MODULAR CONTAINER AND MODULAR IRRIGATION SYSTEM
20170112073 ยท 2017-04-27
Inventors
Cpc classification
B65D21/0209
PERFORMING OPERATIONS; TRANSPORTING
A01G9/0295
HUMAN NECESSITIES
A01G27/06
HUMAN NECESSITIES
International classification
B65D21/02
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The invention relates to a modular container or irrigation module, as well as a modular irrigation system obtained by arranging at least two of said modules. The proposed modular irrigation system comprises at least two irrigation modules of the invention, and by stacking the modules vertically, the system can be used to form a continuous-flow irrigation system in which excess irrigation water is recirculated and evaporation losses can be minimized. Similarly, the module and the system of the invention can be used to form a sustainable construction system in which multiple irrigation systems are arranged to form various architectural elements, such as green walls, green columns, vertical gardens and the like.
Claims
1. A modular irrigation container or module of the vertically stackable type including a first container intended for housing a substrate for plants and having in its vertical peripheral wall one or more side openings for plant growth, comprising inside said first container is arranged at the center a second container the side walls of which are preferably water permeable, a reserve tank and a drainage grate-like spacer element, wherein the container has therein a tube with a blind upper end, in the upper terminal area of which there are made along the perimeter one or more through holes which allow the water to go through the tube directly to the reserve tank when the water level rises inside the container and reaches these holes; there are arranged in the lower part of the container through holes distributed throughout the base and projecting vertically into the container by way of vertical tubes, the side walls of these vertical tubes being impermeable to the direct passage of water, these vertical tubes determining the maximum water fill level in the reserve tank based on the height thereof; there is provided at the base of the container of the module at least one drain hole projecting vertically into the container and the height of which is greater than the height of the vertical tubes such that before going through said drain hole, the water comes out through the vertical tubes when the water flow rate exceeds the capacity of the vertical tubes, until going through the at least one drain hole to the next module and the water level drops to the height of the vertical tubes once irrigation ends, defining a reserve water level in the reserve tank.
2. The modular irrigation container or module according to claim 1, wherein the permeability of the side walls of the container is achieved by means of holes made in its side wall.
3. The modular irrigation container or module according to claim 1, wherein the side walls of the container are designed in the form of a permeable mesh or barrier.
4. The modular irrigation container or module according to claim 1, wherein conduction through the inside of the modules is provided by means of conduits with two open ends, preferably having a tubular or semi-tubular section, such conduits being arranged inside the peripheral walls of the module such that the conduits of the upper modules are aligned with the conduits of the lower modules.
5. The modular irrigation container or module according to claim 1, wherein the reserve tank consists of a space which keeps the irrigation water separated from the substrate once irrigation ends by means of a drainage grate-like spacer element, preventing direct contact of the irrigation water with the substrate except for absorbent elements or wicks which allow capturing water contained in the reserve tank by capillarity.
6. The modular irrigation container or module according to claim 5, wherein the drainage grate-like spacer element defines an air chamber between the reserve tank and the central tube of the container, this air chamber separating the substrate from the water except for the absorbent elements located at the groundwater level of the reserve tank, which allow the passage of water from the reserve tank to the substrate, and where appropriate, for draining excess water into the reserve tank.
7. The modular irrigation container or module according to claim 5, wherein the spacer element has a shape that is adapted to the shape of the container housing it and is sized with a size slightly smaller than the size corresponding to said container and includes a hollow central channel projecting vertically upwards into the container and intended for housing the element.
8. The modular irrigation container or module according to claim 1, wherein it further includes a water collection tank formed essentially by a reservoir having a shape similar to and compatible with the shape of the module, open in its upper part and at least partially closed in its lower part, said lower part being able to be widened in order to increase the stability of the module or of the system obtained from stacking several modules.
9. The modular irrigation container or module according to claim 8, wherein automatic water recirculation for recirculating water for the modular irrigation system formed by at least two modules are arranged inside the collection tank.
10. The modular irrigation container or module according to claim 8, wherein there is arranged in the peripheral wall of the upper part of the collection tank a channel suitable for supplying water and nutrients to the tank.
11. The modular irrigation container or module according to claim 10, wherein the channel includes a cover (502) which includes a through hole for the passage of the cable of automatic water recirculation, and prevents the passage of light into the collection tank, preventing the growth of unwanted algae and organisms as well as a possible evaporation of the liquid.
12. The modular irrigation container or module according to claim 8, wherein the lower base of the collection tank includes legs with wheels.
13. The modular irrigation container or module according to claim 8, wherein the collection tank can house device for measuring the level of liquid accumulated therein, along with, where appropriate, device for providing notification of maximum tank level thereof.
14. The modular irrigation container or module according to claim 8, wherein the collection tank includes in its side walls conduits with two open ends, which are capable of housing cables, water transport pipes, anchoring structures or inner reinforcement elements.
15. The modular irrigation container or module according to claim 1, wherein it further includes a spacer element which has an open upper end the diameter of which is adapted to the dimensions of the upper part of the container of the module and the peripheral walls of which have side holes in their upper part and the height of which is less than the height of the peripheral walls, to allow access to the inside of said spacer module for arranging plants in cavities.
16. The modular irrigation container or module according to claim 15, wherein the lower base of the spacer element has, arranged at the center, a conduit which projects vertically into the element and is closed at its end in contact with the base of said module except for side holes made adjacent to said end as well as surrounding the conduit along the perimeter thereof, the holes or grooves being suitably sized for regulating the outflow of water therethrough.
17. The modular irrigation container or module according to claim 15, wherein the spacer element further includes corresponding conduits which are capable of housing cables, water transport pipes, anchoring or reinforcement elements arranged inside the peripheral walls thereof.
18. A modular irrigation system, wherein it includes at least two modules according to claim 1 stacked vertically.
19. The modular irrigation system according to claim 18, wherein it includes at least two modules stacked vertically wherein at least one of the side openings is used for connecting, by bridge-like tubes, several modular systems to one another in order to form meshes, green walls, vertical gardens or other construction forms or to to join the systems together using attachment pieces that can be fitted accordingly in such openings.
Description
[0012] The invention is described below based on an embodiment thereof and in reference to the attached drawings, in which:
[0013]
[0014]
[0015]
[0016]
[0017]
[0018]
[0019]
[0020]
[0021] Although the present description and the drawings show a stackable module according to the invention with an essentially cylindrical outer shape, the invention is not limited to the use of this general shape for the modules, which can have any suitable outer shape.
[0022] As seen in
[0023] The module (1) also houses therein a second container (8) which has in a preferred embodiment water permeable side walls, a reserve tank (400) and a drainage grate-like spacer element (81) preventing direct contact of the irrigation water with the substrate, except for absorbent elements or wicks which allow capturing water contained in the reserve tank by capillarity.
[0024] This first container (2) has in its vertical peripheral wall one or more side openings (3), in this last case at the same or different heights of the peripheral wall, for arranging plants or seeds therein and allowing them to grow out into the external environment. Although the side openings (3) have an essentially oval shape in the embodiment shown in the drawings, such openings may have any suitable shape provided that they perform the function herein described. Some of the side openings (3) can also be used for connecting, by means of bridge-like tubes, several modular systems to one another in order to form meshes, walls or other construction forms or to make it easier to join the systems together using attachment pieces that can be fitted accordingly in such openings.
[0025] The upper part of the first container (2) serves as a support for a spacer element (110) connected in a leaktight manner through the lower part thereof to an upper part of the first container (2), which will be described in more detail below.
[0026] The central area of the lower base of the container (2) is perforated to allow the passage of water to a second contiguous lower module (1) to which it is connected in a leaktight manner in the case of a modular system with more than one module (1) or to allow possible excess water in the first container (2) to move on to a reserve tank (400) which is essentially an independent space inside the module (2) where water not used by the plant accumulates and which will be described in more detail below.
[0027] In reference to
[0028] This second container (8) vertically has therein, or along one of its side walls, a tube (9) with a blind upper end in the upper terminal area of which one or more through holes (not shown) are made along the perimeter. These through holes allow the water to go through the tube (9) directly to the reserve tank (400) when the water level rises inside the container (8) and reaches these holes. The function of the tube (9) is to maintain the maximum water level in the container (8), and if this maximum level is exceeded, it works by draining said container (8), the water moving directly to the reserve tank (400). In this manner, a minimal amount of reserved water is kept at the bottom of the container (2), and the maximum overflow level desired for the second container (8) is controlled.
[0029] The second container (8) also allows homogeneously metering the water and/or other substances for the substrate in each of the modules (1), as well as controlling the overflow of direct excess water, a percentage of water that will help to keep the substrate hydrated for a longer time as a result of absorbent elements or wicks which allow capturing water contained in the reserve tank by capillarity being stored in the reserve tank (400).
[0030] There are arranged in the lower part of the container (2) of the module (1) through holes, distributed throughout the base and projecting vertically into the container (2) by way of vertical tubes (200), the side walls of these vertical tubes (200) being impermeable to the direct passage of water. These vertical tubes (200) therefore determine the maximum water fill level in the reserve tank (400). The height of the water in the vertical tubes (200) defines the maximum fill level, such that the water accumulated therein is available for the plants in this reserve tank (400). The number of vertical tubes (200), their arrangement, as well as their diameter are adapted to the irrigation flow rate to be supplied to the module (1) for the proper operation thereof.
[0031] Similarly, there is provided at the base of the container (2) of the module (1) at least one drain hole (201) which, like the through holes described above, projects vertically into the container (2). The height of this at least one drain hole (201) is greater than the height of the vertical tubes (200) such that before going through said drain hole (201), the water comes out through the vertical tubes (200), assuring the proper operation thereof. Therefore, when the water flow rate exceeds the capacity of the vertical tubes (200), the water level continues to rise until the water goes through the at least one drain hole (201) to the next module (1), and the water level will drop to the height of the vertical tubes (200) once irrigation ends, defining a reserve water level in the reserve tank (400).
[0032] As best seen in
[0033] Now in reference to
[0034] There is arranged in the peripheral wall of the upper part of this collection tank (500) a channel (501) suitable for supplying water and nutrients to the tank (500). This channel (501) includes a cover (502) which includes, where appropriate, a through hole for the passage of the cable of the automatic water recirculation means, and prevents the passage of light into the collection tank (500), preventing the growth of unwanted algae and organisms as well as a possible evaporation of the liquid.
[0035] Optionally, the lower base of the collection tank (500) includes means to make it easier to move and transport same, such as legs with wheels. Also optionally, the collection tank (500) can house means for measuring the level of liquid accumulated therein, along with, where appropriate, means for providing notification of maximum tank level or any other means making it easier to measure any parameter useful for improving the operation thereof.
[0036] Similarly, the collection tank (500) includes in its side walls conduits (102) with two open ends, which are capable of housing cables, water transport pipes, anchoring structures or inner reinforcement elements.
[0037] As shown in
[0038] The spacer element (110) allows increasing the construction and design capacity of the system, this additional element module (110) also acting as an irrigation flow rate metering and regulating device.
[0039] As seen in
[0040] Like in the case of conduits (102) of the module (1), there are also provided in the spacer element (110) corresponding conduits (116) which are capable of housing elements such as cables, water transport pipes, anchoring or reinforcement elements, etc., arranged inside the peripheral walls of the module (110).
[0041] In reference again to
[0042] This drainage grate-like spacer element (81) defines an air chamber between the reserve tank (400) and the central tube (9) of the container (2), this air chamber separating the substrate from the water except for the absorbent elements (82) located at the groundwater level of the reserve tank (400), which allow the passage of water from the reserve tank (400) to the substrate, and where appropriate, for draining excess water into the reserve tank. As seen in
[0043] Therefore, when the level of water accumulated in the reserve tank (400) which results from emptying excess water through the container (8) reaches a sufficient level, this water flows through the vertical tubes (200) located at the base of the container (2), reaching the spill level of the central tube (9) and allowing the passage of water to modules (1) or spacer elements (110) located immediately downstream.
[0044] Although basically curved shapes are used for the different modules, containers, elements and conduits in the embodiments of the invention that have been shown, these shapes are not limited to the ones described, as it can be polygonal, square, rectangular, etc.
[0045] The modular system of the invention offers several construction possibilities, being able to use each module independently or being able to work with a main module, a spacer element in the upper part, several main modules, an upper spacer element and a lower spacer element, or intercalating spacer elements, as shown in
[0046] The present invention allows continuous irrigation, cyclically recirculating the irrigation of the modules forming the modular system and installed on top of one another.
[0047] This modular system therefore provides a continuous homogenous flow within a closed circuit from one module to the next module arranged immediately thereunder, until finally reaching the first module, without water spilling through any of the side holes and achieving a homogeneous water and/or nutrient distribution, in turn maintaining a water reserve available for use by the plants as needed and preserving and protecting the plants from possible water stress, as well as from extreme temperatures and environmental conditions.