WO2015025407A1 - Bloc de terre rempli de terre de culture, procédé de culture de plantes, et plante cultivée en bloc de terre - Google Patents
Bloc de terre rempli de terre de culture, procédé de culture de plantes, et plante cultivée en bloc de terre Download PDFInfo
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- WO2015025407A1 WO2015025407A1 PCT/JP2013/072459 JP2013072459W WO2015025407A1 WO 2015025407 A1 WO2015025407 A1 WO 2015025407A1 JP 2013072459 W JP2013072459 W JP 2013072459W WO 2015025407 A1 WO2015025407 A1 WO 2015025407A1
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- soil
- cultivation
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- A—HUMAN NECESSITIES
- A01—AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
- A01G—HORTICULTURE; CULTIVATION OF VEGETABLES, FLOWERS, RICE, FRUIT, VINES, HOPS OR SEAWEED; FORESTRY; WATERING
- A01G24/00—Growth substrates; Culture media; Apparatus or methods therefor
- A01G24/40—Growth substrates; Culture media; Apparatus or methods therefor characterised by their structure
- A01G24/44—Growth substrates; Culture media; Apparatus or methods therefor characterised by their structure in block, mat or sheet form
Definitions
- the present invention relates to a soil-filled soil block used for cuttings, sowing, transplanting, and the like for plant stem insertion, leaf cutting, root cutting, and root grafting, and a plant cultivation method using the soil block. And a plant cultivated in the soil block (hereinafter referred to as “soil block cultivated plant”).
- the hole B since the hole B is small and shallow, when the soil block is stacked for storage or transportation, the hole B may be deformed by its own weight (load) and closed. For this reason, the hole B played only the role of the mark (mark which shows a block center part) at the time of performing plant cultivation work.
- the hole B In order to cultivate the plant C in the hole B, every time it is cultivated, the hole B has a shape, size, and depth suitable for cultivation by re-drilling with a wire or expanding the hole. Had to be reworked.
- the molded soil block may be damaged, and if it is sown in the reworked hole, the soil for forming the soil block will be covered with the seed, and the reworked hole will be cut or grafted. Then, it was troublesome that the soil for forming the soil block had to be brought in and stabilized. When the block was damaged or deformed, it was necessary to restore the original shape, and the repair work was troublesome and time consuming.
- An object of the present invention is to provide a soil block which can be planted without separately preparing soil for cultivation, a plant cultivation method using the soil block, and a soil block cultivation plant.
- soil block filled with soil for cultivation of the present invention is a natural soil, artificial soil, resin, a mixture thereof (hereinafter referred to as “molding soil”) compressed into a block of arbitrary shape.
- a bottomed work hole is opened on the upper surface of the molded block body, and the work hole is filled with soil suitable for plant cultivation (hereinafter referred to as “cultivation soil”) such as natural soil, artificial soil, resin, and a mixture thereof.
- soil block filled with soil for cultivation hereinafter simply referred to as “soil block” is a natural soil, artificial soil, resin, a mixture thereof.
- the block body is not easily deformed, the work hole is not easily blocked, and the shape after molding can be self-held (the size is reduced by drying, but the shape is constant (including almost constant; detailed description of the invention and claims)
- the working hole has a size and depth that facilitates planting (planting) such as sowing, transplanting, cuttings, etc. (at least the depth that enables cuttings) and is filled
- the filled soil for cultivation and the block main body have a soil quality and an amount of soil capable of growing the cultivated plant to an arbitrary growth stage. It is desirable that the thickness (width) of the outer periphery of the work hole of the block body is designed to be a dimension that does not easily collapse after molding.
- the soil for cultivation contains fertilizer (nutrient) necessary for the growth target.
- the nutrient may be liquid, powder, or granular.
- the liquid nutrient can be adsorbed on an adsorbent made of a material that easily adsorbs nutrients such as zeolite, and the nutrient adsorbed adsorbent is mixed with the cultivation soil, so that the nutrient can be included in the cultivation soil.
- the molding soil can also contain nutrients necessary for the growth target as described above, and the molding soil can be compression-molded to form a block body.
- the soil for filling the soil block filled with the soil is uncompressed to the extent that the working hole is filled with its own weight, or the non-compressed filled soil for cultivation can be easily post-processed such as drilling, grooving, making a dent, etc. It is something that has been compacted. In any case, at least the softness that can be cut without post-processing.
- the soil block is a single unit having one unit as a basic unit, an integrated unit in which two or more soil blocks are integrally formed, or an integrated unit in which a divided part that can be divided into a single unit or two or more soil blocks is formed. It can be shaped.
- the individual soil blocks of the integrated type and the divided integrated type are filled with cultivation soil in the working holes.
- a space portion can be provided between the outer peripheral surfaces of adjacent block bodies.
- a part of the outer peripheral surface of the adjacent block main body is in contact, and a space is formed in the other part.
- the space allows the outer peripheral surface of the block body to come into contact with air, so that the roots of the plants extending from the cultivation soil into the block main body can be prevented from extending out of the block main body. Inside, it is possible to take in oxygen necessary for plant cultivation.
- the work hole can be made gradually thinner from the upper surface side to the bottom surface side of the block body.
- the block main body can be gradually thinned over the entire length from the upper surface side to the bottom surface side, or only the bottom side can be gradually thinned from the middle of the work hole.
- the soil block can cover the top surface of the soil block from the top of the filled cultivation soil with a covering material to prevent the filled cultivation soil from falling off.
- Plant cultivation method of the present invention suppresses the growth of roots of plants cultivated in the soil for cultivation filled in the working holes of the soil block, and the tip of the root is the outer peripheral surface of the soil block (slightly inside of the outer peripheral surface, somewhat Including the outside: the same in the detailed description of the invention and the claims), and a cultivation method that prevents root pots from being formed on the outer peripheral surface of the block body.
- plants are cultivated by planting work such as sowing, transplanting, cuttings, etc.
- the outer peripheral surface of the soil block is Touching the air, the root of the plant is brought into contact with air of humidity that is difficult to stretch on the outer peripheral surface, and the elongation of the root is stopped near the contact position with the air (outer peripheral surface).
- a root pot is not formed, but the root is stretched from the cultivation soil to the whole of the block body (including almost the whole: the same in the detailed description of the invention and the claims below), and the soil block is bare. Make sure that the block body does not collapse (even if not in a container or tray).
- the soil block In order to make the outer peripheral surface of the soil block come into contact with air, the soil block is put in a larger container and a gap is provided between the outer peripheral surface of the soil block and the inner peripheral surface of the container. it can. When cultivating a soil block without putting it in a container, the soil block is placed indoors or outdoors while being bare.
- soil block cultivation plant of the present invention The plant cultivated with the soil block of the present invention (soil block cultivated plant) has been filled in any of the working holes of the above-described unitary soil block, integral soil block, or divided integral soil block of the present invention. Plants are cultivated in the cultivation soil. In this case, the roots extend only to the outer peripheral surface of the soil block, but the block main body is stretched throughout the block main body so that the block main body does not collapse.
- the soil block cultivated plant of the present invention can be a cutting plant seedling that has been cut and grown on the cultivation soil filled in the working hole. Usually, since the roots of cut stems and grafted seedlings are cut, the roots are newly rooted and project from the cut surface or the contact surface with the soil.
- the soil block of the present invention has the following effects. (1) Since a work hole having a size and depth capable of cultivating a plant is formed in the block main body and the cultivation soil is filled in the work hole, plant cultivation is performed using the filled cultivation soil. Therefore, it is not necessary to prepare soil for cultivation, and plant cultivation can be easily performed. (2) Since the block body is hard to collapse even when stacked, it is hard to lose its shape, the work hole is hard to close, and it is compressed and solidified to a hardness that can self-hold the shape after molding. It is easy to carry out operations such as transportation, cultivation and shipping.
- the cultivation soil filled in the working hole is non-compressed, or the non-compressed cultivation soil is pressed and compacted to such an extent that post-processing such as drilling, grooving, and dent making can be easily performed. Therefore, planting (planting) such as sowing and cuttings on the soil for cultivation can be performed easily.
- the filled cultivation soil and block main body have a soil quality and an amount of soil that allow the cultivated plant to grow up to an arbitrary growth stage, and thus are easy to germinate, root, and settle, so that the plant grows. It becomes a suitable cultivation environment.
- both or at least one of the filled cultivation soil and block main body contains nutrients
- the plant is more suitable for the growth environment of the plant, and the plant is easy to grow even if it is smaller than the conventional soil block.
- the block body has a columnar shape with a height of about 40-50 mm and a diameter of about 30-40 mm, and the soil block has a hole diameter of about 15-25 mm
- the seedling will be about several hundred mm ( It can be grown (until it is equivalent to raising a seedling in a general-purpose seedling pot with a diameter of 90 mm).
- (6) In the case of an integrated soil block or a divided integrated soil block, it can be stored, cultivated, transported, shipped, etc.
- the integrated soil block and the divided integrated soil block can transport a large number of integrated soil blocks at once by a machine, workability is improved and work efficiency is improved.
- the plant cultivation method of the present invention has the following effects. (1) Since the tip of the root of the plant extends only to the outer peripheral surface of the block main body, plant cultivation that can be transplanted or planted as it is without loosening or cutting the root is possible. (2) Although the roots are extended only to the outer peripheral surface of the block main body, they can be stretched throughout the block main body, so that the plant cultivation in which the soil block does not lose its shape even when taken out from the container can be performed.
- the soil block cultivation plant of the present invention has the following effects. (1) Since the roots extend only to the outer peripheral surface of the soil block, the roots can be transplanted or planted as they are, the roots are not damaged at the time of transplanting or planting, and the plant becomes easy to grow after transplanting or planting. (2) Although the roots extend only to the outer peripheral surface of the soil block, they are stretched in the block body, so the soil block does not collapse, and plants can be shipped and distributed to the market without containers. Cost reduction can be achieved. (3) Since the plant cultivated in the integrated soil block or the divided integrated soil block can be shipped and distributed as it is, it is easy to handle.
- FIG. 1 It shows an example of the soil block of the present invention
- (a) is a perspective view when the block body is cylindrical and the work hole is a circular bottom
- (b) is a block body is cylindrical.
- An example of the soil block of this invention is shown, Comprising: (a) is a perspective view which shows an example at the time of plant cultivation to the soil for cultivation with which the work hole was filled, (b) is a soil block cultivation plant of (a) FIG.
- the soil block of the present invention (a) is a plan view of an integrated soil block in which a large number of cylindrical soil blocks are integrally formed in a staggered arrangement, and (b) is a vertical and horizontal shape of a large number of cylindrical soil blocks.
- (a) is a top view of the integrated soil block by which many square-shaped soil blocks were integrally molded in the front and rear, right and left
- (b) is the integrated soil block of (a).
- the longitudinal cross-sectional view which shows the state which the root of the plant cultivated to the side extended to the adjacent soil block.
- Sectional drawing which is another example of the soil block of this invention, and shows the state which carried out the plant cultivation to the integrated soil block with a space part between the outer peripheral surfaces of the adjacent soil block.
- It is explanatory drawing of the plant cultivation method of this invention Comprising: (a) is explanatory drawing of the cultivation method which puts a soil block in a container and makes the outer peripheral surface of a soil block touch air, and (b) is (a). Explanatory drawing of the soil block cultivation plant which took out the plant cultivated with this cultivation method from the container. The perspective view which shows an example of the conventional soil block.
- the soil block 1 is formed by adding moisture to the molding soil and kneading it into a block body 2 which is compression-molded and hardened into a block shape.
- a bottomed working hole 3 is formed in the upper surface of the block body 2.
- the shape of the work hole 3 is made narrower such as an inverted conical shape (FIG. 1A) or an inverted polygonal pyramid shape (FIG.
- Plants C such as cutting seedlings and grafted seedlings cultivated in the soil for cultivation in the inside become easy to settle at the lower center of the work hole 3, and the root 10 becomes easy to stretch evenly (including substantially equal) toward the outer periphery of the block body 2. It is desirable to make the soil block easy to stabilize even if the seedling C grows.
- the work hole 3 may be gradually reduced from the upper surface side to the bottom surface side of the block body 2, and only the lower side (only the bottom side) may be gradually reduced from the middle of the work hole 3. .
- the material for the forming soil is not particularly limited as long as it does not hinder plant cultivation, but soil for plant cultivation is suitable.
- peat moss black peat moss (hereinafter, both are referred to as “peet moss”), red crust, humus, a mixture of two or more of these, and others may be used.
- the block body 2 is made by mixing peat moss, which is a molding soil, with water and kneading it, and pressing it into a block shape (compression molding), or adding a binder such as an adhesive or a sticking agent to the molding soil, and nutrients as necessary. (Fertilizer) can be included and molded.
- the compression molding may be mechanical or manual.
- the block body 2 is hard to be crushed even when stacked after molding, hard to lose its shape, hard to close the work hole 3, and has a hardness capable of self-holding the shape after molding, and is hard enough to be post-processed during implantation. It is desirable that it is compression molded and solidified.
- the cultivation soil 4 is suitable to contain nutrients. Nutrients are mixed with powdered and granular materials in the molding soil, liquid materials are included, or adsorbed on adsorbents that easily adsorb nutrients such as zeolite, and the adsorbed adsorbed nutrients are mixed into the molding soil. Can be included.
- the filled cultivation soil 4 and the block main body 2 have a soil quality and a soil amount that allow the cultivated plant C to grow to an arbitrary growth stage. If necessary, both or one of the filled cultivation soil 4 and the block main body 2 may contain nutrients.
- the working hole 3 can be formed by cutting or pushing the upper surface of the block body 2 after the block body 2 is formed, or can be formed when the block body 2 is formed.
- the working hole 3 has a size and a depth that allow easy seeding, easy transplanting of the seedling C, and easy cutting.
- the size and depth (size) of the working hole 3 can be arbitrarily designed according to the purpose of cultivation, but at least have a width and depth suitable for filling the cultivation soil 4. Further, although depending on the size of the seedling C, at least the size and depth of cuttings, depending on the shape and size of the seeds, at least the size and depth of sowing, the size of the seedling C (degree of growth) Depending on the size, at least the seedling C should be sized and deep enough for transplantation. Whatever the diameter of the block body 2 and the height of the block body 2, the diameter of the work hole 3 is about 4/7 or less of the diameter of the block body 2, and the depth of the work hole 3 is equal to the height of the block body. About 3/4 or less is suitable. As an example, when the block body 2 has a diameter of 35 mm and a height of 40 mm, a hole diameter of 10 to 25 mm and a hole depth of about 10 to 30 mm are suitable.
- the width (thickness) of the edge 12 should be 5 mm or more, preferably 7.5 mm or more.
- the shape of the work hole 3 is not limited to a circle, and may be, for example, a rectangular hole as shown in FIG.
- various types of work holes 3 having shapes and sizes other than those described above are prepared, and the type corresponding to the type of plant C to be cultivated and the growth of plant C can be selected and used. preferable.
- the cultivation soil 4 filled in the work hole 3 may be any material having the performance and purpose necessary for plant cultivation, and may be the same as or different from the molding soil.
- commercially available soil such as peat moss, red bean clay, and mulch, a mixture of two or more of these, and other materials may be used.
- the cultivation soil 4 is filled in the work hole 3 in a non-compressed manner (filled in the state of roses), or the post-processing such as drilling, grooving, making a dent, etc. can be made easily. It is compacted so that it can be cultivated easily.
- the filling amount of the working hole 3 may be filled up to the edge of the working hole 3, but can be smaller than that. In any case, various planting operations such as sowing, transplanting, and cutting can be easily performed.
- a working part 5 is formed by the working hole 3 and the cultivation soil 4 filled in the working hole 3.
- the soil block 1 of the present invention may be one in which two or more soil blocks 1 are integrally molded (integrated soil block).
- FIG. 3A shows an integrated soil block in which cylindrical soil blocks 1 are integrated in a staggered arrangement
- FIG. 3B shows an outer peripheral surface of the cylindrical soil block 1. Is an integrated soil block connected vertically and horizontally.
- a space 8 is formed between the outer peripheral surfaces of adjacent soil blocks 1, and the outer peripheral surface 7 of the block body 2 is exposed to the outside. .
- the working hole 3 of each soil block 1 is filled with cultivation soil 4.
- FIG. 4 (a) is an integrated soil block in which square-shaped soil blocks 1 are integrated vertically and horizontally in a grid pattern.
- dividing portions 6 such as lines and grooves are provided at the upper boundary portions of the individual soil blocks 1, and the dividing blocks 6 are divided so that the soil blocks 1 can be divided one by one or a desired number.
- the soil 4 for cultivation is already filled in the work hole 3 of each soil block.
- the integrated soil block of FIG. 5 is obtained by integrating a large number of block bodies 2 vertically and horizontally in the same manner as the integrated soil block of FIG. 4A, and a downward V-shaped space on the bottom surface side of the block body 2.
- a portion 8 is provided so that the outer peripheral surface 7 on the bottom surface side of the block body 2 is exposed to the outside.
- the space 8 may have other shapes and sizes.
- the space portion 8 can also be a split-integrated soil block that is also used as the split portion 6.
- the soil block 1 is supplied and exhausted through the space part 8 to provide an environment suitable for cultivation of the plant C. And the plant C is less likely to rot. Further, when the root 10 extends to the outer peripheral surface 7 of the block body 2, it touches the air and does not extend any more (elongation is prevented). Even in this case, the root 10 can be stretched throughout the block body 2.
- Both the integrated soil block and the divided integrated soil block are the same as the structure of the single soil block except that two or more soil blocks 1 are integrated.
- FIGS. 2A and 2B An example of the plant cultivation method using the soil block 1 of the present invention will be described.
- the cultivation method shown in FIGS. 2A and 2B is an example in the case where the seedling C is transplanted to the cultivation soil 4 in the work hole 3 of the single soil block 1.
- the soil for cultivation 4 is dug back with a finger or a rod, a hole is made, the seedling C is transplanted into the hole, and the soil for cultivation 4 is brought around the seedling C to stabilize the seedling C.
- the plant cultivation method of the present invention can cultivate plants with cuttings in addition to the transplanting and sowing of the seedling C described above. Cutting is performed by directly inserting the cultivated stem, leaves, grafts, etc. into the cultivation soil 4. At this time, if necessary, the cultivation soil 4 is moved to the periphery of the stems, leaves, grafts, etc. to stabilize the stems, leaves, grafts, etc.
- Plant cultivation method 2 using soil block cultivation method for suppressing root elongation
- the root 10 of the plant C cultivated in the cultivation soil 4 filled in the work hole 3 is suppressed, and the root 10 stretches throughout the interior of the block body 2. It is possible to extend the front end portion 11 only to the outer peripheral surface 7 of the block main body 2.
- the root 10 has a characteristic that it is difficult to stretch when exposed to air. Therefore, in this invention, the outer peripheral surface 7 of the block main body 2 is made to touch air, and it grows.
- the soil block 1 may be installed indoors or outdoors in a naked state as shown in FIG. 5, and as shown in FIG.
- a space (gap) 8 may be provided between the outer peripheral surface 7 of the soil block 1 and the inner peripheral surface 9a of the container 9 in a large container 9 (regardless of shape, size, material, etc.).
- the tip portion 11 of the root 10 of the plant C cultivated in the soil block 1 extends to the outer peripheral surface 7 of the block body 2, the tip portion of the root 10 touches the air and does not extend any more.
- the protrusion slightly protrudes from the outer peripheral surface 7.
- the root 10 is sufficiently stretched over almost the entire area of the block body 2, and the block body 2 is compression-molded so as not to be crushed and easily deformed.
- the soil block 1 does not lose its shape.
- Plant cultivation method using monolithic soil block or split monolithic soil block Although the said plant cultivation method is a case where a single-piece
- the type of plant C to be cultivated, the time of sowing, the number of seeds to be seeded, the transplanting time of seedling C, the number of transplants, the timing of cutting, etc. are selected according to the suitability of plant C, One or two or more seeds can be sown on the filled cultivation soil 4 in the working hole 3, one or two or more seedlings C can be transplanted, or one or two or more seeds can be cut.
- the cultivation management after sowing, transplanting, and cutting can be performed in the same manner as the cultivation management in a general-purpose container.
- the soil block cultivated plant of the present invention is a plant cultivated by any one of the above-described plant cultivation methods in the soil 4 for cultivating filled with the above-described unitary soil block 1, the integral soil block or the divided integral soil block. .
- the root 10 extends from the cultivation soil 4 into the block body 2.
- the plant C cultivated by the plant cultivation method in which the outer peripheral surface 7 of the block body 2 is exposed to air, the tip portion 11 of the root 10 is the block body as shown in FIG. 6 (b).
- the plant C extends only to the outer peripheral surface 7 of 2.
- the root 10 can be stretched inside the block body 2.
- the root 10 of the plant C cultivated in the integrated soil block extends to the block body 2 of the adjacent soil block 1 and becomes intertwined as shown in FIG.
- the root 10 extends to the upper part of the block body 2 of the adjacent soil block 1 and is intertwined. It only grows. Even in this case, the root 10 is stretched over the entire inside of the block main body 2, and even if the block main body 2 is taken out from the container 9, it is difficult to lose its shape.
- the integrated soil block cultivated plant of FIG. 4 (b) and the integrated soil block cultivated plant of FIG. 5 can also be shipped without a tray and distributed to the market as shown in these drawings.
- the soil block cultivated plant shown in FIG. Can be transplanted or planted, or placed on the bed of a hydroponics system.
- the intertwined roots 10 are cut by the division, the roots 10 are stimulated, and a positive effect can be expected for the subsequent growth of the plant C.
- the soil block 1 of the present invention can be used for business purposes or for a kitchen garden. It can also be used for cultivation in planters and flowerpots.
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Abstract
L'invention concerne un bloc de terre rempli de terre de culture tel qu'un orifice opérationnel est ouvert dans une face supérieure d'un corps principal de bloc formé en moulant par compression une terre de culture, et que la terre de culture remplit l'intérieur de cet orifice opérationnel. Le corps principal de bloc est solidifié en moulant sa forme par compression selon un niveau de dureté lui permettant de tenir tout seul, et amoindrissant le risque de déformation ou d'obturation de l'orifice opérationnel. L'orifice opérationnel présente une profondeur d'une taille facilitant les opérations de plantation telles que le semis, le repiquage, le bouturage, ou similaire. Lesdites opérations de plantation sont possibles dans la terre de culture remplissant ainsi l'orifice opérationnel, et cette terre de culture ainsi que le corps principal de bloc sont tels que leur qualité et leur quantité permet de faire grandir une plante cultivée jusqu'à un niveau de croissance arbitraire. Selon les besoins, des éléments nutritifs peuvent être incorporés. Ce bloc de terre rempli de terre de culture peut être formé d'un seul tenant ou d'un seul tenant subdivisé.
Priority Applications (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| JP2014505445A JP5525666B1 (ja) | 2013-08-22 | 2013-08-22 | 栽培用土充填済みソイルブロックと、植物栽培方法と、ソイルブロック栽培植物 |
| PCT/JP2013/072459 WO2015025407A1 (fr) | 2013-08-22 | 2013-08-22 | Bloc de terre rempli de terre de culture, procédé de culture de plantes, et plante cultivée en bloc de terre |
Applications Claiming Priority (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| PCT/JP2013/072459 WO2015025407A1 (fr) | 2013-08-22 | 2013-08-22 | Bloc de terre rempli de terre de culture, procédé de culture de plantes, et plante cultivée en bloc de terre |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| WO2015025407A1 true WO2015025407A1 (fr) | 2015-02-26 |
Family
ID=51175731
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/JP2013/072459 Ceased WO2015025407A1 (fr) | 2013-08-22 | 2013-08-22 | Bloc de terre rempli de terre de culture, procédé de culture de plantes, et plante cultivée en bloc de terre |
Country Status (2)
| Country | Link |
|---|---|
| JP (1) | JP5525666B1 (fr) |
| WO (1) | WO2015025407A1 (fr) |
Cited By (3)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| NL2020943B1 (en) * | 2018-05-17 | 2019-11-25 | Duemmen Group Bv | A rooting plug structure and a method |
| CN113950974A (zh) * | 2021-11-16 | 2022-01-21 | 黑龙江恒元汉麻科技有限公司 | 一种花叶生产用工业大麻一站式扦插育苗方法 |
| WO2022175715A1 (fr) | 2021-02-18 | 2022-08-25 | Lucky Plants Bv | Système de transplantation et procédé de transplantation progressive et de culture de plantes |
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| JPS5891266U (ja) * | 1981-12-17 | 1983-06-21 | 株式会社みかど育種農場 | 育苗マツト |
| JPS62139250U (fr) * | 1986-02-28 | 1987-09-02 | ||
| JPH0174744U (fr) * | 1987-11-06 | 1989-05-22 | ||
| JP2000139233A (ja) * | 1998-11-11 | 2000-05-23 | Toppan Printing Co Ltd | 植物栽培容器 |
| JP2005124512A (ja) * | 2003-10-24 | 2005-05-19 | Daiei Bussan:Kk | 苗木ポット、苗木ポットの包装方法及び苗木ポットの集合構造体 |
Family Cites Families (3)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JPS5971621A (ja) * | 1982-10-15 | 1984-04-23 | 株式会社日立製作所 | 植物支持方法 |
| JP3059657U (ja) * | 1998-12-07 | 1999-07-13 | 英治 大朏 | 花及び野菜等の育苗箱装置 |
| JP4814463B2 (ja) * | 2001-09-28 | 2011-11-16 | サントリーホールディングス株式会社 | 植物栽培方法および植物栽培具 |
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2013
- 2013-08-22 JP JP2014505445A patent/JP5525666B1/ja active Active
- 2013-08-22 WO PCT/JP2013/072459 patent/WO2015025407A1/fr not_active Ceased
Patent Citations (5)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JPS5891266U (ja) * | 1981-12-17 | 1983-06-21 | 株式会社みかど育種農場 | 育苗マツト |
| JPS62139250U (fr) * | 1986-02-28 | 1987-09-02 | ||
| JPH0174744U (fr) * | 1987-11-06 | 1989-05-22 | ||
| JP2000139233A (ja) * | 1998-11-11 | 2000-05-23 | Toppan Printing Co Ltd | 植物栽培容器 |
| JP2005124512A (ja) * | 2003-10-24 | 2005-05-19 | Daiei Bussan:Kk | 苗木ポット、苗木ポットの包装方法及び苗木ポットの集合構造体 |
Cited By (3)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| NL2020943B1 (en) * | 2018-05-17 | 2019-11-25 | Duemmen Group Bv | A rooting plug structure and a method |
| WO2022175715A1 (fr) | 2021-02-18 | 2022-08-25 | Lucky Plants Bv | Système de transplantation et procédé de transplantation progressive et de culture de plantes |
| CN113950974A (zh) * | 2021-11-16 | 2022-01-21 | 黑龙江恒元汉麻科技有限公司 | 一种花叶生产用工业大麻一站式扦插育苗方法 |
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| JPWO2015025407A1 (ja) | 2017-03-02 |
| JP5525666B1 (ja) | 2014-06-18 |
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