HYDROCULTURE SYSTEM
20180007849 · 2018-01-11
Assignee
Inventors
Cpc classification
Y02P60/21
GENERAL 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
A01G2031/006
HUMAN NECESSITIES
A01K63/04
HUMAN NECESSITIES
A01G31/06
HUMAN NECESSITIES
International classification
A01G31/06
HUMAN NECESSITIES
A01K63/00
HUMAN NECESSITIES
Abstract
Provided is a planting cup for hosting growing plants, for use in conjunction with hydroculture systems, and a development for producing same. The planting cup may be configured with a side wall formed with a plurality of openings and extending between an open bottom base and an open top base. The planting cup may also be constructed out of a sheet of pliable material.
Claims
1. A planting cup for hosting growing plants, for use in conjunction with hydroculture systems, said planting cup configured with a side wall formed with a plurality of openings and extending between an open bottom base and an open top base, wherein the planting cup is constructed out of a sheet of pliable material.
2. A planting cup according to claim 1, made of a liquid impermeable material.
3. A planting cup according to claim 1, having a frustum cone or frustum pyramid shape.
4. A planting cup according to claim 3, wherein the bottom base is smaller then the top base, wherein the side wall tapers towards the bottom base.
5. A planting cup according to claim 1, wherein having a cylindrical or polyhedron shape.
6. A planting cup according to claim 1, further comprising a fastening mechanism for retaining a three dimensional shape of the constructed planting cup.
7. A planting cup according to claim 6, wherein the fastening mechanism comprises one or more fastener flaps extending from one side of a development of the cup, and configured for arresting within one or more slits adjacent an opposite side of the development.
8. A planting cup according to claim 7, wherein the fastener flap and the slit are disposed parallel to respective side edges of the development of which the planting cup is made of.
9. A planting cup according to claim 7, wherein the length of the fastener flap is be greater than the length of the respective slit, with a projection at a bottom portion of the flap.
10. A planting cup according to claim 1, wherein an outside face thereof comprises a securing mechanism for removable securing it within a respective cup opening configured at a planting cup carrying member, thereby securely positioning the planting cup within the cup opening either at a vertical or inclined position.
11. A planting cup according to claim 10, wherein the securing mechanism is a threading configured at an outside face of the planting cup.
12. A planting cup according to claim 10, wherein the securing mechanism is a snap-type engagement configured at an outside face of the planting cup.
13. A planting cup according to claim 1, being nestable within like planting cups.
14. A pliable sheet material being a development of a planting cup for use in conjunction with hydroculture systems, said development configured for constructing therefrom a planting cup configured with a side wall formed with a plurality of openings and extending between an open bottom base and an open top base.
15. A planting cup carrying member, configured for removably retaining a plurality of planting cups or seedlings, said planting cup carrying member comprising a planar member having top face and a bottom face, with a plurality of cup openings disposed through said carrying member, each configured to support therein a planting cup, wherein the carrying member is further configured with a flotation arrangement for retaining a substantially fixed distance between the bottom face and a water bed surface, and further wherein an air flow passage extends at least at the bottom face of the vicinity of each cup opening.
16. A planting cup carrying member according to claim 15, wherein the planting cups and seedlings can be slidingly displaced within recessed cup openings.
17. A planting cup carrying member according to claim 15, wherein it is made of a board of material configured at a bottom face thereof with a channel extending between at least neighboring cup openings.
18. A planting cup carrying member according to claim 15, wherein the cup openings are disposed along a linear matrix, wherein a bottom face of the carrying member is configured with a flow channel extending along a linear path between respective opposite ends of the planting cup carrying member.
19. A planting cup carrying member according to claim 15, comprising a plurality of cup openings, at least some of which can be selectively neutralized by blocking.
20. A planting cup carrying member according to claim 15, wherein the cup openings configured at the board of material can be cylindrical or have a tapering cross section.
21. A planting cup carrying member according to claim 15, wherein the cup openings are configured with a planting cup engagement arrangement, for securing a planting cup within a respective cup opening.
22. A planting cup carrying member according to claim 15, comprising a plurality of parallely disposed bars, wherein planting cups or seedlings are receivable within longitudinally extending recesses between said bars.
23. A planting cup carrying member according to claim 22, wherein the longitudinal recesses are configured with arresting edges extending from opposite side edges of a respective recess.
24. A planting cup carrying member according to claim 23, wherein the arresting bars have an inverted V-like shape.
25. A planting cup carrying member according to claim 22, wherein the longitudinal recesses are configured at arresting edges with resilient grips for gently supporting seedlings and/or planting cups.
26. A grow bed module for a hydroculture system for supporting one or more planting cup carrying members, said grow bed module made of a liquid impermeable material and being configurable between a collapsed position and a deployed position, and further wherein said water bed is sustained at the erected position over a modular support truss.
27. A grow bed module according to claim 26, wherein the water bed, at its erected position, is suspended over a truss such that a bottom base thereof is elevated from the ground.
28. A filtration system for treating water of a hydroculture system, the filtration system comprising a filtering media received within a water treating container, said filtering media configured as a labyrinth-like flow path, whereby the filtered water flows along said flow path, and sediments carried with the water encounter the filtering media where they are prevented from exiting from the water bed and thus sink to the bottom of the water bed, whereby filtered water flows out of the container.
29. A filtration system according to claim 28, wherein the filtration media integrally extends from inside side walls of the water treating container.
30. A filtration system according to claim 28, wherein the filtration media are configured as continuous pleated sheets of material disposed within the water treating container.
31. A filtration system according to claim 28, wherein the pleated sheets of filtration media are disposed substantially vertically within the water treating container, a top edge of said sheets defining a minimal water level within the water treating container.
32. A filtration system according to claim 28, wherein the pleated sheets of filtration media can be disposed within the water treating container such that the folding edges face the flowing path.
33. A filtration system according to claim 28, comprising a plurality of filtration units, disposed in series.
34. A filtration system according to claim 28, wherein the filtration media is made of sheets of polymeric material.
35. A hydroculture system comprising one or more of: a) A planting cup configured with a side wall formed with a plurality of openings and extending between an open bottom base and an open top base, wherein the planting cup is constructed out of a sheet of pliable material; b) A planting cup carrying member configured with a plurality of cup openings each for receiving therein a planting cup; c) A water container configured for supporting at least one planting cup carrying member; d) A control system; e) An environment treating unit for controlling illumination, venting, temperature control; and f) A water treating system.
36. A hydroculture system according to claim 35, further comprising a water nutrient enriching system in the form of a hydroponic water and nutrient supply unit, or an aquaponic fish tank, or a water nutrient generation bio-gas based unit, for receiving pumped water and for enriching the water with nutrients and supplying them; and a bio filter for filtering/capturing and biologically degrading pollutants from nutrient-rich water supplied by the water nutrient enriching unit and for supplying the filtered water to the planting cup carrying member.
37. A hydroculture system according to claim 35 further comprising a fluid propelling unit for oxidation and flowing the water in the planting cup carrying member.
38. A method for hydroculture growing, the method comprising the following steps: (a) Obtaining a pliable sheet material being a development configured for constructing therefrom a planting cup configured with a side wall formed with a plurality of openings and extending between an open bottom base and an open top base, said development comprising a fastening mechanism for retaining a three dimensional shape of the constructed planting cup; (b) Shaping the pliable sheet material into a planting cup; (c) Setting the three dimensional shape by the fastening mechanism; and (d) Applying the planting cup into a planting cup carrying member.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0095] In order to better understand the subject matter that is disclosed herein and to exemplify how it may be carried out in practice, embodiments will now be described, by way of non-limiting examples only, with reference to the accompanying drawings, in which:
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DETAILED DESCRIPTION OF EMBODIMENTS
[0137] Attention is first directed to
[0138] A first planting cup 20 is shown in
[0139] The development 22 is configured with a plurality of radically positioned apertures 26, of which apertures 28 disposed along shorter radii, are of smaller diameter.
[0140] The development 22 further comprises fastening mechanism comprising a locking tab 30 extending along one side radii 29 of the development 22, said tab 30 having an extended bottom end 32 and a rounded top end 34. An arresting slit 36 is cut adjacent an opposite side radii 35 of the development 22. The length of the slit 36 is approximately similar to the length of the tab 30, along the attached portion marked 1.
[0141] The shape of development 22, with at least some of its formations (e.g. apertures 26 and 28), and elements of the fastening mechanism (tab 30 and slit 35) can be formed by injection molding or by puncturing.
[0142] Deploying/erecting the cone shaped planting cup 20 out of the development 22 takes place by rolling the side ends 29 and 35 towards one another and retaining the frustum cone shape by the fastening mechanism, namely inserting tab 30 into slit 36 (
[0143] Knocking down the three dimensional shape is easily facilitated, even using one hand only, simply by deforming the cone such that the top end 34 of tab 30 disengages from the slit 35, resulting in the material spontaneously gaining its flat development shape. It is appreciated that this can occur also when a root base of a seeding received in the planting cup exceeds a standard size, whereby the roots are not strangled.
[0144] Turning now to
[0145] In
[0146] It is appreciated that according to other examples, a planting cup according to the disclosure can assume different shapes and modifications, e.g.: the planting cup can have a cylindrical shape (i.e. open bottom base and an open top base of similar diameter), not shown. Likewise, the planting cup can be symmetric or asymmetric about the longitudinal axis extending between the top base and the bottom base. In the example of
[0147] In
[0148] The arrangement of the fastener mechanism can be such that only little force is required to open the fastening mechanism, to the extent that a developing root system can disengage the fastening mechanism, allowing expansion of the inside space of the planting cup.
[0149] The three dimensional planting cup can have a polyhedron shape, e.g. a frustum pyramid 90, as illustrated in
[0150] Upon folding the development 92 about the fold lines 96A-96C, the three dimensional planting cup 90 is obtained, having a frustum polygonal pyramid shape having a rectangle bottom base 108 and a greater rectangle top base 110, symmetrically extending about a longitudinal axis Y.
[0151] It is appreciated that a conical planting cup requires a circular opening formed at the planting cup carrying member, whilst for the polygonal cup a rectangle opening is required, respectively. However, a conical planting cup can be positioned within a cup opening having a rectangular shape with an appropriate inscribed circle, and likewise a polygonal planting cup can be positioned within a planting opening having an appropriate circumcircle.
[0152] In
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[0154] Turning now to
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[0156] It is noted that the planting cups discussed herein are configured such that the bottom opening thereof is configured to allow projection of substantially water roots, and the openings formed over the side wall of the planting cup are configured to allow projection of substantially air roots.
[0157] It is further noted that the planting cups are configured for nesting within like planting cups, and yet are easily flattened into stackable developments.
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[0159] The planting cup carrying members can comprise, e.g. adding during manufacture, by impregnation or by applying, different agents, such as anti pesticides, antifungal, UV retarding agents, hydrophobic agents, anti-algae agents, bio-film preventing agents (i.e. for preventing microbial or other living substances), anti bacteria agents, anti fugal agents, etc. nano-hydrophobic coating, disinfecting agents (e.g. chemical disinfectants), etc.
[0160] A first example of a planting cup carrying member is illustrated with reference to
[0161] If required one or more bars 210 can be removed so as to control the distance D suitable for accommodating planting cups/seadlings of different size.
[0162] It can be seen that the venting ducts 206 extend below the bars 210, thus offering suitable air ventilation to the roots of any seadlings supported by the planting cup carrying member 200. The arrangement is such that air can be forced through the venting ducts 206, whereby even an array of like planting cup carrying members 200 provides adequate venting through the openings of the venting ducts 206, disposed in register (not shown).
[0163] A planting cup or seadling supported between neighboring bars of a cup opening can be easily placed and withdrawn. Even more so, at times it is required to increase the space between the seedlings, e.g. as the plants grow bigger, and this can be easily facilitated simply by sliding the seadlings along the bars.
[0164] In the example of
[0165] Turning now to
[0166] The planting cup carrying member 228 is a planar member having top face 232 and a bottom face 234, with a plurality of circular cup openings 236 extending through said carrying member from the top face to a depressed bottom surface 238 (i.e. extending between the top face 232 and the bottom face 234). The channel 240 extending along the depressed surface, across the planting cup carrying member 228, constitutes an air flow passage extending at the vicinity of each cup opening 236.
[0167] The cup openings 236 configured at the illustrated planting cup carrying member 228 are cylindrical, though a tapering cross section can serve as well. Likewise, rather than circular the openings can be polygonal.
[0168] The arrangement is such that planting cups 244 (
[0169] It is appreciated that the cup openings 236 of the planting cup carrying member 228 can be configured with a planting cup engagement arrangement, for securing a planting cup within a respective cup opening, such as snap/friction/threading engagement, as discussed herein above with reference to previous examples.
[0170] The flat design of the planting cup carrying member 228 renders them suitable for stacking over like planting cup carrying member.
[0171] The planting cup carrying members can be displaced floating over a water bed with steady height retained between a bottom face thereof and the water surface, resulting in controlled height of the planting cup/seeding and the roots, respectively. The planting cup carrying members can be secured within the water container so as to prevent their displacement (e.g. at the event of wind) and further, a plurality of planting cup carrying members can be adjoined to establish a continuous array of planting cup carrying members.
[0172] Further attention is now directed to
[0173] The material can be treated with different agents different agents, such as anti pesticides, antifungal, UV retarding agents, hydrophobic agents, anti-algae agents, bio-film preventing agents (i.e. for preventing microbial or other living substances), anti bacteria agents, anti fugal agents, etc., nano-hydrophobic coating, disinfecting agents (e.g. chemical disinfectants), etc.
[0174] The container 250 is configurable between a collapsible position, in a bellows-like fashion (
[0175] The container 250 has a general rectangle basin shape, substantially with rounded corners, and is configured at a bottom portion with a drain port 254, and at top edges there are configured sleeves 258 for receiving therein bars 262 of a modular support structure 264 (
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[0181] With attention now directed to
[0182] The sedimentation stage 380 comprises a sediment deflecting surface 400 disposed inclined within the water tank 392 and attached to side walls from a bottom edge thereof, so as to divide the tank 392 into a bottom chamber 402 and a top chamber 404, with a flow path therebetween extending at a top portion 408. An inlet port 410 extends into the water tank 392 with an inlet pipe 412 extending through the sediment deflecting surface 400 into the bottom chamber 402.
[0183] The first tank 392 is in flow communication with the second thank 394 via a flow pipe 418 configured at a top portion of these tanks.
[0184] Disposed within the first filtration and sedimentation stage 382 there is a filtration media in the form of three parallely disposed barriers 422, 424 and 426, made of a liquid impermeable sheet of material disposed in a pleated fashion within the tank 394, wherein side edges of each barrier are welded to the respective inside side walls of the tank 394. The first pleated barrier sheet 422 comprises at its left side panel 432 an array of openings 430A extending the length of said panel, the second pleated barrier sheet 424 comprises at its right side panel 434 an array of openings 430B extending the length of said panel, and the third pleated barrier sheet 426 comprises at its left side panel 436 an array of openings 430C extending the length of said panel.
[0185] The second tank 394 is in flow communication with the third thank 396 via a flow pipe 440 configured at a bottom portion of these tanks.
[0186] Similar to the arrangement of the first filtration and sedimentation stage 382, the second filtration and sedimentation stage 386 comprises a filtration media in the form of three parallely disposed barriers 450, 452 and 454, made of a liquid impermeable sheet of material disposed in a pleated fashion within the tank 396, wherein side edges of each barrier are welded to the respective inside side walls of the tank 396. The first pleated barrier sheet 450 comprises at its right side panel 462 an array of openings 466A extending the length of said panel, the second pleated barrier sheet 452 comprises at its right left panel 464 an array of openings 466B extending the length of said panel, and the third pleated barrier sheet 454 comprises at its right side panel 468 an array of openings 466C extending the length of said panel.
[0187] The third tank 386 is configured with an outlet port 470 disposed a top portion of the tank.
[0188] It is noted that each of the water tanks 392, 394 and 396 is configured at a bottom thereof with at least one draining port 393, 395 and 397, respectively. The flow pipes can be flexible hosed or detachably attachable, and furthermore, the tanks are made of flexible material such that they can be easily collapsed and be stowed away.
[0189] The arrangement is such that water entering the first tank 392 through inlet 410 flow directly into the bottom chamber 402 and through flow path 408 to the top chamber 404, wherein sediments sink to the bottom of the tank at bottom chamber 402 and at the top chamber 404, with overflowing water flowing through flow pipe 418 into the tank 394 of the first filtration and sedimentation stage 382. Water then encounters the first barrier 422 wherein sediments sink to the bottom of the tank or collect over the filtration media panels, wherein water can flow into the space between the first barrier 422 and the second barrier 424 only through openings 430A. here again, sediments are collected at the bottom of the tank and over panels of the first and second barriers 422 and 424, and water can now flow into the space between the second barrier 424 and the third barrier 426 only through openings 430B. Again, sediments sink to the bottom of the tank and collect over the panels of the second barrier 424 and the third barrier 426. Therefrom water flows through openings 430C into the space behind the third barrier 426 with sediments collecting at the bottom of the tank 394 and over back face of panels of the third barrier 426. The arrangement described forces the water to flow through a labyrinth type flow path so that slow water flow over the surfaces of the barrier panels removes any sediments from the water.
[0190] As water reached the space in the second tank 394 extending behind the third barrier 426 it flow through flow pipe 440 into the third tank 396 of second filtration and sedimentation stage 386. Within the third tank 396 water flow in the same manner as discussed hereinbefore in connection with the second tank 394 and as represented by thick dashed lines in the drawings, resulting in sedimentation of dirt and series and outflow over clean water through outlet port 470 disposed at the top of the third tank 396. It is appreciated that each chamber (extending between neighboring barriers or a barrier and a wall of the tank) can be configured at a bottom thereof with draining port extending to into the main draining ports 393, 395 and 397. Alternatively, each such camber can be configured with an independent draining port (not shown).
[0191] It is noted that each of the water tanks 392, 394 and 396 is configured at a bottom thereof with at least one draining port 393, 395 and 397
[0192] Noticeable, circulation of the water is facilitated by a pump (not seen) governed by the control unit.