired shape and material properties without creating waste.
  • the final product can be dried in the tool to promote cross-linking between the natural polymers within the mycelium, which can occur within the magnitude of minutes.
  • the grown material can also be compressed in a conductive tool that is heated as well to the final shape, either with a heated platen or inserted cartridges.
  • FIG. 1 schematically illustrates the steps in the method of manufacturing a stiff engineered composite in accordance with the invention.
  • an engineered substrate bound with mycelium 10 is grown into a sheet of appropriate dimensions in step 1.
  • the basic steps of the method include:
  • the engineered substrate 10 containing some residual moisture and, for example in the form of a flat rectangular plate or tile, is placed in a compression fixture 11 , for example, a pinch press 11 .
  • the pinch press 11 has a bottom platen 12 that can be heated and that is formed with a mold body 13 of predetermined shape, for example, of semi-cylindrical shape.
  • the pinch press 11 also has a top platen 14 for engaging on the bottom platen 12 with a cavity 15 within the platen 14 for mating about the mold body 13 .
  • a semi-cylindrical gap exists between the mold body 13 and the cavity 15 .
  • the engineered substrate 10 should contain a minimum of 10% moisture by weight. Steam may also be injected a dry mass during compression to induce the adhesion.
  • the engineered substrate 10 should contain a minimum of 40% moisture by weight so that the moisture may be transformed into steam during the heated pressing process as otherwise live steam would be injected into the dry mass during compression to induce the adhesion.
  • the top platen 14 is lowered onto the bottom platen 12 in order to compress, trim and dry the biocomposite material of the substrate 10 .
  • the pinch press 11 is heated to 300° F. while compressing the biocomposite material of the substrate to between 10 psi and 1500 psi.
  • the length of time that the biocomposite material of the substrate 10 is retained within the pinch press 11 under heat and pressure is sufficient to the reduce the moisture content of the material to less than 10% by weight and to promote cross-linking between the natural polymers within the mycelium.
  • the biocomposite material can also be held in the pinch press 11 for a time sufficient to achieve a product stiffness that is sufficient to remove the compressed material from the pinch press 11 (“tool” or “buck”).
  • step 3 of the method with the pinch press 11 opened, a compressed monolithic body 16 is removed from the pinch press 11 .
  • the monolithic body 16 has a semi-cylindrical shape and is characterized as being a rigid shell.
  • the substrate of engineered particles and/or fibers (“biocomposite material”), either colonized with mycelium (bioactive) or intermixed with mycelium (inactive), can also include cation salts (divalent Na2+ and the like) that can assist with cross-linking between the polysaccharides and amino sugars. Acids (hydrochloric, acetic, lactic) can be provided as well to ensure the substrate stays protonated.
  • the cation salts can be applied during initial substrate preparation and sterilization.
  • the cations can be applied in a solution by either vacuum infusing the solution into the substrate or immersing the substrate in a cation solution for a certain period of time.
  • ⁇ treatments such as laminates, veneers, or supplemental fibers, can be bound to the engineered substrate.
  • a laminate can be placed on the face of the engineered substrate during the initial growth step. This is “colonization”.
  • a laminate may be applied to the engineered substrate just before pressing and bound with only the glucans.
  • the laminate treatments are applied to the surfaces, or in between tiles if multiple colonized blocks are used, and pressed with a heated platen until the biocomposite material is ⁇ 10% moisture.
  • Laminations and inserts can also be pressed into the surface of a colonized engineered substrate, again using the adhesion from the glucans.
  • the laminations can include non-woven textiles, woven products (jute, fiberglass), and Kraft paper, which become an integrated component of the final part.
  • Inserts can be positioned in either the lower or upper platens of the compression tooling, and can be pressed into the biological composite during the setting process.
  • the biocomposite material can also be dried to a particular moisture content with conduction, convection, and/or radiation at atmospheric pressure, and then compression dried to complete the process.
  • the biocomposite material can be dried to a moisture content of between 6% and 30% during the heated compression stage to retain enough moisture to impart electrical conductivity such that the resultant compressed monolithic body can be powder coated since a powder coating process requires the material to be electrically conductive and moisture, rather than metals salts, is used to impart this characteristic.
  • the heated compression tool which forms the final product geometry, can include surface finishes that translate to the final part.
  • the colonized biocomposite material can be compressed and dried with a series of heated rollers that narrow in cross-section as the material is conveyed through the process.
  • Sheets of biocomposite material can be grown together or compressed together with heat to set and dry the final product.
  • the sheets of biocomposite material can vary in product density, fiber content, particle size, and fiber orientation to selectively promote specific mechanical properties (screw hold strength, core shear, modulus of elasticity). Additionally, VOCs are not a concern for structural boards produced in this manner because no VOC emitting resins are used in the production process, and the cross-linking occurs between the biochemical construct of the fungal cell wall.
  • the method of the invention allows a final part to have a density between 18 and 60 lbs/ft 3 , an elastic modulus up to 440 ksi and a modulus of rupture as high as 2500 psi.
  • the particles may be poured into an enclosure of the desired shape and then heated and pressed with the process parameters described above.
  • the final product has a Modulus of Rupture of 111 psi and a Modulus of Elasticity of 2840 psi.
  • the method provides for crosslinking to occur between the glucans in the mycelia that are solubilized during the compression and moisture release process. This can be further mediated with mild acids that assist in protonating and cross-linking.
  • the biocomposite material is subjected to compression alone to form a compressed monolithic body, e.g. as described in as described in Provisional Patent Application 61/860,386, filed Jul. 31, 2103, and then subjected to heat and pressure to promote cross-linking between the natural polymers within the mycelium.
  • the surface may be obtained by embossing at least one face of the board with a predetermined sculptured feature using an embossing surface on the face of the press that is pressed against the board.
  • a mold release such as a spray release or a parchment paper, may be used on the surfaces of the mold to enable an easy ejection of the colonized substrate from the mold.
  • the mycelium can be grown out separately and then added at a 10% moisture content to a collection of dried discrete particles as set forth in the following examples.
  • the compressed composite bodies of the invention that are pressed to 0.25′′ or less achieve these above metrics.
  • the use of particles in the bodies normally obtain a modulus of elasticity under 250 ksi, whereas the use of fibers instead of particles can obtain a modulus of elasticity well above 250 ksi since the fibers bear more of the tensile strength in flexure.
  • the compressed composite body made in accordance with the methods described herein differs from a compressed composite body made in accordance with the methods described in patent application Ser. No. 14/336,385, filed Jul. 21, 2014, inter alia, in that due to conductive drying, the glucans are cross-linked and all the water is removed.
  • the composite body made in accordance with the invention may be subjected to further processing steps to achieve a desired final product.
  • the composite body may be die cut to a desired three-dimensional shape; drilled or cut to provide openings therein; and the like.
  • an assemblage of flat sheets of biocomposite material, sheets of woven or non-woven laminations and inserts of three-dimensional contour may be heated and pressed together to form a desired final product having an internal shape corresponding to the inserts.

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  • Chemical & Material Sciences (AREA)
  • Life Sciences & Earth Sciences (AREA)
  • Engineering & Computer Science (AREA)
  • Health & Medical Sciences (AREA)
  • Wood Science & Technology (AREA)
  • Organic Chemistry (AREA)
  • Medicinal Chemistry (AREA)
  • Chemical Kinetics & Catalysis (AREA)
  • Polymers & Plastics (AREA)
  • Manufacturing & Machinery (AREA)
  • Forests & Forestry (AREA)
  • Biotechnology (AREA)
  • Bioinformatics & Cheminformatics (AREA)
  • Zoology (AREA)
  • Genetics & Genomics (AREA)
  • Materials Engineering (AREA)
  • Microbiology (AREA)
  • Virology (AREA)
  • Biomedical Technology (AREA)
  • Tropical Medicine & Parasitology (AREA)
  • Botany (AREA)
  • Mycology (AREA)
  • Biochemistry (AREA)
  • General Engineering & Computer Science (AREA)
  • General Health & Medical Sciences (AREA)
  • Mechanical Engineering (AREA)
  • Dry Formation Of Fiberboard And The Like (AREA)
  • Casting Or Compression Moulding Of Plastics Or The Like (AREA)

Abstract

The method of making a compressed biocomposite body includes compressing a mass of biocomposite material comprised of discrete particles and a network of interconnected glucan-containing mycelia cells in the presence of heat and moisture into a compressed body having a density in excess of 18 pcf. Compression may take place batch wise in a press or continuously in a path of narrowing cross-section defined by a series of heated rollers.

Description

  • This application claims the benefit of Provisional Patent Application 61/890,433, filed Oct. 14, 2103.
  • This invention relates to a method of manufacturing a stiff engineered composite. More particularly, this invention relates to a method of producing stiff mycelium bound parts.
  • As is known, conventional methods for producing nonstructural boards rely on compressing wood veneer sheets, fibers, or particles and binding them together with resin to form composites like hardwood plywood and medium density fiberboard, which are used for applications such as furniture and fixtures, cabinetry, paneling, molding and athletic equipment. The ingredients for these typical non-structural boards require considerable pre-processing, and the feedstocks, especially timber and resins, are subject to considerable price volatility. Additionally, many of the resins used to produce non-structural boards are carcinogenic and can emit volatile organic compounds (VOCs).
  • Much like nonstructural boards, structural boards are produced by compressing wood veneer sheets, fibers, or particles and binding them together with resin to form composites like oriented strand board (OSB) and softwood plywood. OSB and softwood plywood are used for applications such as wall sheathing, floor sheathing, and concrete framework. These structural boards face the same concerns that nonstructural boards face because they use similar feedstocks and resins.
  • Many structural and nonstructural boards are used for applications in furniture, cabinetry, and fixtures where they must be cut, milled, and sanded to form the desired shape. Such post processing is expensive and time consuming and creates material waste as the products are shaped. Plastics are also used for these applications and require expensive tools and machines for molding in their production processes.
  • US Published Patent Application 2008/0145577 describes various techniques for making self-supporting composite bodies comprised of discrete particles and a network of interconnected mycelium cells bonding the particles together. As described therein, the composite bodies may be formed into panels as well as into panel systems with a composite core.
  • It is an object of this invention to provide an improved process for the manufacture of a compressed composite body of particle/mycelium.
  • Briefly, the invention provides a method of achieving adhesion between a matrix of fungal mycelium and a slurry of particles and/or fibers (natural or synthetic) through a heated compression process.
  • US Published Patent Application 2008/0145577 has demonstrated that fungal mycelium can bind natural (lignocellulosic and chitinous waste streams) and/or synthetic (fiberglass) particles together during a controlled incubation process. The mycelium in the latter instance serves as a grown adhesive, digesting a portion of the particles and fibers while encapsulating the slurry in a network of a vegetative tissue.
  • The process described within demonstrates that the extracellular matrix of mycelium, known as the matrix layer of the cell wall and comprised of polysaccharides (alpha and beta glucans), polymerized amino sugars (N-glucosamine, chitin), monoproteins, and phosopholipids, can serve as a traditional adhesive when heated and dried concurrently. The mycelium is either grown on, or mixed with, an engineered substrate of natural and/or synthetic particles and/or fibers and then compressed under heat and dried to desired geometry.
  • The heating of the mycelium matrix actually provides value in two places, which makes this process distinctly different from the prior art. The fungal cell wall is comprised of chitin and glucans. The glucans, when heated and saturated with the moisture embedded within the composite, begin to flow like a traditional resin and when dried stick the particles together beyond the traditional mycelium matrix.
  • By creating sheets of material made from particles bound together with mycelium (hereinafter “the biocomposite material”) and compressing these sheets together, bio-based nonstructural boards can be created with feedstocks. The sheets of biocomposite material can be grown together or compressed together with heat to set and dry the final product. The sheets of biocomposite material can vary in product density, fiber content, particle size, and fiber orientation to selectively promote specific mechanical properties (screw hold strength, core shear, modulus of elasticity).
  • Further, a large mass of mycelium can be cultivated on particles or fibers, milled to a consistent particle size and then pressed in a constrained heated tool.
  • Additionally, VOCs are not a concern for structural boards produced in this manner because no VOC emitting resins are used in the production process, and the cross-linking occurs between the biochemical construct of the fungal cell wall.
  • There are significant mechanical advantages garnered from compressing sheets of mycelium bound particles into a single cohesive product with heightened temperatures (200° F.-650° F.) while compressing the biocomposite material at a pressure of from 10 to 1500 psi. These advantages include enhanced modulus of rupture and elasticity (stiffness), and the ability to layer sheets of varying particles size to achieve greater stiffness or dimensional stability (squareness, flatness).
  • Other materials, including veneers, textiles, or laminates, that are comprised of wood, plastics (polyester scrim), foam, natural fibers, stone, metal, or the like can be grown and bound to the face or internal structure of the mycelium and particle sheets. These laminates can be stacked and interlaid to the mycelium colonized particle sheets, and then compressed to a desired form (flat or molded).
  • Structural boards can be created by compressing thick blocks of grown material or layered sheets of grown material (particles and/or fibers bound by mycelium) while drying with heat (radiation, conduction, or convective).
  • Orienting particles within an engineered substrate and then preliminarily binding these with mycelium creates a bio-based product that does not emit VOCs.
  • The compressed biocomposite material can be easily and cheaply shaped during production. The grown material can be compressed in an inexpensive mold (fiberglass, carbon fiber, composite, wooden and/or metal, e.g. aluminum), giving the material the desired shape and material properties without creating waste. The final product can be dried in the tool to promote cross-linking between the natural polymers within the mycelium, which can occur within the magnitude of minutes.
  • The grown material can also be compressed in a conductive tool that is heated as well to the final shape, either with a heated platen or inserted cartridges.
  • These and other objects and advantages of the invention will become more apparent from the following detailed description taken in conjunction with the accompanying drawings wherein:
  • FIG. 1 schematically illustrates the steps in the method of manufacturing a stiff engineered composite in accordance with the invention.
  • Referring to FIG. 1, in accordance with the method of the invention, an engineered substrate bound with mycelium 10 is grown into a sheet of appropriate dimensions in step 1. In this respect, the basic steps of the method include:
      • 1. Obtain substrate constituents, including fungal inoculum, a bulking collection of particles and/or fibers, a nutrient source or variety of nutrient sources, and water.
      • 2. Combine the substrate constituents by mixing together in volumetric or mass ratios to obtain a solid media with the inoculum (cell and/or tissue culture) added during or following the mixing process.
      • 3. Place the growth media in an enclosure or series of enclosures of the desired geometry.
      • 4. Allow the mycelia to grow through the substrate, creating a composite with a geometry matching the enclosure. This may be either the final geometry or the near net geometry of the final product.
      • 4a. For parts that are dried in compression, the mycelium does not have to grow on the engineered substrate but could be grown in a secondary process and thoroughly intermixed to distribute culture just prior to compressive drying (conduction, convection, radiation).
      • 5. Repeat steps 1-3 for applications where materials are layered or embedded to create the desired final composite media. Alternatively to steps 3 and 4, the growth media may be grown as a solid mass, and then ground up for later steps or placed in an enclosure of the desired shape and then be allowed to regrow into that shape.
      • 5a. Repeat steps 1-3 for applications where the materials are grown and colonized, and then alternative to steps 3 and 4, the growth media is milled or particlized into the uniform size. The resultant particles are then compressed into a constrained and heated tool.
  • In step 2 of the method, the engineered substrate 10 containing some residual moisture and, for example in the form of a flat rectangular plate or tile, is placed in a compression fixture 11, for example, a pinch press 11. As illustrated, the pinch press 11 has a bottom platen 12 that can be heated and that is formed with a mold body 13 of predetermined shape, for example, of semi-cylindrical shape. The pinch press 11 also has a top platen 14 for engaging on the bottom platen 12 with a cavity 15 within the platen 14 for mating about the mold body 13. Typically, when the platens 12, 14 are closed together, a semi-cylindrical gap exists between the mold body 13 and the cavity 15.
  • Typically the engineered substrate 10 should contain a minimum of 10% moisture by weight. Steam may also be injected a dry mass during compression to induce the adhesion.
  • Since the glucans are activated by set by steam, the engineered substrate 10 should contain a minimum of 40% moisture by weight so that the moisture may be transformed into steam during the heated pressing process as otherwise live steam would be injected into the dry mass during compression to induce the adhesion.
  • After positioning of the engineered substrate 10 on the mold body 13 of the pinch press 11, the top platen 14 is lowered onto the bottom platen 12 in order to compress, trim and dry the biocomposite material of the substrate 10.
  • During operation, the pinch press 11 is heated to 300° F. while compressing the biocomposite material of the substrate to between 10 psi and 1500 psi. The length of time that the biocomposite material of the substrate 10 is retained within the pinch press 11 under heat and pressure is sufficient to the reduce the moisture content of the material to less than 10% by weight and to promote cross-linking between the natural polymers within the mycelium. The biocomposite material can also be held in the pinch press 11 for a time sufficient to achieve a product stiffness that is sufficient to remove the compressed material from the pinch press 11 (“tool” or “buck”).
  • In step 3 of the method, with the pinch press 11 opened, a compressed monolithic body 16 is removed from the pinch press 11. As illustrated, the monolithic body 16 has a semi-cylindrical shape and is characterized as being a rigid shell.
  • Variations
  • Additional methods can also be used to produce desirable properties in the final composite.
  • 1. The substrate of engineered particles and/or fibers (“biocomposite material”), either colonized with mycelium (bioactive) or intermixed with mycelium (inactive), can also include cation salts (divalent Na2+ and the like) that can assist with cross-linking between the polysaccharides and amino sugars. Acids (hydrochloric, acetic, lactic) can be provided as well to ensure the substrate stays protonated.
  • a. The cation salts can be applied during initial substrate preparation and sterilization.
  • b. The cations can be applied in a solution by either vacuum infusing the solution into the substrate or immersing the substrate in a cation solution for a certain period of time.
  • 2. Surface treatments, such as laminates, veneers, or supplemental fibers, can be bound to the engineered substrate. For example, a laminate can be placed on the face of the engineered substrate during the initial growth step. This is “colonization”. Alternatively, a laminate may be applied to the engineered substrate just before pressing and bound with only the glucans.
  • The laminate treatments are applied to the surfaces, or in between tiles if multiple colonized blocks are used, and pressed with a heated platen until the biocomposite material is <10% moisture.
  • Laminations and inserts can also be pressed into the surface of a colonized engineered substrate, again using the adhesion from the glucans. The laminations can include non-woven textiles, woven products (jute, fiberglass), and Kraft paper, which become an integrated component of the final part.
  • Inserts can be positioned in either the lower or upper platens of the compression tooling, and can be pressed into the biological composite during the setting process.
  • 3. The biocomposite material can also be dried to a particular moisture content with conduction, convection, and/or radiation at atmospheric pressure, and then compression dried to complete the process.
  • 4. The biocomposite material can be dried to a moisture content of between 6% and 30% during the heated compression stage to retain enough moisture to impart electrical conductivity such that the resultant compressed monolithic body can be powder coated since a powder coating process requires the material to be electrically conductive and moisture, rather than metals salts, is used to impart this characteristic.
  • a. The heated compression tool, which forms the final product geometry, can include surface finishes that translate to the final part.
  • 5. The colonized biocomposite material can be compressed and dried with a series of heated rollers that narrow in cross-section as the material is conveyed through the process.
  • Sheets of biocomposite material can be grown together or compressed together with heat to set and dry the final product. The sheets of biocomposite material can vary in product density, fiber content, particle size, and fiber orientation to selectively promote specific mechanical properties (screw hold strength, core shear, modulus of elasticity). Additionally, VOCs are not a concern for structural boards produced in this manner because no VOC emitting resins are used in the production process, and the cross-linking occurs between the biochemical construct of the fungal cell wall.
  • There are significant mechanical advantages garnered from compressing sheets of mycelium bound particles into a single cohesive product with heightened temperatures (200° F.-650° F.). These advantages include enhanced modulus of rupture and elasticity (stiffness), and the ability to layer sheets of varying particles size to achieve greater stiffness or dimensional stability (squareness, flatness). Other materials, including veneers, textiles, or laminates, that are comprised of wood, plastics (polyester scrim), foam, natural fibers, stone, metal, or the like can be grown and bound to the face or internal structure of the mycelium and particle sheets. These laminates can be stacked and interlaid to the mycelium colonized particle sheets, and then compressed to a desired form (flat or molded).
  • The method of the invention allows a final part to have a density between 18 and 60 lbs/ft3, an elastic modulus up to 440 ksi and a modulus of rupture as high as 2500 psi.
  • Further Variations
  • Where the growth media is grown as a solid mass and then ground up to produce particles or pellets with mycelium therein, the particles may be poured into an enclosure of the desired shape and then heated and pressed with the process parameters described above. In this embodiment, the final product has a Modulus of Rupture of 111 psi and a Modulus of Elasticity of 2840 psi.
  • The method provides for crosslinking to occur between the glucans in the mycelia that are solubilized during the compression and moisture release process. This can be further mediated with mild acids that assist in protonating and cross-linking.
  • EXAMPLE 1
    • 1. Kenaf pith (screened over a 0.375″ screen, 42% of mass), maltodextrin (1.6% of mass), calcium sulfate (0.4% of mass), and water (56% of mass) are mixed in an autoclavable bag to form the substrate for fungal growth. For five liters of substrate, the amount of Kenaf pith is 670 grams (g).
    • 2. The bag is sterilized in a pressure cooker at 15 psi and 240° F. for 60 minutes.
    • 3. Millet grain spawn containing fungal tissue is mixed into the substrate (10% [m:m].
    • 4. Plastic tool molds that are 6 inches long, 6 inches wide, and 1 inch deep are filled with inoculated substrate.
    • 5. The substrate is allowed to colonize in the tools for 7 days at ambient laboratory conditions (75° F., 20% relative humidity, 2000 ppm C02)
    • 6. Wooden veneers that are 6 inches wide by 6 inches long and a square of porous plastic with same dimensions are soaked in 10% hydrogen peroxide for 30 minutes. This is a chemical disinfection method that also imparts the correct amount of water, since hydrogen peroxide oxidizes to water.
    • 7. The substrates in the form of tiles are ejected from the mold and stacked in groups of three with a wooden veneer at each surface and interface and the porous plastic square on the side that will be next to an air inlet during compression.
    • 8. The stack of tiles, veneers, and porous plastic is compressed to approximately 3 times density in a compression frame with an air inlet for forced aeration on one side and holes for passive ventilation on the other. For example, as described in Provisional Patent Application 61/860,386, filed Jul. 31, 2103, the disclosure of which is incorporated herein.
    • 9. The compression frame is hooked up to an air pump and the compressed substrate is subjected to forced aeration for 5 days. Alternatively, the compressed substrate may be dried within the compression frame with convective or conductive drying.
    • 10. The compressed composite body is ejected from the compression frame and placed in an aluminum collar of the same exterior dimensions that surrounds the periphery of the compressed composite body. This collar that has the desired features, locks and creates the features and dimensions required of the final part.
    • 11. A heated platen press (at a force of 20 ton and 600° F.) is compressed onto the pre-compressed body for two minutes, such that the body is dried to <10% moisture content.
      The resulting part has a density of 20 lbs/ft3, a modulus of elasticity around 80 ksi, a modulus of rupture around 800 psi, and a screw hold strength around 100 lbf.
  • In this example, the biocomposite material is subjected to compression alone to form a compressed monolithic body, e.g. as described in as described in Provisional Patent Application 61/860,386, filed Jul. 31, 2103, and then subjected to heat and pressure to promote cross-linking between the natural polymers within the mycelium.
  • EXAMPLE 2
    • 1. Kenaf pith (screened over a 0.375″ screen, 42% of mass), maltodextrin (1.6% of mass), calcium sulfate (0.4% of mass), and water (56% of mass) are mixed in an autoclavable bag to form the substrate for fungal growth.
    • 2. The bag is sterilized in a pressure cooker at 15 psi and 240° F. for 60 minutes.
    • 3. Millet grain spawn containing fungal tissue is mixed into the substrate (10% [m:m].
    • 4. Plastic tool molds that are 6 inches long, 6 inches wide, and 1 inch deep are filled with inoculated substrate.
    • 5. The substrate is allowed to colonize in the tools (molds) for 7 days at ambient laboratory conditions (75° F., 20% relative humidity, 2000 ppm C02)
    • 6. The colonized substrate is ejected from the plastic tool that granted the growing mass its original structure and placed in an aluminum collar that is perforated to allow for water to escape.
    • 7. The colonized substrate is placed in a heated platen press (20 ton, 600° F.) and is compressed for four minutes, such that the part is dried to <10% moisture content. The colonized substrate requires between 25 psi and 5000 psi to achieve the maximum compression required.
      The resulting part has a density of 34 lbs/ft3, a modulus of elasticity around 132 ksi, a modulus of rupture around 1698 psi, and a screw hold strength around 24 lbf at half an inch thickness. By way of comparison, a composite for packaging made in accordance with the methods described in US Published Patent Application 2008/0145577 has a density of from 5 to 8 lbs/ft3.
    EXAMPLE 3
    • 1. Kenaf pith (screened over a 0.375″ screen, 42% of mass), maltodextrin (1.6% of mass), calcium sulfate (0.4% of mass), and water (56% of mass) are mixed in an autoclavable bag to form the substrate for fungal growth.
    • 2. The bag is sterilized in a pressure cooker at 15 psi and 240° F. for 60 minutes.
    • 3. Millet grain spawn containing fungal tissue is mixed into the substrate (10%) [m:m].
    • 4. Growth enclosure molds that are fabricated out of thermoformed polyethylene plastic to the final product geometry or near net shape are filled with inoculated substrate.
    • 5. The substrate is allowed to colonize in the tools (molds) for 7 days at ambient laboratory conditions (75° F., 20% relative humidity, 2000 ppm C02)
    • 6. The colonized substrate is ejected from the plastic tool that granted the growing mass its original structure and placed in a structural enclosure of the final product configuration. This second enclosure permits conductive heating and is designed to allow for the installation of embedded inserts or secondary components. The tool is perforated to allow for water to escape.
    • 7. The colonized substrate in the second enclosure is placed in a heated platen press (20 ton, 600° F.) and is compressed for four minutes, such that the part is dried to <10% moisture content.
      The resulting part has a density of 29 lbs/ft3, a modulus of elasticity around 120 ksi, a modulus of rupture around 819 psi, and a screw hold strength around 132 lbf at an inch thickness.
    EXAMPLE 4
    • 1. Kenaf pith (screened over a 0.375″ screen, 42% of mass), maltodextrin (1.6% of mass), calcium sulfate (0.4% of mass), and water (56% of mass) are mixed in an autoclavable bag to form the substrate for fungal growth.
    • 2. The bag is sterilized in a pressure cooker at 15 psi 2. and 240° F. for 60 minutes.
    • 3. Millet grain spawn containing fungal tissue is mixed into the substrate (10% [m:m].
    • 4. Plastic tool molds that are 18 inches long, 18 inches wide, and 1 inch deep are filled with inoculated substrate.
    • 5. The substrate is allowed to colonize in the tools (molds) for 7 days at ambient laboratory conditions (75° F., 20% relative humidity, 2000 ppm CO2)
    • 6. The colonized substrate, in the form of a sheet, is ejected from the plastic tool and aligned in a heated pinch press of a desired geometry.
    • 7. The colonized part is pressed and heated (300° F.) for one minute, such that the part is dried to <10% moisture content, molded to the desired shape, and excess material trimmed from the final product.
    EXAMPLE 5
    • 1. Fabricate the biocomposite material into a flat blank board of 1.25″ thickness with a 0.25″ hemp nonwoven matt grown into either face.
    • 2. Press the flat blank board into the predetermined curved shape, such as a shape for a chair back, along with surface features under a compressive force of 3000 psi and 340° F. for 10 minutes to lock the surface features and get the board to below 10% moisture.
  • The surface may be obtained by embossing at least one face of the board with a predetermined sculptured feature using an embossing surface on the face of the press that is pressed against the board.
  • When using a mold (tool), a mold release, such as a spray release or a parchment paper, may be used on the surfaces of the mold to enable an easy ejection of the colonized substrate from the mold.
  • EXAMPLE 6
    • 1. Kenaf pith (screened over a 0.375″ screen, 42% of mass), maltodextrin (1.6% of mass), calcium sulfate (0.4% of mass), and water (56% of mass) are mixed in an autoclavable bag to form the substrate for fungal growth. For five liters of substrate, the amount of Kenaf pith is 670 grams (g).
    • 2. The bag is sterilized in a pressure cooker at 15 psi and 240° F. for 60 minutes.
    • 3. Millet grain spawn containing fungal tissue is mixed into the substrate (10% [m:m].
    • 4. The substrate is allowed to colonize in the tools for 7 days at ambient laboratory conditions (75° F., 20% relative humidity, 2000 ppm CO2)
    • 5. The colonized substrate is dried to 30% moisture in a forced convection oven at 180° F. for 12 hours.
    • 6. The resultant mass is hammer milled through a 0.125″ screen, and then passed over a 38 mesh screen to remove fines.
    • 7. The particles are positioned in a heated cavity at 380° F., and then compressed into the molded cavity with a featured platen under 30 tons of force. The materials are held for four minutes
    • 8. The final product is ejected and allowed to cool to room temperature before loading.
  • In a further variation of the method, the mycelium can be grown out separately and then added at a 10% moisture content to a collection of dried discrete particles as set forth in the following examples.
  • EXAMPLE 7
    • 1. Mycelium is cultivated on malt extract (32 g per liter) for 7 days at ambient laboratory conditions (75° F., 20% relative humidity, 2000 ppm C02) until a sheet of mycelium is formed.
    • 2. The harvested mycelium sheet is freeze dried.
    • 3. The resultant mass is hammer milled through a 0.0625″ screen
    • 4. Kenaf pith is hammer milled through a 22 mesh and over a 38 mesh screen.
    • 5. The kenaf pith and mycelium fragments are blended together at a 9:1 ratio (m:m)
      • 6. The blended together particles are positioned in a heated cavity at 380° F., and then compressed into a mold cavity with a featured platen under 30 tons of force and held for four minutes to form a cohesive product.
      • 7. The final product is then ejected from the mold and allowed to cool to room temperature before loading.
      • 8. The resultant product offered a 31 lb/ft3 density, a MoR of 206 psi, and a MoE of 27050 psi.
    EXAMPLE 8
    • 1. Mycelium is cultivated on malt extract (32 g per liter) for 7 days at ambient laboratory conditions (75° F., 20% relative humidity, 2000 ppm C02) until a sheet of mycelium is formed.
    • 2. The harvested mycelium sheet is freeze dried.
    • 3. The resultant mass is hammer milled through a 0.0625″ screen.
    • 4. The mycelium particles are positioned in a heated cavity at 380° F., and then compressed into a mold cavity with a featured platen under 30 tons of force and. held for ten minutes to form a cohesive product.
    • 5. The final product is ejected and allowed to cool to room temperature before loading.
    • 6. The resultant product (i.e. compressed mycelium) offered a 42 lb/ft3 density, an MoR of 507 psi, and an MoE of 48525 psi.
  • The invention thus provides a compressed composite body of particle/mycelium that is characterized in being a rigid body having a density in the range of from 18 to 60 lbs/ft3, a modulus of elasticity of up to 250 ksi (1 k=1000 psi) and a modulus of rupture of up to 2500 psi.
  • The compressed composite bodies of the invention that are pressed to 0.25″ or less achieve these above metrics. The use of particles in the bodies normally obtain a modulus of elasticity under 250 ksi, whereas the use of fibers instead of particles can obtain a modulus of elasticity well above 250 ksi since the fibers bear more of the tensile strength in flexure.
  • The compressed composite body made in accordance with the methods described herein differs from a compressed composite body made in accordance with the methods described in patent application Ser. No. 14/336,385, filed Jul. 21, 2014, inter alia, in that due to conductive drying, the glucans are cross-linked and all the water is removed.
  • The composite body made in accordance with the invention may be subjected to further processing steps to achieve a desired final product. For example, the composite body may be die cut to a desired three-dimensional shape; drilled or cut to provide openings therein; and the like.
  • Further, an assemblage of flat sheets of biocomposite material, sheets of woven or non-woven laminations and inserts of three-dimensional contour (i.e. inserts on non-flattened shape) may be heated and pressed together to form a desired final product having an internal shape corresponding to the inserts.

Claims (28)

What is claimed is:
1. A method of making a composite body comprising the steps of
obtaining a mass of biocomposite material comprised of discrete particles, a network of interconnected glucan-containing mycelia cells extending around the discrete particles and a moisture content of from 45% to 70%;
placing the biocomposite material in a compression fixture;
heating the biocomposite material in the compression fixture while compressing the biocomposite material into a compressed body of a desired density and shape within said compression fixture;
maintaining the compressed body under heat and compression for a time sufficient to allow cross-linking between the glucans in said mycelia cells to bind the discrete particles together in the compressed body;
removing the compressed body from the compression fixture; and
heating the removed compressed body to dehydrate the compressed body to reduce said moisture content to less than 30% and to deactivate the mycelia cells.
2. A method as set forth in claim 1 wherein said step of heating reduces said moisture content to a range of from 6% to 30% to impart electrical conductivity to the removed compressed body.
3. A method as set forth in claim 1 wherein said step of heating reduces said moisture content of less than 10%.
4. A method as set forth in claim 1 wherein said step of heating includes heating the biocomposite material to a temperature of from 250° F. to and 650° F. while compressing the biocomposite material at a pressure of from 10 to 1500 psi.
5. A method as set forth in claim 4 wherein said step of heating includes heating the biocomposite material to 300° F.
6. A method as set forth in claim 4 wherein the biocomposite material is compressed for a time of between 4 minutes and 15 minutes.
7. A method as set forth in claim 1 further comprising the step of placing a lamination on a surface of the biocomposite material in the compression fixture prior to said step of heating the biocomposite material whereby the lamination is integrated into the compressed body.
8. A method as set forth in claim 1 wherein said compression fixture includes at least one insert for pressing into the biocomposite material during said step of heating the biocomposite material.
9. A method as set forth in claim 1 wherein said compression fixture is a pinch press for compressing the biocomposite material into a compressed body in a batch-like manner.
10. A method as set forth in claim 1 wherein said compression fixture includes a series of heated rollers defining a path of narrowing cross-section for compressing the biocomposite material into a compressed body in a continuous manner.
11. A method of making a composite body comprising the steps of
obtaining a mass of biocomposite material comprised of discrete particles, a network of interconnected glucan-containing mycelia cells extending around the discrete particles and a moisture content of greater than 10% by weight;
molding said mass into a plurality of tiles of rectangular shape;
stacking said tiles in alternating manner with a plurality of wooden veneers and with a plate of porous plastic on an underside thereof to from a stack;
compressing said stack to compress said tiles to approximately three times density while drying the compressed tiles to obtain a pre-compressed biocomposite body;
thereafter compressing said pre-compressed biocomposite body at a force of 20 tons and at a temperature of 600° F. for a time of two minutes while reducing the moisture content to less than 10% to obtain a compressed composite body.
12. A method as set forth in claim 11 wherein said compressed composite body has a density of 20 lbs/ft3, a modulus of elasticity around 80 ksi, a modulus of rupture around 800 psi, and a screw hold strength around 100 lbf.
13. A method of making a composite body comprising the steps of
obtaining a mass of biocomposite material comprised of discrete particles, a network of interconnected glucan-containing mycelia cells extending around the discrete particles and a moisture content of greater than 10% by weight; and
thereafter compressing said mass at a pressure between 25 psi and 5000 psi and at a temperature of 600° F. for a time of four minutes while reducing the moisture content to less than 10% to obtain a compressed composite body.
14. A method as set forth in claim 13 wherein said compressed composite body has a density of 34 lbs/ft3, a modulus of elasticity around 132 ksi, a modulus of rupture around 1698 psi, and a screw hold strength around 24 lbf at half an inch thickness.
15. A method as set forth in claim 13 wherein said compressed composite body has a density of 29 lbs/ft3, a modulus of elasticity around 120 ksi, a modulus of rupture around 819 psi, and a screw hold strength around 132 lbf at an inch thickness.
16. A method of making a composite body comprising the steps of
obtaining a mass of biocomposite material comprised of discrete particles, a network of interconnected glucan-containing mycelia cells extending around the discrete particles and a moisture content of greater than 10% by weight; and
thereafter compressing said mass at a pressure between 25 psi and 5000 psi and at a temperature of 300° F. for a time of one minute while reducing the moisture content to less than 10% to obtain a compressed composite body.
17. A method as set forth in claim 16 wherein said mass is molded into a sheet prior to said step of compressing and pressed into a deformed geometric shape.
18. A method as set forth in claim 17 wherein said sheet has dimensions of 18 inches by 18 inches by 1 inch and said deformed geometric shape is a semi-cylindrical shape.
19. A method of making a composite body comprising the steps of
obtaining a mass of biocomposite material comprised of discrete particles, a network of interconnected glucan-containing mycelia cells extending around the discrete particles and a moisture content of greater than 10% by weight;
forming said mass of biocomposite material into a flat blank board of 1.25″ thickness with a 0.25″ hemp nonwoven matt grown into at least one face of said flat blank board;
thereafter compressing said flat blank board into the predetermined curved shape under a compressive force of 3000 psi and at a temperature of 340° F. for a time of 10 minutes while reducing the moisture content to less than 10% to obtain a compressed composite body of curved shape.
20. A method as set forth in claim 19 wherein said step of forming said mass of biocomposite material into a flat blank board includes embossing said at least one face with a predetermined sculptured feature.
21. A method of making a composite body comprising the steps of
cultivating mycelium into a sheet;
freeze drying said sheet;
thereafter milling said dried sheet to form a first mass of particles;
milling Kenaf pith to form a second mass of particles;
blending said first mass of particles and said second mass of particles into a mixture;
thereafter heating and compressing said mixture in a mold cavity for a time sufficient to form a cohesive product; and
removing said product from the mold as a self-supporting composite body.
22. A method as set forth in claim 21 wherein said step of cultivating mycelium into a sheet includes cultivating the mycelium on malt extract at a rate of 32 g per liter for 7 days at ambient conditions of 75° F., 20% relative humidity and 2000 ppm C02 until said sheet of mycelium is formed.
23. A method as set forth in claim 21 wherein said step of milling said dried sheet includes hammer milling through a 0.0625″ screen.
24. A method as set forth in claim 21 wherein said step of milling Kenaf pith includes hammer milling through a 22 mesh and over a 38 mesh screen.
25. A method as set forth in claim 21 wherein said step of blending blends said kenaf pith and said mycelium together at a 9:1 ratio.
26. A method as set forth in claim 21 wherein said step of heating and compressing said mixture includes heating the mold cavity to 380° F. and compressing said mixture under 30 tons of force for four minutes to form the cohesive product.
27. A self-supporting composite body comprising a substrate of discrete particles and a network of interconnected mycelia cells extending through and around the discrete particles and bonding the discrete particles together, said composite body being characterized in being stiff and in having a density between 18 and 60 pounds per cubic foot (pcf), a modulus of elasticity of up to 250 ksi and a modulus of rupture of up to 2500 psi.
28. A self-supporting composite body comprising a substrate of discrete fibers and a network of interconnected mycelia cells extending through and around the discrete fibers and bonding the discrete fibers together, said composite body being characterized in being stiff and in having a density between 18 and 60 pounds per cubic foot (pcf), a modulus of elasticity greater than 250 ksi and a modulus of rupture of up to 2500 psi.
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Cited By (29)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20170210041A1 (en) * 2014-07-30 2017-07-27 Breton Spa Improvement of the method for manufacturing conglomerate slabs
WO2020006133A1 (en) * 2018-06-26 2020-01-02 Mycoworks, Inc. Fungal composites comprising mycelium and an embedded material
AU2015271912B2 (en) * 2015-12-17 2020-02-20 Ecovative Design Llc Method of manufacturing a stiff engineered composite
US11001801B2 (en) 2016-03-01 2021-05-11 The Fynder Group, Inc. Filamentous fungal biomats, methods of their production and methods of their use
US11015059B2 (en) 2019-05-23 2021-05-25 Bolt Threads, Inc. Composite material, and methods for production thereof
US11118305B2 (en) 2019-06-18 2021-09-14 The Fynder Group, Inc. Fungal textile materials and leather analogs
CN114071992A (en) * 2020-02-03 2022-02-18 麦克沃克斯股份有限公司 Mycelium and novel microstructures of mycelium-based materials
US11266085B2 (en) 2017-11-14 2022-03-08 Ecovative Design Llc Increased homogeneity of mycological biopolymer grown into void space
US11272726B2 (en) 2019-02-27 2022-03-15 The Fynder Group, Inc. Food materials comprising filamentous fungal particles and membrane bioreactor design
US11277979B2 (en) 2013-07-31 2022-03-22 Ecovative Design Llc Mycological biopolymers grown in void space tooling
US11293005B2 (en) 2018-05-07 2022-04-05 Ecovative Design Llc Process for making mineralized mycelium scaffolding and product made thereby
US11297866B2 (en) 2017-08-30 2022-04-12 The Fynder Group, Inc. Bioreactor system for the cultivation of filamentous fungal biomass
US11343979B2 (en) 2018-05-24 2022-05-31 Ecovative Design Llc Process and apparatus for producing mycelium biomaterial
US11359074B2 (en) 2017-03-31 2022-06-14 Ecovative Design Llc Solution based post-processing methods for mycological biopolymer material and mycological product made thereby
US11359174B2 (en) 2018-10-02 2022-06-14 Ecovative Design Llc Bioreactor paradigm for the production of secondary extra-particle hyphal matrices
US11420366B2 (en) 2013-10-14 2022-08-23 Ecovative Design Llc Method of manufacturing a stiff engineered composite
WO2022226322A1 (en) 2021-04-23 2022-10-27 Bolt Threads, Inc. A composite material with enhanced resistance, and methods for production thereof
US20230044292A1 (en) * 2021-08-04 2023-02-09 Hyundai Mobis Co., Ltd. Press apparatus for vehicle crash pads comprising real wood sheets
US11752661B2 (en) * 2018-05-21 2023-09-12 5R Technologies Sdn. Bhd. Natural effect panel and method of fabricating the same
US11866691B2 (en) 2020-06-10 2024-01-09 Okom Wrks Labs, Pbc Method for creating a stiff, rigid mycelium-based biocomposite material for use in structural and non-structural applications
US11920126B2 (en) 2018-03-28 2024-03-05 Ecovative Design Llc Bio-manufacturing process
US11932584B2 (en) 2006-12-15 2024-03-19 Ecovative Design Llc Method of forming a mycological product
US20240139992A1 (en) * 2021-03-01 2024-05-02 Naturloop Ag Compressed cellulosic fiber products and method for producing them
US11997956B2 (en) 2021-01-14 2024-06-04 Massachusetts Institute Of Technology Method for mycotecture
US20240181671A1 (en) * 2021-04-30 2024-06-06 Nilo Global Limited A plastic composite product
US12161069B2 (en) 2015-04-15 2024-12-10 Ecovative Llc High density rigid molded body of composite mycological material
IT202300019614A1 (en) 2023-09-22 2025-03-22 Gianluca Giordano CONTAINERS OR BEEHIVES FOR INSECT BREEDING, ASSEMBLED WITH BIOMATERIAL PANELS.
US12433315B2 (en) 2021-05-04 2025-10-07 Ecovative Llc Aerial mycelia and methods of making same
US12503576B2 (en) 2022-06-09 2025-12-23 Ecovative Llc Solution based post-processing methods for mycological biopolymer material and mycological product made thereby

Families Citing this family (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP3775082B1 (en) 2018-03-28 2023-11-22 Zoltek Corporation Electrically conductive adhesive
CN110655801A (en) * 2019-11-18 2020-01-07 常熟理工学院 Bio-based composite material and preparation method thereof
EP3878943A1 (en) * 2020-03-12 2021-09-15 FS-Insulation B.V. Method of manufacturing a prefab construction element
KR102675821B1 (en) * 2021-12-03 2024-06-18 조용우 A Manufacturing method of eco-friendly styrofoam using a mushroom mycelium

Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20090307969A1 (en) * 2008-06-16 2009-12-17 Eben Bayer Method for producing rapidly renewable chitinous material using fungal fruiting bodies and product made thereby
US20110306107A1 (en) * 2010-06-09 2011-12-15 Raymond Edward Kalisz Hardened mycelium structure and method
US20120135504A1 (en) * 2010-11-27 2012-05-31 Philip Ross Method for Producing Fungus Structures

Family Cites Families (259)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB142800A (en) 1919-05-05 1921-01-20 Vennootschap Van Koophandel On Apparatus for filling sacks with kapoc or like material
US1979176A (en) 1932-02-24 1934-10-30 Schicht Friedrich Pneumatic conveyer
US2657647A (en) 1946-07-02 1953-11-03 Cella Inc G Confection machinery
US2509984A (en) 1946-10-17 1950-05-30 Fuller Co Method and apparatus for handling pulverulent materials
US2723493A (en) 1951-02-21 1955-11-15 Benjamin B Stoller Method of making composts and for growing mushrooms
US2964070A (en) 1953-09-08 1960-12-13 Agrashell Inc Method of filling porous receptacles with powdered materials
US2815621A (en) 1955-04-28 1957-12-10 Carter Clarence Freemont Method and apparatus for filling open mouth receptacles
FR1426085A (en) 1963-09-12 1966-01-28 Aquitaine Petrole New fungicidal composition for industrial use
US3268606A (en) 1963-09-27 1966-08-23 Upjohn Co Beta-carotene process
US3316592A (en) 1964-07-10 1967-05-02 Forrest Norman Apparatus for making cast plastic fabric-like material
US3421554A (en) 1966-04-01 1969-01-14 Carter Eng Co Method and apparatus for filling containers
US3477558A (en) 1966-10-27 1969-11-11 Fred J Fleischauer Air lift and vacuum conveyors and foraminous belt means therefor
US3499261A (en) 1968-04-26 1970-03-10 Owens Corning Fiberglass Corp Method and apparatus for handling and packaging material
IE35176B1 (en) 1970-05-14 1975-11-26 Ranks Hovis Mcdougall Ltd Improvements in the production of edible protein containing substances
US3828470A (en) 1970-10-08 1974-08-13 Stoller Res Co Mushroom spawn and method of making same
US3708952A (en) 1971-08-16 1973-01-09 Rexham Corp Packaging machine with splitter bar fill
US3782033A (en) 1971-09-30 1974-01-01 N Hickerson Pot filling and compacting apparatus and method
US3717953A (en) 1971-11-10 1973-02-27 J Kuhn Apparatus for cultivating plants
US3810327A (en) 1972-12-29 1974-05-14 J Giansante Atmosphere control system for growing mushrooms and the like
JPS51129763A (en) 1974-08-02 1976-11-11 Chiyokichi Iizuka Plant growth control agent
CH611847A5 (en) 1974-10-16 1979-06-29 Aluminiumwerke Ag Rorschach Process and apparatus for the sterilisation, filling and closing of packaging containers
GB1520511A (en) 1975-04-18 1978-08-09 Heinz Co H J Production of mushroom spawn
US4036122A (en) 1975-04-25 1977-07-19 H. J. Langen & Sons Ltd. Apparatus for treating meat, more particularly ham meat
US4038807A (en) 1975-10-17 1977-08-02 Blueberry Equipment, Inc. Apparatus for packaging and the like
US4027427A (en) 1976-07-16 1977-06-07 Stoller Benjamin B Method and apparatus for the production of spawn
US4073956A (en) 1976-10-21 1978-02-14 E. I. Du Pont De Nemours And Company Foam texturization of fungal mycelial fibers
US4226330A (en) 1976-11-01 1980-10-07 Butler Robert W Rupture lines in flexible packages
US4127965A (en) 1976-11-08 1978-12-05 The Kinoko Company Method for growing wood mushrooms
CA1060491A (en) 1976-11-12 1979-08-14 Steve Sarovich Vacuum operated can-conveying and can-uprighting apparatus
SE440442B (en) 1977-11-08 1985-08-05 Bioenterprises Pty Ltd SET TO MAKE A PROTEIN-CONTAINING STRUCTURED PRODUCT CONTAINING DENATURED FUNGI MYCELIUM AND THE PRODUCT THEREOF PRODUCED
JPS5548388A (en) 1978-10-03 1980-04-07 Kureha Chem Ind Co Ltd Growth regulator of basidiomycetes
JPS55118277A (en) 1979-03-07 1980-09-11 Sony Corp Television receiver
US4263744A (en) 1979-08-15 1981-04-28 Stoller Benjamin B Method of making compost and spawned compost, mushroom spawn and generating methane gas
US4337594A (en) 1980-04-18 1982-07-06 Castle & Cooke, Inc. Mushroom casing composition and process
FR2501229A1 (en) 1981-03-06 1982-09-10 Rhone Poulenc Ind METHOD OF INCLUDING MICROORGANISMS FROM THE MYCORHIZE AND ACTINORHIZE GROUP
US4370159A (en) 1981-04-06 1983-01-25 Spawn Mate, Inc. Nutrient for mushroom growth and process for producing same
CH655392B (en) 1982-06-05 1986-04-15
JPS6049718A (en) 1983-08-30 1985-03-19 住友化学工業株式会社 Mushroom culturing method
US4620826A (en) 1984-03-02 1986-11-04 Roberto Gonzales Barrera Materials handling apparatus
JPS60207519A (en) 1984-03-30 1985-10-19 有限会社 コンペックス Mushroom fungus culture method in small diameter seed log and mushroom fungus culture promoting sheet
GB2165865B (en) 1984-10-12 1987-06-17 Shirley Inst The Nonwoven fabric
US4716712A (en) 1985-03-04 1988-01-05 Owens-Corning Fiberglas Corporation Apparatus for packaging loose fibrous material
US4960413A (en) 1985-11-09 1990-10-02 The Shirley Institute Wound dressing
CA1257451A (en) 1985-11-25 1989-07-18 William P. Trumble Stabilization of wood preservative solutions and preservation of wood by such solutions
US4922650A (en) 1987-12-14 1990-05-08 Kikkoman Corporation System for manufacturing solid medium
US5074959A (en) 1989-02-10 1991-12-24 Ajinomoto Company, Inc. Complex of fibers and fungi and a process for preparation thereof
US5440860A (en) 1989-06-05 1995-08-15 Schreiber Foods, Inc. Method and apparatus for forming and hermetically sealing slices of food items
US5030425A (en) 1989-06-27 1991-07-09 Technical Research, Inc. Biodegradation and recovery of gallium and other metals from integrated circuits
US5123203A (en) 1989-06-29 1992-06-23 Maui Shiitake Trading Company, Inc. Method for culture of fungi including shiitake (Lentinus edodes)
WO1991003545A1 (en) 1989-09-11 1991-03-21 Nitto Denko Corporation Carrier for culturing microorganism, carrier for controlling insect pest prepared therefrom, and method of controlling insect pest
JPH03234889A (en) 1989-12-22 1991-10-18 Ajinomoto Co Inc fiberglass sheet
JPH049316A (en) 1990-04-27 1992-01-14 Sunstar Inc Whitening cosmetic
US5306550A (en) 1990-06-29 1994-04-26 Director-General Of Agency Of Industrial Science And Technology Biodegradable composition and shaped article obtained therefrom
CN1059662A (en) 1990-09-10 1992-03-25 黄山秀 The preparation method of health nutrient
US5088860A (en) 1991-03-08 1992-02-18 Poly-Vac Co. Process and apparatus for selectively gathering lightweight low density objects
US5085998A (en) 1991-05-07 1992-02-04 The United States Of America As Represented By The Secretary Of The Navy Biodegradation of 2,4,6-trinitrotoluene by white-rot fungus
BE1007799A5 (en) 1991-06-06 1995-10-24 Ricegrowers Co Operative Limit METHOD AND APPARATUS FOR REMOVING SURPLUS AIR FROM PACKAGES.
US5475479A (en) 1991-11-08 1995-12-12 Canon Kabushiki Kaisha Developer cartridge having an automatic lid closing mechanism
AU3430593A (en) 1992-01-14 1993-08-03 Campbell Soup Company Mushroom casing spawn
US5230430A (en) 1992-01-24 1993-07-27 Amycel, Inc. Sterilizable bag
US5681738A (en) 1992-03-19 1997-10-28 The Penn State Research Foundation Use of 10-oxo-trans-8-decenoic acid in mushroom cultivation
US5532217A (en) 1992-04-24 1996-07-02 Silver; Frederick H. Process for the mineralization of collagen fibers, product produced thereby and use thereof to repair bone
US5377466A (en) 1992-05-29 1995-01-03 Haworth, Inc. Separable post/panel system
JP2539141B2 (en) 1992-07-21 1996-10-02 株式会社関西総合環境センター Mushroom cultivation method and medium material
US5335770A (en) 1992-08-06 1994-08-09 Moulded Fibre Technology, Inc. Molded pulp fiber interior package cushioning structures
DE4321627C2 (en) 1993-06-24 1995-11-30 Inst Getreideverarbeitung Process for the production of extrudates from renewable raw materials
US5590489A (en) 1993-09-28 1997-01-07 House Foods Corporation Method for growing fruit body of Fistulina hepatica
CA2143409A1 (en) 1994-02-28 1995-08-29 Yoshikazu Morita Securing small bags to belt-like member
IT1273274B (en) 1994-03-28 1997-07-07 Azionaria Costruzioni Acma Spa POWDERING MATERIAL DISPENSING UNIT
US5685124A (en) 1994-04-21 1997-11-11 Jandl, Jr.; Adolf Wall, ceiling or roof elements with heat insulation properties on one side and sound insulation properties on the other
GB9409851D0 (en) 1994-05-17 1994-07-06 Cambridge Consultants Improvements in and relating to containers of particulate material
US5569426A (en) 1994-05-20 1996-10-29 Enviro Products Ltd. Method of producing lightweight cement blocks
IT1274258B (en) 1994-08-12 1997-07-17 Azienda Agricola Funghi Del Mo SUBSTRATE FOR MYCELIUM GROWTH AND PROTEIN INTEGRATION OF CMPOSITES.
US20020131933A1 (en) 1996-01-16 2002-09-19 Yves Delmotte Biopolymer membrane and methods for its preparation
JPH08198203A (en) 1995-01-26 1996-08-06 Ricoh Co Ltd Powder filling method and device
JPH11503917A (en) 1995-04-28 1999-04-06 グロダニア・アクティーゼルスカブ Fungi production method
DE19526743A1 (en) 1995-07-21 1997-01-23 Wacker Chemie Gmbh Procedure for repeated filling and emptying of container with bulk material with low density
US5647180A (en) 1995-09-05 1997-07-15 Earth Products Limited Fire resistant building panel
IT1277078B1 (en) 1995-12-14 1997-11-04 Geld & Kapitalanlagen Ag MACHINE FOR FORMING COSMETIC PRODUCT TABLETS
US5948674A (en) 1996-01-11 1999-09-07 The Gaia Institute, Inc. Organic waste composting system
AU713323B2 (en) 1996-03-01 1999-11-25 Novozymes A/S An enzyme with galactanase activity
US5802763A (en) 1996-04-01 1998-09-08 Applewood Seed Company Spent mushroom growth media as a growing media for plant sod mats
US5944928A (en) 1996-09-18 1999-08-31 Seidner; Marc A. Method for making composite panels and engineered mouldings
JPH10218999A (en) 1996-12-06 1998-08-18 Showa Denko Kk Composition for treating inside of porous article and its use
AU8681098A (en) 1997-08-01 1999-03-08 Massachusetts Institute Of Technology Three-dimensional polymer matrices
US5919507A (en) 1997-10-02 1999-07-06 The Penn State Research Foundation Preservation compositions and methods for mushrooms
US6004444A (en) 1997-11-05 1999-12-21 The Trustees Of Princeton University Biomimetic pathways for assembling inorganic thin films and oriented mesoscopic silicate patterns through guided growth
WO1999024555A2 (en) 1997-11-10 1999-05-20 Dschida William J A Fungal cell wall production and utilization as a raw resource for textiles
US5854056A (en) 1997-11-28 1998-12-29 Dschida; William J. A. Fungal cell wall production and utilization as a raw resource for textiles
US6660164B1 (en) 1998-01-20 2003-12-09 Enos L. Stover Biochemically enhanced thermophlic treatment process
US6041544A (en) 1998-02-20 2000-03-28 Vlasic Farms, Inc. Speciality mushroom spawn
DE19810094A1 (en) 1998-03-10 1999-09-16 Nukem Nuklear Gmbh Adsorbent for radio nuclides and heavy metals, including cesium and trans uranium elements, used for purifying radioactive waste
TR200003179T2 (en) 1998-04-30 2001-03-21 Prophyta Biologischer Pflanzenschutz Gmbh Solid state fermentation device and solid state fermentation method.
US6261679B1 (en) 1998-05-22 2001-07-17 Kimberly-Clark Worldwide, Inc. Fibrous absorbent material and methods of making the same
US6041835A (en) 1998-06-20 2000-03-28 Muiti-Fill, Inc. Container rim shield for container filling apparatus
WO2000004180A1 (en) 1998-07-14 2000-01-27 Colorado State University Research Foundation Bio-reaction process and product
US6197573B1 (en) 1998-11-17 2001-03-06 Biocon India Limited Solid state fermentation
CA2328092A1 (en) 1999-01-12 2000-07-20 Vito-Mannan Polysaccharide L.L.C. Method of isolating mucilaginous polysaccharides and uses thereof
US6112504A (en) 1999-03-03 2000-09-05 Slidell, Inc. Bulk bagging machine
DE50002587D1 (en) 1999-03-09 2003-07-24 Ganomycin Ges Fuer Biomedizini BIOLOGICALLY ACTIVE CONNECTIONS FROM GANODERMA PFEIFFERI DMS 13239
AU760838B2 (en) 1999-04-30 2003-05-22 Kawasaki Jukogyo Kabushiki Kaisha Powder and granular material feeding device for closed system
JP4108901B2 (en) 1999-05-17 2008-06-25 株式会社リコー Powder filling method, powder filling apparatus and tubular body
US6300315B1 (en) 1999-08-28 2001-10-09 Ceramedical, Inc. Mineralized collagen membrane and method of making same
US6098677A (en) 1999-09-10 2000-08-08 Xerox Corporation High speed air nozzle with mechanical valve for particulate systems
IT1314016B1 (en) 1999-11-09 2002-12-03 Sinco Ricerche Spa POLYESTER RESIN EXPANDED BEADS.
DE10005457A1 (en) 2000-02-08 2001-08-09 Bayer Ag Static mixer
CA2408392C (en) 2000-05-02 2013-03-12 University Of Victoria Sprayable mycelium-based formulation for biological control agents
US6349988B1 (en) 2000-05-15 2002-02-26 Meritor Heavy Vehicle Technology, Llc Vehicle with large planar composite panels
GB0012046D0 (en) 2000-05-18 2000-07-05 Mycocell Technologies Limited Novel mushroom spawn
US6660290B1 (en) 2000-10-04 2003-12-09 Myco Pesticides Llc Mycopesticides
ITBO20000722A1 (en) 2000-12-12 2002-06-12 Gd Spa RIGID TYPE PACKAGING FOR SMOKING ITEMS AND METHOD FOR ITS REALIZATION
US6425714B1 (en) 2001-02-13 2002-07-30 Dirt Machine Partners System and method for conveying loose material
US20080046277A1 (en) 2001-02-20 2008-02-21 Stamets Paul E Living systems from cardboard packaging materials
US6679301B2 (en) 2001-03-13 2004-01-20 Ricoh Company, Ltd. Powder packing method and apparatus therefor
US6500476B1 (en) 2001-03-28 2002-12-31 Epl Technologies, Inc. Preservation compositions and process for mushrooms
ATE376170T1 (en) 2001-04-20 2007-11-15 Glaxo Group Ltd MEASURING METHOD FOR PARTICLE MATERIAL
US6475811B1 (en) 2001-04-27 2002-11-05 Advanced Micro Devices, Inc. System for and method of using bacteria to aid in contact hole printing
US20030056451A1 (en) 2001-09-26 2003-03-27 The Dow Chemical Company Method and system for providing conduit and boxes in a closed wall system
EP1312547A1 (en) 2001-11-16 2003-05-21 Arodo BVBA Device and method for packaging a flowable solid material
US20030121201A1 (en) 2001-12-04 2003-07-03 Dahlberg Kurt R. Polysaccharide mushroom compost supplements
WO2003089022A1 (en) 2002-04-18 2003-10-30 University Of Florida Biomimetic organic/inorganic composites, processes for their production, and methods of use
AU2003234159A1 (en) 2002-04-22 2003-11-03 Purdue Research Foundation Hydrogels having enhanced elasticity and mechanical strength properties
US7230242B2 (en) 2002-06-05 2007-06-12 Quantomix Ltd Methods for SEM inspection of fluid containing samples
CN1662281A (en) 2002-06-25 2005-08-31 布伦海姆投资有限公司 Method of producing organic material and use of the same
US6907691B2 (en) 2002-06-26 2005-06-21 Stewart C. Miller Cultivation of morchella
NZ538637A (en) 2002-08-12 2008-01-31 Lonza Ag Antimicrobial compositions
JP2004248618A (en) 2003-02-21 2004-09-09 Hoomaa Clean Kk Bacterial group symbiotically living with fungus used for treating organic material and its application
US20040177585A1 (en) 2003-03-10 2004-09-16 Vermette Robert M. Industrial door assembly and method of assembling same
US7073306B1 (en) 2003-05-29 2006-07-11 Harry Edward Hagaman Method of building
KR20050001175A (en) 2003-06-27 2005-01-06 주식회사 엠바이오텍 Two staged liquid cultivation of Hericium erinaceum and the promoting agent for neuronal activities containing its cultured products
ITBO20030475A1 (en) 2003-08-01 2005-02-02 Roberto Conti DEVICE FOR DOSING AND FORMING PODS FOR INFUSION PRODUCTS.
EP1663326B1 (en) 2003-09-08 2010-03-03 FMC Biopolymer AS Gelled biopolymer based foam
US7043874B2 (en) 2003-11-12 2006-05-16 Carmel-Haifa University Economic Corp. Ltd. Substrate and method for growing shiitake mushrooms [Lentinus edodes (Berk.) singer] and new shiitake strain
US7156372B2 (en) 2003-12-19 2007-01-02 Eastman Kodak Company Non-contact valve for particulate material
SK285346B6 (en) 2004-01-14 2006-11-03 Pleuran, S. R. O. A method for preparing a fungal glucan hydrogel with antibacterial and immunostimulatory effects
US8317975B2 (en) 2004-04-20 2012-11-27 The Research Foundation Of The State University Of New York Product and processes from an integrated forest biorefinery
US20060280753A1 (en) 2005-06-11 2006-12-14 Mcneary Peter Composition and Method For Obtaining A Nutritional Food Product Using Solid Substrate Fermentation
NZ563633A (en) 2005-06-29 2011-01-28 Hexion Speciality Chemicals Inc Wax formulations for lignocellulosic products, methods of their manufacture and products formed therefrom
CN100333710C (en) 2005-08-30 2007-08-29 欧凤卿 Cosmetic composition for cleaning skin
WO2007039572A1 (en) 2005-10-04 2007-04-12 Dsm Ip Assets B.V. Improved anti-fungal composition
US8287914B2 (en) 2006-01-12 2012-10-16 Rutgers, The State University Of New Jersey Biomimetic hydroxyapatite synthesis
WO2007100141A1 (en) 2006-02-28 2007-09-07 Canon Kabushiki Kaisha Powder-filling device, powder-filling method, and process cartridge
DE602006020682D1 (en) 2006-03-17 2011-04-28 Univ Bremen Synthetic mother-of-pearl, method and apparatus for its manufacture
US20070227063A1 (en) 2006-03-30 2007-10-04 Board Of Trustees Of Michigan State University Process for conversion of mushroom lignocellulosic waste to useful byproducts
WO2007114324A1 (en) 2006-03-31 2007-10-11 Menicon Co., Ltd. Method of treating biomass, compost, mulching material for livestock and agent for treating biomass
WO2007121764A1 (en) 2006-04-21 2007-11-01 Frans Vandenhove A recipient for containing moist substrate
US20070294939A1 (en) 2006-06-22 2007-12-27 Spear Mark C Enhanced fungal substrate and carrier
US20080047966A1 (en) 2006-08-23 2008-02-28 Susanna Lynn Carson Low profile press-fit compostable beverage lid
WO2008025122A1 (en) 2006-08-30 2008-03-06 The University Of British Columbia Bioceramic composite coatings and process for making same
US9485917B2 (en) 2006-12-15 2016-11-08 Ecovative Design, LLC Method for producing grown materials and products made thereby
EP1964583A1 (en) 2007-02-09 2008-09-03 Royal College of Surgeons in Ireland Process for producing a collagen/hydroxyapatite composite scaffold
DE102007032017B4 (en) 2007-05-16 2011-01-27 Bayer Materialscience Ag Method for filling and emptying transport containers with plastic granules
TWI424060B (en) 2007-05-29 2014-01-21 Takara Bio Inc Mushrooms of the fungal bed cultivation method
US8313601B2 (en) 2007-08-06 2012-11-20 Bard Peripheral Vascular, Inc. Non-compliant medical balloon
ITBO20070688A1 (en) 2007-10-12 2009-04-13 Azionaria Costruzioni Acma Spa MACHINE FOR THE PRODUCTION OF BAGS CONTAINING A TOBACCO MIXTURE.
JP5225651B2 (en) 2007-10-26 2013-07-03 花王株式会社 Anti-fungal composition
US8281819B2 (en) 2007-10-29 2012-10-09 The Pillow Bar, Llc Apparatus and method of filling down-filled articles
US20120270302A1 (en) 2011-04-25 2012-10-25 Eben Bayer Method for Making Dehydrated Mycelium Elements and Product Made Thereby
US9803171B2 (en) 2007-12-12 2017-10-31 Ecovative Design Llc Method for making dehydrated mycelium elements and product made thereby
US20090246467A1 (en) 2008-01-29 2009-10-01 Delantar Jr Pedro Molded coarse particle product with cast paper-based reinforcement
CN101248869A (en) 2008-04-09 2008-08-27 李勇 Method for preparing health care food by edible fungus mycelium or seed
NZ588865A (en) 2008-04-30 2012-05-25 Xyleco Inc Processing biomass
US8464901B2 (en) 2008-05-05 2013-06-18 Parata Systems, Llc Methods and apparatus for dispensing solid articles
TW201008749A (en) 2008-06-25 2010-03-01 Sulzer Chemtech Ag An apparatus and method for the introduction of a foaming agent
BRPI0919442A2 (en) 2008-09-30 2015-08-18 Novozymes North America Inc Methods for producing a fermentation product from a lignocellulose-containing material, and for enhancing enzymatic hydrolysis of a lignocellulose-containing material.
EP2379732A2 (en) 2008-12-19 2011-10-26 Novozymes Inc. Methods for increasing enzymatic hydrolysis of cellulosic material in the presence of a peroxidase
AU2010226673A1 (en) 2009-03-17 2011-10-27 Alltech, Inc. Compositions and methods for conversion of lignocellulosic material to fermentable sugars and products produced therefrom
FI126458B (en) 2009-03-20 2016-12-15 Stora Enso Oyj Treatment of fibers for molding resistance
US20120076895A1 (en) 2009-04-23 2012-03-29 Bacterfield Ou Extruded food products comprising probiotic micro-organisms
CN101653081B (en) 2009-06-25 2011-01-19 浙江三禾生物工程有限公司 The artificial culture method of C. slenderus
WO2011015217A1 (en) 2009-08-06 2011-02-10 Harro Höfliger Verpackungsmaschinen GmbH Filling assembly for metering powder and method for operating such a filling assembly
GB0914574D0 (en) 2009-08-20 2009-09-30 Givaudan Sa Organic compounds
US20110076396A1 (en) 2009-09-28 2011-03-31 Limin Guan Method of forming a calcium phosphate coating within a porous material
PL2485779T3 (en) 2009-10-07 2018-08-31 Kerecis Ehf A scaffold material for wound care and/or other tissue healing applications
US20110091604A1 (en) 2009-10-21 2011-04-21 Seth Adrian Miller Synthetic meat
US20110094154A1 (en) 2009-10-22 2011-04-28 Joaquin Alan Modular tubular-sock garden growing system
EP2319477B1 (en) 2009-11-06 2011-12-28 F. Hoffmann-La Roche AG Device for filing a flexible reservoir container in a negative pressure chamber
WO2011097019A1 (en) 2010-02-03 2011-08-11 Altria Client Services Inc. Method and apparatus for dispensing moist smokeless tobacco
ES2395259T3 (en) 2010-05-05 2013-02-11 Metalquimia S.A. Tenderizing machine to tender meat pieces
US8227225B2 (en) 2010-06-09 2012-07-24 Ford Global Technologies, Llc Plasticized mycelium composite and method
US8227224B2 (en) 2010-06-09 2012-07-24 Ford Global Technologies, Llc Method of making molded part comprising mycelium coupled to mechanical device
US8298810B2 (en) 2010-06-09 2012-10-30 Ford Global Technologies, Llc Mycelium structure with self-attaching coverstock and method
US8313939B2 (en) 2010-06-09 2012-11-20 Ford Global Technologies, Inc. Injection molded mycelium and method
US8227233B2 (en) 2010-06-09 2012-07-24 Ford Global Technologies, Llc Method of making foamed mycelium structure
DE102010040499A1 (en) 2010-09-09 2012-03-15 Merz Verpackungsmaschinen Gmbh Dosing process and dosing device
WO2012048188A1 (en) 2010-10-07 2012-04-12 Drixel University Electrospun mineralized chitosan nanofibers crosslinked with genipin for bone tissue enginering
WO2012113058A1 (en) * 2011-02-23 2012-08-30 Fpinnovations Process for fungal modification of lignin and preparing wood adhesives with the modified lignin and wood composites made from such adhesives
US20120225471A1 (en) 2011-03-02 2012-09-06 Mcintyre Gavin Method for producing a composite material
WO2012122092A2 (en) 2011-03-07 2012-09-13 Ecovative Design Llc Method of producing a chitinous polymer derived from fungal mycelium
WO2012146280A1 (en) 2011-04-27 2012-11-01 Fujitsu Limited Wireless communication with co-operating cells
US20120315687A1 (en) 2011-06-08 2012-12-13 Eben Bayer Substrate Composition and Method for Growing Mycological Materials
PL2736357T3 (en) 2011-07-26 2019-02-28 The Curators Of The University Of Missouri Engineered comestible meat
LT5847B (en) 2011-08-01 2012-06-25 Kęstutis JUŠČIUS Novel process for preparing substrate for culturing champignons and other cultural mushrooms
US20130095560A1 (en) 2011-09-14 2013-04-18 Gavin McIntyre Method of Producing Tissue Culture Media Derived from Plant Seed Material and Casting of Mycological Biomaterials
US9714180B2 (en) 2011-09-14 2017-07-25 Ecovative Design Llc Composite material for absorbing and remediating contaminants and method of making same
RU2615473C2 (en) 2011-11-01 2017-04-04 Олтриа Клайент Сервисиз Ллк. Device and method of packing bulk goods
EP2822912B1 (en) 2012-03-09 2018-08-15 Parexgroup Sa Use of at least one superabsorbent polymer (psa) (b), in a dry composition based on a mineral binder and used for preparing a hardenable moist formulation for the building industry
US10154627B2 (en) 2012-04-05 2018-12-18 Ecovative Design Llc Method of growing mycological biomaterials
US20130309755A1 (en) 2012-05-04 2013-11-21 Gavin McIntyre Fungal Leachate and Method of Making Same
EP2677030A1 (en) 2012-06-21 2013-12-25 Latvijas Valsts Koksnes kimijas instituts Polyurethane rigid and flexible foams as composite obtained from wood origin raw materials and used as support for immobilization of microorganisms that produce ligninolytic enzymes
US20140056653A1 (en) 2012-08-22 2014-02-27 Christopher Scully Method and Machine for Filling 3D Cavities with Bulk Material
US9253889B2 (en) 2012-09-07 2016-02-02 Ecovative Design Llc Method of growing electrically conductive tissue
WO2014039938A1 (en) 2012-09-07 2014-03-13 Modern Meadow, Inc. Spherical multicellular aggregates with endogenous extracellular matrix
US9085763B2 (en) 2012-10-31 2015-07-21 Ecovative Design Llc Tissue morphology produced with the fungus pycnoporus cinnabarinus
EP2735318A1 (en) 2012-11-26 2014-05-28 Albert-Ludwigs-Universität Freiburg Matrices comprising modified polysaccharides and modified polysaccharides
SG11201507249PA (en) 2013-03-15 2015-10-29 Greenstract Llc Plant-based compositions and uses thereof
FR3006693B1 (en) 2013-06-05 2016-04-01 Menuiseries Elva METHOD FOR MANUFACTURING COMPOSITE MATERIAL BASED ON NATURAL FIBERS SENSITIVE WITH MYCELIUM AND PIECE OBTAINED BY SUCH A METHOD
US10144149B2 (en) 2013-07-31 2018-12-04 Ecovative Design Llc Stiff mycelium bound part and method of producing stiff mycelium bound parts
US11277979B2 (en) 2013-07-31 2022-03-22 Ecovative Design Llc Mycological biopolymers grown in void space tooling
US9555395B2 (en) 2013-08-01 2017-01-31 Ecovative Design Llc Chemically modified mycological materials having absorbent properties
WO2015038988A1 (en) 2013-09-13 2015-03-19 Modern Meadow, Inc. Edible and animal-product-free microcarriers for engineered meat
US20150101509A1 (en) 2013-10-14 2015-04-16 Gavin R. McIntyre Method of Manufacturing a Stiff Engineered Composite
EP2875805B1 (en) 2013-11-26 2017-06-28 Latvijas Universitate Method for the isolation of glycoprotein-rich fungal extract and its use in anti-ageing cosmetic formulations
EP2878340A1 (en) 2013-11-29 2015-06-03 Latvijas Universitate An abrasive ingredient for exfoliating cosmetic compositions
US9546048B2 (en) 2014-01-15 2017-01-17 Simatek Bulk Systems A/S Drum dispenser
AU2015214092B2 (en) 2014-02-05 2018-11-15 Fork & Goode, Inc. Dried food products formed from cultured muscle cells
US9469838B2 (en) 2014-06-26 2016-10-18 Ecovative Design, LLC Biofilm treatment of composite materials containing mycelium
US9796989B2 (en) 2014-07-03 2017-10-24 Sustainable Bioproducts Holdings, Llc Acidophilic fusarium oxysporum strains, methods of their production and methods of their use
US10125347B2 (en) 2014-07-07 2018-11-13 Ecovative Design, LLC Method for stimulating the expression of specific tissue morphologies in filamentous fungi
US10172301B2 (en) 2014-09-11 2019-01-08 Freight Farms, Inc. Insulated shipping containers modified for high-yield fungi production capable in any environment
US9914906B2 (en) 2015-03-13 2018-03-13 Ecovative Design Llc Process for solid-state cultivation of mycelium on a lignocellulose substrate
US10266695B2 (en) 2015-04-14 2019-04-23 Ecovative Design Llc Cultivation of Xylaria species biomass as a binding agent in material production
WO2016168563A1 (en) 2015-04-15 2016-10-20 Ecovative Design Llc Process for production of mycelial composite surfaces in a roll-to-roll format
ITUB20154136A1 (en) 2015-10-01 2017-04-01 Maurizio Bagnato Method of production of officinal mushrooms, container for their production and mushrooms so obtained
WO2017120342A1 (en) 2016-01-08 2017-07-13 The Regents Of The University Of California Cellular or viral membrane coated nanostructures and uses thereof
WO2017132523A1 (en) 2016-01-28 2017-08-03 University of Alaska Anchorage Thermal insulation material from mycelium and forestry byproducts
EP3413939B1 (en) 2016-02-12 2023-06-07 University of Ottawa Decellularised cell wall structures from plants and fungus and use thereof as scaffold materials
EP3423561B2 (en) 2016-03-01 2024-02-28 The Fynder Group, Inc. Filamentous fungal biomats, methods of their production and methods of their use
US10407675B2 (en) 2016-03-07 2019-09-10 Ecovative Design Llc Method of fermenting mycelium composite material
JP6111510B1 (en) 2016-05-02 2017-04-12 インテグリカルチャー株式会社 Growth induction system, growth induction control device, growth induction control method, and growth induction control program
US11859230B2 (en) 2016-05-26 2024-01-02 The Regents Of The University Of Michigan Compositions and methods for microbial co-culture
CN109714962A (en) 2016-07-11 2019-05-03 耶路撒冷希伯来大学的益生研究开发有限公司 Systems and methods for culturing cells in vitro
MX2019000386A (en) 2016-07-14 2019-09-18 Mycoworks Inc Method of producing fungal materials and objects made therefrom.
AT518771B1 (en) 2016-09-09 2018-01-15 Neuburger Fleischlos Gmbh Process for the production of meat substitute or meat imitation products
CN106282093A (en) 2016-10-08 2017-01-04 上海生乐康生物技术发展有限公司 A kind of production method of edible cell
EP3599832A4 (en) 2017-03-31 2021-01-27 Ecovative Design LLC SOLUTION-BASED AFTER-TREATMENT PROCEDURES FOR MYCOLOGICAL BIOPOLYMERIC MATERIAL AND MYCOLOGICAL PRODUCT MANUFACTURED THEREOF
CN110730615A (en) 2017-04-09 2020-01-24 超级肉类肉本质有限公司 Mixed food containing cultured meat
CN106947702B (en) 2017-04-24 2020-09-11 浙江海洋大学 Pleurotus first-level strain composite culture medium and preparation method thereof
BR112020003925A2 (en) 2017-08-30 2021-11-03 Sustainable Bioproducts Inc Edible food products and bioreactor designs
KR101851655B1 (en) 2017-09-19 2018-04-25 주식회사 엠비지 Manufacturing method of patty using mushroom concentrates and bovine satellite cell culture media
US11266085B2 (en) 2017-11-14 2022-03-08 Ecovative Design Llc Increased homogeneity of mycological biopolymer grown into void space
CN116724823A (en) 2017-11-14 2023-09-12 生态创新设计有限责任公司 Improved homogeneity of fungal biopolymers grown in void spaces
JP2021517593A (en) 2018-03-14 2021-07-26 マイコワークス, インコーポレイテッド Deacetylation and cross-linking of chitin and chitosan in fungal materials and their composites for adjustable properties
US11920126B2 (en) 2018-03-28 2024-03-05 Ecovative Design Llc Bio-manufacturing process
US11293005B2 (en) 2018-05-07 2022-04-05 Ecovative Design Llc Process for making mineralized mycelium scaffolding and product made thereby
US11343979B2 (en) 2018-05-24 2022-05-31 Ecovative Design Llc Process and apparatus for producing mycelium biomaterial
US20190390156A1 (en) 2018-06-22 2019-12-26 Ecovative Design Llc Open-cell Mycelium Foam and Method of Making Same
WO2020018963A1 (en) 2018-07-19 2020-01-23 Mycoworks, Inc. Mycelium with reduced coefficient of friction and abrasion resistance through mechanical alteration of mycelial surface microstructure
CA3106992A1 (en) 2018-07-23 2020-01-30 Ecovative Design Llc Method of producing a mycological product and product made thereby
US11359174B2 (en) 2018-10-02 2022-06-14 Ecovative Design Llc Bioreactor paradigm for the production of secondary extra-particle hyphal matrices
JP2022512668A (en) 2018-10-18 2022-02-07 マイコワークス, インコーポレイテッド Related methods for producing a uniform sheet of mycelium from a mycelial growth bed with a perforated layer and a solid medium
JP7571013B2 (en) 2018-10-18 2024-10-22 マイコワークス, インコーポレイテッド Mycelium growth bed
CN113195211B (en) 2018-11-14 2024-03-08 保尔特纺织品公司 Methods for producing mycelium materials with improved properties
SG11202105283PA (en) 2018-11-20 2021-06-29 Ecovative Design Llc Methods of generating mycelial scaffolds and applications thereof
WO2020154722A1 (en) 2019-01-25 2020-07-30 Ecovative Design Llc Methods of mycological biopolymer production
PH12021551918A1 (en) 2019-02-27 2022-08-01 The Fynder Group Inc Food materials comprising filamentous fungal particles and membrane bioreactor design
US20220142907A1 (en) 2019-03-13 2022-05-12 Ecovative Design Llc Mycelium biopolymers for health and beauty applications
CA3131602A1 (en) 2019-03-14 2020-09-17 Modern Meadow, Inc. Collagen-infused composite materials and methods of manufacturing the same
SG11202112275VA (en) 2019-05-23 2021-12-30 Bolt Threads Inc A composite material, and methods for production thereof

Patent Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20090307969A1 (en) * 2008-06-16 2009-12-17 Eben Bayer Method for producing rapidly renewable chitinous material using fungal fruiting bodies and product made thereby
US20110306107A1 (en) * 2010-06-09 2011-12-15 Raymond Edward Kalisz Hardened mycelium structure and method
US20120135504A1 (en) * 2010-11-27 2012-05-31 Philip Ross Method for Producing Fungus Structures

Non-Patent Citations (2)

* Cited by examiner, † Cited by third party
Title
Gypsum, Home Depot, Latham N.Y.; retrieved from the internet:www.homedepot.com/p/Pennington-30-lb-Fast-Acting-Gypsum-Plus-AST-Dry-Lawn-Fertilizer-423008/202946234 *
Perlite, Home Depot, Latham N.Y.; retrieved from the internet: http://www.homedepot.com/p/Miracle-Gro-8-qt-Perlite-Mix-74278430/204502291 *

Cited By (46)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US11932584B2 (en) 2006-12-15 2024-03-19 Ecovative Design Llc Method of forming a mycological product
US11277979B2 (en) 2013-07-31 2022-03-22 Ecovative Design Llc Mycological biopolymers grown in void space tooling
US11420366B2 (en) 2013-10-14 2022-08-23 Ecovative Design Llc Method of manufacturing a stiff engineered composite
US20170210041A1 (en) * 2014-07-30 2017-07-27 Breton Spa Improvement of the method for manufacturing conglomerate slabs
US11325285B2 (en) * 2014-07-30 2022-05-10 Breton Spa Method for manufacturing conglomerate slabs
US12161069B2 (en) 2015-04-15 2024-12-10 Ecovative Llc High density rigid molded body of composite mycological material
AU2015271912B2 (en) * 2015-12-17 2020-02-20 Ecovative Design Llc Method of manufacturing a stiff engineered composite
US11015168B2 (en) 2016-03-01 2021-05-25 The Fynder Group, Inc. Filamentous fungal biomats, methods of their production and methods of their use
US12157880B2 (en) 2016-03-01 2024-12-03 The Fynder Group, Inc. Filamentous fungal biomats, methods of their production and methods of their use
US11261420B2 (en) 2016-03-01 2022-03-01 The Fynder Group, Inc. Filamentous fungal biomats, methods of their production and methods of their use
US11505779B2 (en) 2016-03-01 2022-11-22 The Fynder Group, Inc. Filamentous fungal biomats, methods of their production and methods of their use
US11001801B2 (en) 2016-03-01 2021-05-11 The Fynder Group, Inc. Filamentous fungal biomats, methods of their production and methods of their use
US11359074B2 (en) 2017-03-31 2022-06-14 Ecovative Design Llc Solution based post-processing methods for mycological biopolymer material and mycological product made thereby
US11297866B2 (en) 2017-08-30 2022-04-12 The Fynder Group, Inc. Bioreactor system for the cultivation of filamentous fungal biomass
US11464251B2 (en) 2017-08-30 2022-10-11 The Fynder Group, Inc. Edible foodstuffs and bio reactor design
US11266085B2 (en) 2017-11-14 2022-03-08 Ecovative Design Llc Increased homogeneity of mycological biopolymer grown into void space
US11920126B2 (en) 2018-03-28 2024-03-05 Ecovative Design Llc Bio-manufacturing process
US11293005B2 (en) 2018-05-07 2022-04-05 Ecovative Design Llc Process for making mineralized mycelium scaffolding and product made thereby
US11752661B2 (en) * 2018-05-21 2023-09-12 5R Technologies Sdn. Bhd. Natural effect panel and method of fabricating the same
US11343979B2 (en) 2018-05-24 2022-05-31 Ecovative Design Llc Process and apparatus for producing mycelium biomaterial
CN110868857A (en) * 2018-06-26 2020-03-06 麦克沃克斯股份有限公司 Fungal composite comprising hyphae and embedding material
WO2020006133A1 (en) * 2018-06-26 2020-01-02 Mycoworks, Inc. Fungal composites comprising mycelium and an embedded material
US11359174B2 (en) 2018-10-02 2022-06-14 Ecovative Design Llc Bioreactor paradigm for the production of secondary extra-particle hyphal matrices
US11432575B2 (en) 2019-02-27 2022-09-06 The Fynder Group, Inc. Food materials comprising filamentous fungal particles and membrane bioreactor design
US11478007B2 (en) 2019-02-27 2022-10-25 The Fynder Group, Inc. Food materials comprising filamentous fungal particles and membrane bioreactor design
US12415983B2 (en) 2019-02-27 2025-09-16 The Fynder Group, Inc. Food materials comprising filamentous fungal particles and membrane bioreactor design
US11272726B2 (en) 2019-02-27 2022-03-15 The Fynder Group, Inc. Food materials comprising filamentous fungal particles and membrane bioreactor design
US11891514B2 (en) 2019-05-23 2024-02-06 Bolt Threads, Inc. Composite material, and methods for production thereof
US11015059B2 (en) 2019-05-23 2021-05-25 Bolt Threads, Inc. Composite material, and methods for production thereof
US11649586B2 (en) 2019-06-18 2023-05-16 The Fynder Group, Inc. Fungal textile materials and leather analogs
US11414815B2 (en) 2019-06-18 2022-08-16 The Fynder Group, Inc. Fungal textile materials and leather analogs
US11447913B2 (en) 2019-06-18 2022-09-20 The Fynder Group, Inc. Fungal textile materials and leather analogs
US11718954B2 (en) 2019-06-18 2023-08-08 The Fynder Group, Inc. Fungal textile materials and leather analogs
US11118305B2 (en) 2019-06-18 2021-09-14 The Fynder Group, Inc. Fungal textile materials and leather analogs
US11427957B2 (en) 2019-06-18 2022-08-30 The Fynder Group, Inc. Fungal textile materials and leather analogs
CN114071992A (en) * 2020-02-03 2022-02-18 麦克沃克斯股份有限公司 Mycelium and novel microstructures of mycelium-based materials
US11866691B2 (en) 2020-06-10 2024-01-09 Okom Wrks Labs, Pbc Method for creating a stiff, rigid mycelium-based biocomposite material for use in structural and non-structural applications
US11997956B2 (en) 2021-01-14 2024-06-04 Massachusetts Institute Of Technology Method for mycotecture
US20240139992A1 (en) * 2021-03-01 2024-05-02 Naturloop Ag Compressed cellulosic fiber products and method for producing them
WO2022226322A1 (en) 2021-04-23 2022-10-27 Bolt Threads, Inc. A composite material with enhanced resistance, and methods for production thereof
US20240181671A1 (en) * 2021-04-30 2024-06-06 Nilo Global Limited A plastic composite product
US12433315B2 (en) 2021-05-04 2025-10-07 Ecovative Llc Aerial mycelia and methods of making same
US20230044292A1 (en) * 2021-08-04 2023-02-09 Hyundai Mobis Co., Ltd. Press apparatus for vehicle crash pads comprising real wood sheets
US12179380B2 (en) * 2021-08-04 2024-12-31 Hyundai Mobis Co., Ltd. Press apparatus for vehicle crash pads comprising real wood sheets
US12503576B2 (en) 2022-06-09 2025-12-23 Ecovative Llc Solution based post-processing methods for mycological biopolymer material and mycological product made thereby
IT202300019614A1 (en) 2023-09-22 2025-03-22 Gianluca Giordano CONTAINERS OR BEEHIVES FOR INSECT BREEDING, ASSEMBLED WITH BIOMATERIAL PANELS.

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