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US20060093815A1 - Glass fiber filtration media with at least two different fiber diameters - Google Patents

Glass fiber filtration media with at least two different fiber diameters Download PDF

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Publication number
US20060093815A1
US20060093815A1 US11/052,411 US5241105A US2006093815A1 US 20060093815 A1 US20060093815 A1 US 20060093815A1 US 5241105 A US5241105 A US 5241105A US 2006093815 A1 US2006093815 A1 US 2006093815A1
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Prior art keywords
filtration media
mat
fibers
orifices
glass fibers
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Abandoned
Application number
US11/052,411
Inventor
Rodney Wilkins
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Superior Fibers LLC
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Individual
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Filing date
Publication date
Application filed by Individual filed Critical Individual
Priority to US11/052,411 priority Critical patent/US20060093815A1/en
Assigned to HOLLINEE, L.L.C. reassignment HOLLINEE, L.L.C. ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: WILKINS, RODNEY R.
Priority to PCT/US2006/004287 priority patent/WO2006086386A2/en
Priority to US11/375,862 priority patent/US20060217019A1/en
Publication of US20060093815A1 publication Critical patent/US20060093815A1/en
Assigned to SUPERIOR FIBERS, LLC reassignment SUPERIOR FIBERS, LLC ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: HOLLINEE, L.L.C.
Assigned to HUNTINGTON NATIONAL BANK reassignment HUNTINGTON NATIONAL BANK SECURITY AGREEMENT Assignors: SUPERIOR BREMEN COMPOSITES II, LLC, SUPERIOR BREMEN COMPOSITES, LLC, SUPERIOR BREMEN FILTRATION, LLC, SUPERIOR FIBERS, INC., SUPERIOR FIBERS, LLC, SUPERIOR MEDIA, LLC, SUPERIOR OBETZ PACKAGING, LLC, SUPERIOR REEDSVILLE FILTRATION, LLC, SUPERIOR SHAWNEE COMPOSITES, LLC, SUPERIOR VANCEBURG COMPOSITES, LLC
Assigned to SUPERIOR FIBERS, LLC reassignment SUPERIOR FIBERS, LLC RELEASE BY SECURED PARTY (SEE DOCUMENT FOR DETAILS). Assignors: HUNTINGTON NATIONAL BANK
Abandoned legal-status Critical Current

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    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D39/00Filtering material for liquid or gaseous fluids
    • B01D39/14Other self-supporting filtering material ; Other filtering material
    • B01D39/20Other self-supporting filtering material ; Other filtering material of inorganic material, e.g. asbestos paper, metallic filtering material of non-woven wires
    • B01D39/2003Glass or glassy material
    • B01D39/2017Glass or glassy material the material being filamentary or fibrous
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D2239/00Aspects relating to filtering material for liquid or gaseous fluids
    • B01D2239/06Filter cloth, e.g. knitted, woven non-woven; self-supported material
    • B01D2239/0604Arrangement of the fibres in the filtering material
    • B01D2239/064The fibres being mixed
    • DTEXTILES; PAPER
    • D04BRAIDING; LACE-MAKING; KNITTING; TRIMMINGS; NON-WOVEN FABRICS
    • D04HMAKING TEXTILE FABRICS, e.g. FROM FIBRES OR FILAMENTARY MATERIAL; FABRICS MADE BY SUCH PROCESSES OR APPARATUS, e.g. FELTS, NON-WOVEN FABRICS; COTTON-WOOL; WADDING ; NON-WOVEN FABRICS FROM STAPLE FIBRES, FILAMENTS OR YARNS, BONDED WITH AT LEAST ONE WEB-LIKE MATERIAL DURING THEIR CONSOLIDATION
    • D04H3/00Non-woven fabrics formed wholly or mainly of yarns or like filamentary material of substantial length
    • D04H3/02Non-woven fabrics formed wholly or mainly of yarns or like filamentary material of substantial length characterised by the method of forming fleeces or layers, e.g. reorientation of yarns or filaments
    • D04H3/07Non-woven fabrics formed wholly or mainly of yarns or like filamentary material of substantial length characterised by the method of forming fleeces or layers, e.g. reorientation of yarns or filaments otherwise than in a plane, e.g. in a tubular way
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T428/00Stock material or miscellaneous articles
    • Y10T428/29Coated or structually defined flake, particle, cell, strand, strand portion, rod, filament, macroscopic fiber or mass thereof
    • Y10T428/2913Rod, strand, filament or fiber

Definitions

  • This invention relates generally to filtration media, and more specifically to glass fiber filtration media.
  • the melting furnace reciprocates relatively slowly in a longitudinal direction above the drum's rapidly rotating circumferential surface, thereby forming a build-up of layers of continuous fibers oriented at acute angles with one another.
  • a binder such as a thermosetting resin, is commonly applied by spraying the fibers already deposited on the drum to bind the fibers at their overlapping junctions with fibers of previously deposited layers.
  • the condensed mat is removed from the drum by slitting the mat longitudinally and parallel with the axis of the drum.
  • the condensed mat can be modified subsequently by being deposited on a conveyor belt that moves at a very slow rate.
  • the condensed mat is generally rectangular in shape, and the fibers in the mat extend, due to the orientation of the rectangular mat on the conveyor, substantially completely across the width of the mat and substantially perpendicular to the direction of movement of the conveyor belt.
  • a retarding roller presses the condensed mat against the conveyor belt, which is supported by an oppositely rotating support roller.
  • the leading end of the condensed mat beyond the retarding roller is stretched or expanded longitudinally up to hundreds of times its original, condensed length.
  • the expanding is a continuous process with the leading end being pulled longitudinally while the retarding roller/support structure minimizes the forward movement of the remaining length of the condensed mat.
  • the mat As the mat expands longitudinally, it also expands (“fluffs”) in the direction of the mat's thickness to a consistency resembling cotton candy. Additionally, during the expansion of the mat, the fibers that are originally oriented transversely to the direction of movement are pulled longitudinally, thereby tending to rotate and reorient the fibers to a 45 degree or greater angle with respect to the longitudinal direction. During the expansion process, in which the original mat increases in length enormously and “fluffs” to a significantly greater thickness, the mat necks down to a smaller width. Such an expanded product can be used for filtration purposes, such as by attaching the product to a frame.
  • the product can be compressed into a dense mat to use as a fibrous reinforcement, for example, in pultruded composite products.
  • the fluffed, expanded mat can be compressed in the direction of its thickness by rolling, and it is heated by radiant heaters to set the thermosetting resin incorporated during the winding of the fibers on the drum. Thereafter, the stretched glass fiber mat is wound on a spool.
  • the compressed mat which is much longer than the original, condensed mat, is a continuous strand fiberglass mat, because the condensed mat from which it is derived was formed from continuous strands of glass.
  • the glass-melting furnace of the Modigliani process machine feeds molten glass through orifices that are formed in a bushing plate.
  • the bushing plate is a flat plate, normally made of a metal alloy, through which holes are formed and through which molten glass flows during use.
  • the size of each orifice has a direct effect on the diameter of the fibers formed thereby.
  • bushing plate holes are all the same size in order to avoid temperature gradients that are present if different size fibers were used.
  • the process of forming fibers can thus be “tuned” to the exact characteristics desired without having to compensate for a plurality of fiber diameters, and therefore, fiber characteristics.
  • the orifices in the bushing plates are all drilled to a size that results in a particular fiber size. Therefore, a particular drill size results, according to conventional technology, in a particular finished fiber size.
  • the Applicant is aware of the use of a bushing plate with orifices of two different sizes to form a condensed glass fiber mat using the Modigliani process.
  • the condensed mat was expanded and then compressed into a thin mat in the conventional manner and sold for use in polymer-reinforced composites.
  • the sale of this compressed mat has occurred for several years.
  • the fibers in this mat were between 28 and 40 microns in diameter, and the compressed mat had a thickness of approximately one-quarter inch. The characteristics of this mat make it unsuitable for use as a filtration media.
  • fibers made using the Modigliani process can change each fiber's size during manufacture, for example by rotating the drawing drum faster, which produces a layer of one size fiber, and then rotating the drum slower, which produces another layer of a larger size fiber. For example, one can operate at a first drum speed, and, for example, get a 30 micron fiber, and then decrease the speed to get a 36 micron fiber.
  • the fibers in each layer are the same diameter, even after expansion of the original mat.
  • the invention is a method of making a filter.
  • the method comprises extruding molten glass through a plurality of orifices formed in a plate. This forms a plurality of glass fibers, and each of the fibers extends from a corresponding one of the orifices. Furthermore, each of the plurality of orifices has one of at least two substantially different orifice diameters. In one embodiment, there are first and second fiber diameters in a range between about 17 microns and about 26 microns, and in one particular embodiment, the first diameter is about 18 microns and the second diameter is about 21 microns.
  • the fibers are wrapped around a rotating drawing drum to form a condensed mat, and the mat is removed from the drawing drum.
  • the mat is expanded, such as by pulling on opposite sides thereof, thereby forming the filtration media through which gas can flow.
  • the filtration media is then mounted in a filter frame, such as a disposable frame or the permanent frame of a gas duct.
  • the invention also contemplates a filtration media made of a plurality of continuous glass fibers, where each of the fibers has one of at least two substantially different diameters. Furthermore, each fiber's diameter is substantially the same throughout the filtration media.
  • the filtration media is contemplated to have first and second diameters in a range between about 17 microns and about 26 microns, where the first diameter is about 18 microns and the second diameter is about 21 microns.
  • the filtration media can be mounted in a gas flow path for removing particulate from gas flowing through the filtration media.
  • FIG. 1 is a view in perspective illustrating a bushing plate having orifices of two sizes.
  • FIG. 2 is a magnified schematic view illustrating filtration media made according to the present invention.
  • FIG. 3 is a table showing the MERV, pressure drop and particle size efficiency values for three samples tested in experiments to ascertain the advantages of the present invention over the prior art.
  • the preferred embodiment of the present invention uses a bushing plate 10 , shown in FIG. 1 , having orifices of at least two different sizes.
  • the smaller orifices 12 are formed by a size 25 drill resulting in an orifice diameter of 0.1495 inches, which forms fibers having a diameter in the range of about 16 to 22 microns, with an average fiber diameter of about 19 microns.
  • the larger orifices 14 are formed using a size 22 drill resulting in an orifice diameter of 0.1570 inches, which forms fibers having a diameter in the range of about 26 to 32 microns, with an average fiber diameter of about 29 microns.
  • the particular diameters noted herein are not the only orifice diameters. Other orifice sizes are contemplated, and will be apparent to the person having ordinary skill upon examining the description herein.
  • the orifices are formed in rows within a rectangular region on the bushing plate 10 shown in FIG. 1 .
  • the orifices of different size alternate along each row. Therefore, each orifice 12 of a smaller size has only larger size orifices 14 closest to it, and vice versa.
  • contemplated embodiments can have three, four or more different-sized orifices in the same bushing plate, and it is contemplated that the orifices will be alternated as much as possible on the plate. It is contemplated that these orifices can range in size sufficient to form fibers in the range from about 17 microns to about 26 microns in diameter.
  • the bushing plate 10 is used in the conventional Modigliani process for forming a mat, and then expanding the mat to form filtration media that is used in filters.
  • the bushing plate 10 is mounted beneath a furnace of molten glass that is directed through the orifices 12 and 14 to form cooled glass fibers that are drawn around a rotating drawing drum. These fibers form overlapping layers in a condensed mat that is then slit and removed from the drum.
  • the mat formed is then expanded in the conventional manner, such as by pulling on opposing ends so that the fibers change relative orientations, which causes the fibers to “fluff up.”
  • This expansion results in a filtration media that is slightly narrower, and significantly thicker, than the original condensed mat, but which can have one of many different thicknesses as will become apparent to a person of ordinary skill.
  • a contemplated thickness is about one inch, because this is common for residential HVAC filtration. Different thicknesses are necessary for different applications.
  • the mat formed by the bushing plate 10 has larger fibers alternating with smaller fibers as shown schematically in FIG. 2 .
  • the fibers in FIG. 2 have two substantially different sizes, and the sizes and differences should be considered exaggerated for illustrative purposes.
  • the filtration media with these different fiber diameters is placed in a frame, such as a disposable cardboard frame, and air is forced through it. When this occurs, the smaller and larger fibers provide advantageous filtration characteristics, as shown by experimental results shown in FIG. 3 .
  • Sample 1 is the filter made according to the invention
  • Sample 2 is a pleated synthetic fiber filter
  • Sample 3 is a conventional unpleated glass fiber filter. Both Sample 2 and Sample 3 have one fiber diameter throughout, as is conventional.
  • MEV Minimum Efficiency Reporting Value
  • the reason the filtration media made according to the invention is advantageous is that small cavities are formed in that cause the media to hold solid particles better than prior art filters. It is theorized that due to the size differences in the fibers, the orifices throughout the media may vary widely; i.e., the orifices have greater variations in size than in conventional filters. This could aid in holding particles of various sizes, and thereby produce superior results.
  • each of the fibers has the same diameter throughout the entire filter media.
  • the fibers have different fiber diameters within every “layer” of the media.
  • the filter of the present invention is different from conventional media, therefore, inasmuch it has two different sizes throughout the entire filter.
  • One application of the invention is in paint and gel coat filtration.
  • the composite industry boats are commonly manufactured using a “spray up” process, where filters capture the over-sprayed resin.
  • the present invention is particularly suited to this application.
  • this product in other industries, such as in residential heating, ventilation and air conditioning (HVAC) systems, industrial HVAC filtration, and others that will become apparent to a person of ordinary skill from this description.
  • HVAC heating, ventilation and air conditioning
  • the filter media made according to the invention can be made in a process other than the Modigliani process.
  • the present invention can be used in any process in which molten glass is extruded or otherwise forced, such as by gravity, through small orifices to form fibers.
  • any structural body in which orifices are formed to pass glass through can have the plurality of different-sized orifices.
  • the bushing plate is not the only such structure that will work.

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  • Life Sciences & Earth Sciences (AREA)
  • Geology (AREA)
  • Chemical & Material Sciences (AREA)
  • Chemical Kinetics & Catalysis (AREA)
  • Filtering Materials (AREA)
  • Nonwoven Fabrics (AREA)
  • Filtering Of Dispersed Particles In Gases (AREA)
  • Manufacture, Treatment Of Glass Fibers (AREA)

Abstract

A method of forming filtration media, and the media so formed. The media has glass fibers of at least two substantially different diameters, such as 18 microns and 21 microns. Each of the glass fibers is continuous throughout the media and is substantially the same diameter along its entire length. The fibers can be made using a bushing plate in the Modigliani process in which the plate has orifices of at least two different sizes. The fibers made thereby have two different sizes, thereby resulting in a filtration media superior to conventional media, despite having a similar amount of glass and no more weight.

Description

    CROSS-REFERENCES TO RELATED APPLICATIONS
  • This application claims the benefit of U.S. Provisional Application No. 60/625,028 filed Nov. 4, 2004.
  • STATEMENT REGARDING FEDERALLY-SPONSORED RESEARCH AND DEVELOPMENT
  • (Not Applicable)
  • REFERENCE TO AN APPENDIX
  • (Not Applicable)
  • BACKGROUND OF THE INVENTION
  • 1. Field of the Invention
  • This invention relates generally to filtration media, and more specifically to glass fiber filtration media.
  • 2. Description of the Related Art
  • A known method for making fiberglass is described in several patents to Modigliani: U.S. Pat. Nos. 2,546,230; 2,609,320; and 2,964,439 are incorporated herein by reference. These patents disclose an apparatus in which a slowly reciprocating, melting furnace feeds molten glass through spinning orifices which discharge an array of fine, continuous glass filaments or fibers that are wrapped circumferentially around a rapidly rotating drawing drum. The melting furnace uses a bushing plate with orifices of the same size, through which the molten glass flows, to form the glass fibers.
  • The melting furnace reciprocates relatively slowly in a longitudinal direction above the drum's rapidly rotating circumferential surface, thereby forming a build-up of layers of continuous fibers oriented at acute angles with one another. During winding of the fibers on the rotating drum, a binder, such as a thermosetting resin, is commonly applied by spraying the fibers already deposited on the drum to bind the fibers at their overlapping junctions with fibers of previously deposited layers.
  • After a suitable thickness of fibers has been created, the condensed mat is removed from the drum by slitting the mat longitudinally and parallel with the axis of the drum. The condensed mat can be modified subsequently by being deposited on a conveyor belt that moves at a very slow rate. The condensed mat is generally rectangular in shape, and the fibers in the mat extend, due to the orientation of the rectangular mat on the conveyor, substantially completely across the width of the mat and substantially perpendicular to the direction of movement of the conveyor belt. At the exit end of the conveyor belt, a retarding roller presses the condensed mat against the conveyor belt, which is supported by an oppositely rotating support roller. The leading end of the condensed mat beyond the retarding roller is stretched or expanded longitudinally up to hundreds of times its original, condensed length. The expanding is a continuous process with the leading end being pulled longitudinally while the retarding roller/support structure minimizes the forward movement of the remaining length of the condensed mat.
  • As the mat expands longitudinally, it also expands (“fluffs”) in the direction of the mat's thickness to a consistency resembling cotton candy. Additionally, during the expansion of the mat, the fibers that are originally oriented transversely to the direction of movement are pulled longitudinally, thereby tending to rotate and reorient the fibers to a 45 degree or greater angle with respect to the longitudinal direction. During the expansion process, in which the original mat increases in length enormously and “fluffs” to a significantly greater thickness, the mat necks down to a smaller width. Such an expanded product can be used for filtration purposes, such as by attaching the product to a frame.
  • As an alternative to using the product as a filtration media, the product can be compressed into a dense mat to use as a fibrous reinforcement, for example, in pultruded composite products. After the majority of the expanding takes place, the fluffed, expanded mat can be compressed in the direction of its thickness by rolling, and it is heated by radiant heaters to set the thermosetting resin incorporated during the winding of the fibers on the drum. Thereafter, the stretched glass fiber mat is wound on a spool. Thus, the compressed mat, which is much longer than the original, condensed mat, is a continuous strand fiberglass mat, because the condensed mat from which it is derived was formed from continuous strands of glass.
  • As noted above, the glass-melting furnace of the Modigliani process machine feeds molten glass through orifices that are formed in a bushing plate. The bushing plate is a flat plate, normally made of a metal alloy, through which holes are formed and through which molten glass flows during use. The size of each orifice has a direct effect on the diameter of the fibers formed thereby. Conventionally, bushing plate holes are all the same size in order to avoid temperature gradients that are present if different size fibers were used. The process of forming fibers can thus be “tuned” to the exact characteristics desired without having to compensate for a plurality of fiber diameters, and therefore, fiber characteristics. The orifices in the bushing plates are all drilled to a size that results in a particular fiber size. Therefore, a particular drill size results, according to conventional technology, in a particular finished fiber size.
  • The Applicant is aware of the use of a bushing plate with orifices of two different sizes to form a condensed glass fiber mat using the Modigliani process. The condensed mat was expanded and then compressed into a thin mat in the conventional manner and sold for use in polymer-reinforced composites. The sale of this compressed mat has occurred for several years. The fibers in this mat were between 28 and 40 microns in diameter, and the compressed mat had a thickness of approximately one-quarter inch. The characteristics of this mat make it unsuitable for use as a filtration media.
  • It is also known to be conventional for filtration media to have different fiber diameters, but only within layers of a multi-layer web. This is accomplished by laying fibers in separate layers, and making one layer with fibers of one size, and another layer with different fibers of a different size. Furthermore, fibers made using the Modigliani process can change each fiber's size during manufacture, for example by rotating the drawing drum faster, which produces a layer of one size fiber, and then rotating the drum slower, which produces another layer of a larger size fiber. For example, one can operate at a first drum speed, and, for example, get a 30 micron fiber, and then decrease the speed to get a 36 micron fiber. However, in all of the prior art, the fibers in each layer are the same diameter, even after expansion of the original mat.
  • BRIEF SUMMARY OF THE INVENTION
  • The invention is a method of making a filter. The method comprises extruding molten glass through a plurality of orifices formed in a plate. This forms a plurality of glass fibers, and each of the fibers extends from a corresponding one of the orifices. Furthermore, each of the plurality of orifices has one of at least two substantially different orifice diameters. In one embodiment, there are first and second fiber diameters in a range between about 17 microns and about 26 microns, and in one particular embodiment, the first diameter is about 18 microns and the second diameter is about 21 microns.
  • The fibers are wrapped around a rotating drawing drum to form a condensed mat, and the mat is removed from the drawing drum. The mat is expanded, such as by pulling on opposite sides thereof, thereby forming the filtration media through which gas can flow. The filtration media is then mounted in a filter frame, such as a disposable frame or the permanent frame of a gas duct.
  • The invention also contemplates a filtration media made of a plurality of continuous glass fibers, where each of the fibers has one of at least two substantially different diameters. Furthermore, each fiber's diameter is substantially the same throughout the filtration media. The filtration media is contemplated to have first and second diameters in a range between about 17 microns and about 26 microns, where the first diameter is about 18 microns and the second diameter is about 21 microns. The filtration media can be mounted in a gas flow path for removing particulate from gas flowing through the filtration media.
  • BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS
  • FIG. 1 is a view in perspective illustrating a bushing plate having orifices of two sizes.
  • FIG. 2 is a magnified schematic view illustrating filtration media made according to the present invention.
  • FIG. 3 is a table showing the MERV, pressure drop and particle size efficiency values for three samples tested in experiments to ascertain the advantages of the present invention over the prior art.
  • In describing the preferred embodiment of the invention which is illustrated in the drawings, specific terminology will be resorted to for the sake of clarity. However, it is not intended that the invention be limited to the specific term so selected and it is to be understood that each specific term includes all technical equivalents which operate in a similar manner to accomplish a similar purpose. For example, the word connected or term similar thereto are often used. They are not limited to direct connection, but include connection through other elements where such connection is recognized as being equivalent by those skilled in the art.
  • DETAILED DESCRIPTION OF THE INVENTION
  • The preferred embodiment of the present invention uses a bushing plate 10, shown in FIG. 1, having orifices of at least two different sizes. In one embodiment, the smaller orifices 12 are formed by a size 25 drill resulting in an orifice diameter of 0.1495 inches, which forms fibers having a diameter in the range of about 16 to 22 microns, with an average fiber diameter of about 19 microns. The larger orifices 14 are formed using a size 22 drill resulting in an orifice diameter of 0.1570 inches, which forms fibers having a diameter in the range of about 26 to 32 microns, with an average fiber diameter of about 29 microns. Of course, the particular diameters noted herein are not the only orifice diameters. Other orifice sizes are contemplated, and will be apparent to the person having ordinary skill upon examining the description herein.
  • The orifices are formed in rows within a rectangular region on the bushing plate 10 shown in FIG. 1. The orifices of different size alternate along each row. Therefore, each orifice 12 of a smaller size has only larger size orifices 14 closest to it, and vice versa.
  • Other contemplated embodiments can have three, four or more different-sized orifices in the same bushing plate, and it is contemplated that the orifices will be alternated as much as possible on the plate. It is contemplated that these orifices can range in size sufficient to form fibers in the range from about 17 microns to about 26 microns in diameter.
  • The bushing plate 10 is used in the conventional Modigliani process for forming a mat, and then expanding the mat to form filtration media that is used in filters. Thus, the bushing plate 10 is mounted beneath a furnace of molten glass that is directed through the orifices 12 and 14 to form cooled glass fibers that are drawn around a rotating drawing drum. These fibers form overlapping layers in a condensed mat that is then slit and removed from the drum.
  • The mat formed is then expanded in the conventional manner, such as by pulling on opposing ends so that the fibers change relative orientations, which causes the fibers to “fluff up.” This expansion results in a filtration media that is slightly narrower, and significantly thicker, than the original condensed mat, but which can have one of many different thicknesses as will become apparent to a person of ordinary skill. A contemplated thickness is about one inch, because this is common for residential HVAC filtration. Different thicknesses are necessary for different applications.
  • The mat formed by the bushing plate 10, and, therefore, the resulting filtration media, has larger fibers alternating with smaller fibers as shown schematically in FIG. 2. The fibers in FIG. 2 have two substantially different sizes, and the sizes and differences should be considered exaggerated for illustrative purposes. The filtration media with these different fiber diameters is placed in a frame, such as a disposable cardboard frame, and air is forced through it. When this occurs, the smaller and larger fibers provide advantageous filtration characteristics, as shown by experimental results shown in FIG. 3. In FIG. 3, Sample 1 is the filter made according to the invention, Sample 2 is a pleated synthetic fiber filter and Sample 3 is a conventional unpleated glass fiber filter. Both Sample 2 and Sample 3 have one fiber diameter throughout, as is conventional. The results show that the efficiency rating, which is denoted as the Minimum Efficiency Reporting Value (MERV) obtained according to the well-known ASHRAE test 52.2, is higher for filtration media made according to the invention than with synthetic pleated and conventional glass fiber filters. This occurs while the invention has a smaller pressure drop than the pleated filter, and higher maximum particle size removal efficiency than both other filters.
  • It is theorized that the reason the filtration media made according to the invention is advantageous is that small cavities are formed in that cause the media to hold solid particles better than prior art filters. It is theorized that due to the size differences in the fibers, the orifices throughout the media may vary widely; i.e., the orifices have greater variations in size than in conventional filters. This could aid in holding particles of various sizes, and thereby produce superior results.
  • With the present invention, it is preferred that each of the fibers has the same diameter throughout the entire filter media. Thus, because there are different diameter fibers throughout the entire thickness, the fibers have different fiber diameters within every “layer” of the media. The filter of the present invention is different from conventional media, therefore, inasmuch it has two different sizes throughout the entire filter.
  • One application of the invention is in paint and gel coat filtration. For example, in the composite industry boats are commonly manufactured using a “spray up” process, where filters capture the over-sprayed resin. The present invention is particularly suited to this application. Of course, there are applications for this product in other industries, such as in residential heating, ventilation and air conditioning (HVAC) systems, industrial HVAC filtration, and others that will become apparent to a person of ordinary skill from this description.
  • It is contemplated that the filter media made according to the invention can be made in a process other than the Modigliani process. For example, in any process in which molten glass is extruded or otherwise forced, such as by gravity, through small orifices to form fibers, the present invention can be used. Thus, any structural body in which orifices are formed to pass glass through can have the plurality of different-sized orifices. The bushing plate is not the only such structure that will work.
  • While certain preferred embodiments of the present invention have been disclosed in detail, it is to be understood that various modifications may be adopted without departing from the spirit of the invention or scope of the following claims.

Claims (9)

1. A method of making a filtration media, the method comprising:
(a) forcing molten glass through a plurality of orifices formed in a body to form a plurality of glass fibers, wherein each of said glass fibers extends from a corresponding one of said orifices and each of said orifices has one of at least two substantially different orifice diameters, thereby causing each of said glass fibers to have one of at least two substantially different diameter;
(b) wrapping said glass fibers around a rotating drawing drum to form a condensed mat;
(c) removing the condensed mat from the drawing drum;
(d) expanding the mat's exterior dimensions, thereby forming filtration media.
2. The method in accordance with claim 1, further comprising the step of directing a flow of gas through the filtration media for removing particulate from the gas.
3. A product produced according to the process of claim 1.
4. A filtration media made of a plurality of continuous glass fibers, each of said fibers having one of at least two substantially different diameters, and wherein each fiber's diameter is substantially the same throughout the filtration media.
5. The filtration media in accordance with claim 4, wherein said at least two substantially different diameters further comprise first and second diameters in a range between about 17 microns and about 26 microns.
6. The filtration media in accordance with claim 5, wherein the first diameter is about 18 microns and the second diameter is about 21 microns.
7. The filtration media in accordance with claim 5, wherein the filtration media is mounted in a gas flow path for removing particulate from gas flowing through the filtration media.
8. The filtration media in accordance with claim 5, wherein the thickness of the filtration media is about one inch.
9. A method of making filtration media, the method comprising
(a) disposing a container of molten glass above a rotating drawing drum;
(b) forcing molten glass through a plurality of orifices formed in a body beneath the container to form a plurality of glass fibers, wherein each of said glass fibers extends from a corresponding one of said orifices and each of said orifices has one of at least two substantially different orifice diameters thereby causing each of said glass fibers to have one of at least two substantially different diameters;
(c) reciprocating the container while wrapping said glass fibers around the rotating drawing-drum to form a condensed mat;
(d) removing the condensed mat from the drawing drum;
(e) applying a tensile force to at least one edge of the mat for expanding the mat's exterior dimensions.
US11/052,411 2004-11-04 2005-02-07 Glass fiber filtration media with at least two different fiber diameters Abandoned US20060093815A1 (en)

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US11/052,411 US20060093815A1 (en) 2004-11-04 2005-02-07 Glass fiber filtration media with at least two different fiber diameters
PCT/US2006/004287 WO2006086386A2 (en) 2005-02-07 2006-02-07 Glass fiber filtration media with at least two different fiber diameters
US11/375,862 US20060217019A1 (en) 2004-11-04 2006-03-15 Glass fiber filtration media with at least two different fiber diameters

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US9694510B2 (en) 2015-03-27 2017-07-04 Charles Douglas Spitler Skin stiffness characteristics and loft control production system and method with variable moisture content in input fiberglass media
US9695084B2 (en) 2015-05-11 2017-07-04 Charles Douglas Spitler Preparation for fiberglass air filtration media
US9968876B1 (en) 2014-02-14 2018-05-15 Superior Fibers, Llc Method of manufacturing fiberglass filtration media
US10106452B2 (en) * 2014-02-14 2018-10-23 Superior Fibers, Llc System and method of continuous glass filament manufacture
US20190119152A1 (en) * 2014-02-14 2019-04-25 Superior Fibers, Llc System and Method of Continuous Glass Filament Manufacture
US10487427B2 (en) 2014-02-14 2019-11-26 Superior Fibers, Llc System and method for continuous strand fiberglass media processing

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Publication number Priority date Publication date Assignee Title
US9968876B1 (en) 2014-02-14 2018-05-15 Superior Fibers, Llc Method of manufacturing fiberglass filtration media
US10106452B2 (en) * 2014-02-14 2018-10-23 Superior Fibers, Llc System and method of continuous glass filament manufacture
US20190119152A1 (en) * 2014-02-14 2019-04-25 Superior Fibers, Llc System and Method of Continuous Glass Filament Manufacture
US10351462B1 (en) 2014-02-14 2019-07-16 Superior Fibers, Llc Method of manufacturing fiberglass filtration media
US10487427B2 (en) 2014-02-14 2019-11-26 Superior Fibers, Llc System and method for continuous strand fiberglass media processing
US9694510B2 (en) 2015-03-27 2017-07-04 Charles Douglas Spitler Skin stiffness characteristics and loft control production system and method with variable moisture content in input fiberglass media
US10046477B2 (en) 2015-03-27 2018-08-14 Superior Fibers, Llc Skin stiffness characteristics and loft control production system and method with variable moisture content in input fiberglass media
US9695084B2 (en) 2015-05-11 2017-07-04 Charles Douglas Spitler Preparation for fiberglass air filtration media

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