HYDROPONIC GROWING SYSTEM
20180064046 ยท 2018-03-08
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
International classification
Abstract
A hydroponic growing system including an elongated trough. The trough includes at least a first side wall, an opposite second side wall, and a bottom wall, which all extend in the longitudinal direction of the trough and delimit a space in the centre of the trough, open at the top. The trough also includes a partition wall structure extending in the longitudinal direction of the trough and dividing said central space into two adjacent elongated grooves which are open at the top and into which one or more substrates can be placed for the cultivation of plants. In an example, the partition wall structure includes an elongated overflow channel extending in the longitudinal direction of the groove and guides the irrigation water past the grooves. The overflow channel may be arranged in an elevated position with respect to the bottom wall.
Claims
1. A hydroponic growing system, comprising an elongated trough comprising at least: a first side wall, an opposite second side wall, and a bottom wall, which all extend in the longitudinal direction of the trough and delimit a space in the centre of the trough, open at the top; and a partition wall structure placed between the first side wall and the second side wall, extending in the longitudinal direction of the trough and dividing said central space into two adjacent elongated grooves which are open at the top and into which one or more substrates can be placed in each, for the cultivation of plants.
2. The growing system according to claim 1, wherein said partition wall structure comprises an elongated overflow channel extending in the longitudinal direction of the trough and configured to receive irrigation water supplied into the trough, and to guide the irrigation water forward along the trough, past said adjacent grooves.
3. The growing system according to claim 2, wherein the overflow channel is configured at the first end of the trough to receive irrigation water supplied into the first end of the trough and to guide irrigation water past said adjacent grooves towards the opposite second end of the trough.
4. The growing system according to claim 2, wherein the overflow channel is closed at the top over its whole length or almost its whole length.
5. The growing system according to claim 2, wherein the overflow channel is arranged in an elevated position with respect to the bot-tom wall of the trough, on which the irrigation water is allowed to flow forward along said adjacent grooves.
6. The growing system according to claim 2, wherein the overflow channel comprises a bottom wall, on which the irrigation water can flow along the overflow channel and which is placed higher than the bottom wall of the trough, on which the irrigation water can flow forward along said adjacent grooves.
7. The growing system according to claim 2, wherein the partition wall structure comprises two or more openings, gaps or holes which are configured a) to convey irrigation water from the overflow channel to and from the opening, or b) to convey irrigation water from one opening to another opening, and vice versa, or to convey irrigation water according to both alternatives a) and b).
8. The growing system according to claim 1, wherein in at least one end of the trough, the first and the second side walls and the bot-tom wall extend farther than said partition wall structure in the longitudinal direction of the trough.
9. The growing system according to claim 1, wherein at least one end of the trough is closed by an end wall.
10. The growing system according to claim 1, wherein at least one of said grooves comprises: an upper space placed in the upper part of said groove, for the growing substrate, and a lower space placed in the lower part of said groove, for irrigation water, and which is connected to the upper space via one or more holes or slits, and in which the irrigation water can flow forward along said groove.
11. The growing system according to claim 10, wherein the upper space comprises a shape which has a downwards tapering cross-section and which opens into the lower space via said hole or slit.
12. The growing system according to claim 10, wherein the lower space constitutes an irrigation channel extending in the longitudinal direction of the trough and configured to convey irrigation water forward along the trough, and having a width greater than the width of said hole or slit in the transverse direction of the trough.
13. The growing system according to claim 10, wherein said hole or slit is elongated and extends in the longitudinal direction of the trough.
14. The growing system according to claim 1, wherein the first and second side walls extend below the bottom wall and constitute a leg structure supporting the trough.
15. The growing system according to claim 1, wherein at least one end of the trough is open for discharging irrigation water from the trough, or wherein, in at least one end of the trough, the first and the second side walls extend farther than the bottom wall in the longitudinal direction of the trough, or wherein, in at least one end of the trough, the bottom wall is provided with an opening.
Description
DESCRIPTION OF THE DRAWINGS
[0019] In the following, the presented solution will be described with reference to the appended drawings, in which:
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
DETAILED DESCRIPTION OF THE INVENTION
[0026] In the following, the presented solution will be described with reference to the appended drawings 1 to 6. In the drawings, the same reference numbers are used to refer to the same or corresponding parts.
[0027]
[0028] The trough may comprise at least a first side wall 34, an opposite second side wall 36, and a bottom wall 60, which all extend in the longitudinal direction of the trough 10 and delimit a space in the centre of the trough 10, open at the top.
[0029] Several troughs 10 may be placed on cultivation tables which preferably take care of the irrigation of the plants in the adjacent troughs in an automated way and move the troughs forward, and also change the spacing of the troughs automatically so that the spacing is increased as the plants grow in size. Now referring to
[0030] In an example of the solution and according to
[0031] For the cultivation of plants, separate growing substrates 74, 76 can be inserted in the grooves 12, 14 of the trough 10, in which the plants 72 are placed. The function of the grooves 12, 14 is to convey irrigation water along the trough 10 and to distribute it to the substrates 74, 76.
[0032] The growing substrate 74, 76 may consist of an elongate or ribbon-like material. The substrates 74, 76 may also consist of single or separate pieces or elements, or the substrate 74, 76 can be formed of loose material that is placed in the trough 10 and is suitable for cultivation. The substrate used may be, for example, peat or mineral wool, such as glass wool, even expanded clay. A seedling of the plant may be placed in the substrate 74, 76, or seeds may be sown in it, which are germinated in the trough e.g. on the cultivation table or in a separate place.
[0033] The trough 10 is made of e.g. plastic by extrusion, wherein the cross-sectional shape of the trough 10 shown in
[0034] According to an example and
[0035] The side wall 34 may comprise walls 42, 46, 48 of variable thickness which may also encompass open or closed chambers or channels which may extend in the longitudinal direction of the trough 10. The side wall 36 may comprise walls 50, 52, 44 of variable thickness which may also encompass open or closed chambers of channels which may extend in the longitudinal direction of the trough 10.
[0036] According to an example and
[0037] According to an example and
[0038] The partition wall structure 20 may comprise walls 32, 54, 56, 58 of variable thickness which may also encompass open or closed chambers of channels which may extend in the longitudinal direction of the trough 10.
[0039] According to an example and
[0040] In an example and
[0041] When both the partition wall structure 20 and the side walls 34, 36 have a downwards broadening shape, the tops of the grooves 12, 14 become narrower downwards in the transverse direction of the trough 10. Each tapering groove 12, 14, or one of them, extends down to the bottom wall 60 or close to it, or ends in the middle part of the trough 10.
[0042] In an example and
[0043] The function of the overflow channel 22 is to receive irrigation water supplied into the trough 10 and to convey it forward along the trough 10 so that at least part of the irrigation water can bypass the grooves 12, 14 and the substrates 74, 76 placed therein, if necessary.
[0044] The overflow channel 22 may be the above presented open or closed chamber or channel formed in the partition wall structure 20. In an example and
[0045] In an example and
[0046] In an example and
[0047] In an example and
[0048] Preferably, said upper space 38, 40 has such a structure that it holds the substrate 74, 76 at a desired height, separate from the lower space 24, 26 of the groove 12, 14. The upper space 38, 40 may have a downwards tapering shape, as presented above. The upper space 38, 40 is open at the top and at least partly open from below. The shape of the upper space 38, 40 is defined by the partition wall structure 20 and the side walls 34, 36.
[0049] A narrowing, a collar or a wall may be provided between the upper space 38, 40 and the lower space 24, 26, for supporting the growing substrate. Said narrowing, collar or wall is formed in the partition wall structure 20 or the side wall 34, 38, or both.
[0050] The lower space 24, 26 can have a e.g. polygonal or rectangular shape, or it can be at least partly open at the top. Irrigation water flows in the lower space 24, 26 along the groove 12, 14 of the trough 10.
[0051] The upper space 38, 40 is connected to the lower space 24, 26 via one or more holes or slits 28, 30. The above mentioned narrowing, collar or wall may constitute said hole or slit 28, 30. Alternatively, for example, said slit 28, 30 is formed between the partition wall 20 or the side wall 34, 38, or both, by their shape, as also in the example of
[0052] In an example and
[0053] In an example and
[0054] Said irrigation channel may also have the shape of a rectangle whose width in the transverse direction of the trough 10 is greater than the width of said hole or slit 28, 30.
[0055] In the example of
[0056] A corresponding space can be formed at the second end 70 of the trough 10, via which the irrigation water can be led out of the trough 10. The second end 70 may be open, without an end wall, whereby the irrigation water will be drained from the trough over the end edge of the bottom wall 60. In an example, in at least one end 66, 70 of the trough 10, the side walls 34, 36 extend farther than the bottom wall 60 in the longitudinal direction of the trough 10. This is preferably the case at the second end 70 of the trough 10, so that the irrigation water can be discharged form the trough 10 across the end edge of the bottom wall 60 even before the terminal point of the side walls 34, 36. Thus, the second end 70 can be closed by an end wall, in the same way as in an example embodiment, in which the bottom wall 60 of the trough is provided with one or more openings, through which the irrigation water can exit the trough and the groove 12, 14.
[0057] Also preferably, at least one end 66, 70 of the trough 10, particularly the first end 66, is closed by an end wall 62, as shown in
[0058] In an example and
[0059] In an example and
[0060] In
[0061] In an example, the height Z of the trough 10 is between 30 and 50 mm, preferably about 40 mm. In an example, the width X of the trough 10 in the transverse direction is between 35 and 55 mm, preferably about 45 mm. In an example, the distance C is between 18 and 28 mm, preferably about 23 mm. In an example, the length L of the trough 10 is between 5000 and 6000 mm.
[0062] In an example, the width of the slit 28, 30 in the transverse direction of the trough 10 is about 4 mm, the height of the upper space 38, 40 is about 16 mm, and the height of the lower space 24, 26 is about 10 mm. In an example, the thickness of the wall or walls of the trough is about 1.5 mm or 3 mm. In an example, seeds are placed at regular intervals of e.g. 50 mm in each growing substrate 74, 76. The seeds of adjacent growing substrates 74, 76 are placed in an interlocked manner with respect to each other in the longitudinal direction of the trough 10, at intervals of e.g. 25 mm.
[0063] The presented solution is not limited solely to the above presented examples, alternatives or embodiments. In the presented solution, it is possible to combine the above presented examples to form a hydroponic irrigation system of a desired type. The presented solution can be applied within the scope of the technical characteristics of the claims to be presented hereinbelow.