NL2003277C2 - A WATER IRRIGATION SYSTEM. - Google Patents

A WATER IRRIGATION SYSTEM. Download PDF

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Publication number
NL2003277C2
NL2003277C2 NL2003277A NL2003277A NL2003277C2 NL 2003277 C2 NL2003277 C2 NL 2003277C2 NL 2003277 A NL2003277 A NL 2003277A NL 2003277 A NL2003277 A NL 2003277A NL 2003277 C2 NL2003277 C2 NL 2003277C2
Authority
NL
Netherlands
Prior art keywords
water
irrigation system
capillary
container
water irrigation
Prior art date
Application number
NL2003277A
Other languages
Dutch (nl)
Inventor
Petrus Mattheus Maria Hoff
Original Assignee
Pmm Hoff Holding Bv
Priority date (The priority date 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 date listed.)
Filing date
Publication date
Application filed by Pmm Hoff Holding Bv filed Critical Pmm Hoff Holding Bv
Priority to NL2003277A priority Critical patent/NL2003277C2/en
Priority to PCT/NL2010/050485 priority patent/WO2011010930A1/en
Application granted granted Critical
Publication of NL2003277C2 publication Critical patent/NL2003277C2/en

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Classifications

    • AHUMAN NECESSITIES
    • A01AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
    • A01GHORTICULTURE; CULTIVATION OF VEGETABLES, FLOWERS, RICE, FRUIT, VINES, HOPS OR SEAWEED; FORESTRY; WATERING
    • A01G25/00Watering gardens, fields, sports grounds or the like
    • A01G25/06Watering arrangements making use of perforated pipe-lines located in the soil
    • AHUMAN NECESSITIES
    • A01AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
    • A01GHORTICULTURE; CULTIVATION OF VEGETABLES, FLOWERS, RICE, FRUIT, VINES, HOPS OR SEAWEED; FORESTRY; WATERING
    • A01G27/00Self-acting watering devices, e.g. for flower-pots
    • A01G27/04Self-acting watering devices, e.g. for flower-pots using wicks or the like

Description

P88423NL00
Title: A water irrigation system
The invention relates to a water irrigation system for irrigating water into the soil, comprising a container having a wall defining an inner room for containing water, further comprising a capillary cord having a capillary end extending outside the container and being arranged to be in 5 fluid communication with water in the container’s inner room, wherein the capillary cord comprises a kernel and an enveloping layer surrounding the kernel.
Irrigating systems are widely known for providing a dosed water irrigation in subsoil, especially in areas where rainfall is scarce and a 10 relatively humid subsoil is needed, e.g. for growing up vegetation. As an example, a water irrigation system is known that comprises a container wherein rainwater is collected and wherein a pump module pumps the water via pipelines through an area to be irrigated.
However, such a pump driven system needs external energy for 15 proper operation, is subjected to maintenance and/or repairing activities and might be relatively costly.
Further, passive irrigation systems are known using drippers to provide the soil with water. However, a dripper supplies at least approximately 1 liter of water per day which might be too much for certain 20 applications. It also appears that drippers become blocked due to a flow of calcium or sand entering the dripper’s internal passage. It is also noted that dripper’s are relatively expensive.
In addition, patent publication AU-B-78307 discloses an irrigating system according to the preamble. The system irrigates indoor plant pots 25 using primary, secondary and tertiary capillary systems. The use of capillary cords that are in fluid communication with water inside the container enables a dosed water transport wherein the use of external energy sources is superfluous. The kernel of the capillary cord is constructed 2 from lengths of sea grass wrapped in a layer of hessian material. However, experiments show that capillary cords in such systems suffer from being blocked after a certain period of time, so that the irrigation function stops.
It is an object of the invention to provide a water irrigation system 5 according to the preamble wherein the irrigation function continues over time without the use of external energy. Thereto, the capillary cord’s kernel of the water irrigation system according to the invention is provided with filaments that are substantially aligned with a longitudinal axis of the cord.
By aligning filaments in the kernel with a longitudinal axis of the 10 cord capillary channels are provided that minimize the chance of being blocked by solid particles. From experiments it appears that the water transport function of capillary kernels having longitudinally aligned filaments continues over relatively long time periods, e.g. over months or even years. The capillary transport direction is substantially in said 15 longitudinal direction, through capillary channels created between the filament elements, thereby advantageously providing an effective transport medium for the water.
By providing a hygroscopic kernel, the water transport through the capillary cord is further enhanced.
20 Further advantageous embodiments according to the invention are described in the following claims.
By way of example only, embodiments of the present invention will now be described with reference to the accompanying figures in which
Fig. 1 shows a schematic perspective view of a water irrigation 25 system according to the invention; and
Fig. 2 shows a schematic perspective cross sectional view of a capillary cord comprised by the water irrigation system shown in Fig. 1.
It is noted that the figures show merely a preferred embodiment according to the invention. In the figures, the same reference numbers refer 30 to equal or corresponding parts.
3
Figure 1 shows a schematic perspective view of a water irrigation system 1 according to the invention. The system 1 comprises a container 2 for containing collected rainwater 3. The shown container 2 has a wall including side sections 4a-d and a bottom section 5, thus forming a box-5 shaped geometry. The wall defines an inner room 30 of the container 2. It is noted, however, that the container 1 may have any geometry that is suitable for containing the rainwater 3. As an example, the container 1 might be cylindrically or tubular shaped. In a practical embodiment, the container 1 might be formed as a tube, a bag or a hose.
10 It is noted that the container may also contain water that is obtained in another way. As an example, the container can at least partially be filled with fresh water or drinking water. Further, other atmospheric moisture, such as condensed moisture, melted frozen moisture, such as melted hail and/or snow, can be collected in the container.
15 The shown embodiment of the water irrigation system 1 comprises a container 2 that is open on its upper side, thus allowing rainwater to enter the container 2. In another embodiment, the container 2 comprises an input section for connection to a water filling unit, such as a rainwater collecting unit, a fresh water source, a drainpipe and/or an assembly of drainpipes.
20 The input section may include an inflow aperture for flowing water into the container’s inner room 30. Optionally, the container’s input section may include a valve for opening and closing the inflow aperture. Then, the container 2 can in principle be formed as a mainly enclosed unit, e.g. including a top cover section. Further, the container’s input section may be 25 provided with a coupling unit for coupling with the water filling unit. As an example, a container implemented as a tube might be connected, via the coupling unit, with a further tube providing the water.
Further, the water irrigation system comprises a multiple number of hygroscopic capillary cords 6, 7 extending outside the container 2 and 30 below the soil surface 10. The cords 6, 7 are connected to the container 2 4 such that they are in fluid communication with water in the inner room 30 of the container 2. Thereto, the wall 2 is provided with a multiple number of corresponding apertures 8, 9. The cords reach through the corresponding apertures 8, 9 into the inner room 30 of the container 2. During use of the 5 system 1, the rain water flows from the inner room 30 into the cords 6, 7 for irrigation outside the container 2. Since the cords have a capillary characteristic, the water flow rate is relatively low, so that the water may be transported and distributed over a relatively long time interval. In principle, the cords may also extend to the corresponding apertures and abut against 10 associated aperture edges to realize the fluid communication.
The apertures 8, 9 are localized in a wall section 4d or in a bottom section 5 so that the water irrigation process might continue also if the amount of water contained in the container 2 is relatively small.
The structure of the hygroscopic capillary cords 6, 7 is described in 15 more detail referring to Figure 2. Due to the capillary effect, rainwater flows through the capillary cords 6, 7, away from the container 2 towards their ends 6a, 7a extending outside the container 2 and into the subsoil 11, wherein the water leaves the cords 6, 7 and enters the soil 11 so that the collected rainwater is irrigated. It is noted that it is in principle not 20 necessary that the cords extend entirely below the subsoil surface 10. By placing the cord ends 6a, 7a in or just above the soil 11, the collected rainwater may be irrigated towards and into the soil 11.
Since the system according to the invention operates without the use of external energy, an autonomous energy friendly irrigation system is 25 obtained. The system does not require an external energy source and is from an energetic point of view passive. As an additional advantage, using the capillary cord also provides for an autonomous regulating feature, since the amount of capillary water transport is lower when the soil near the capillary end is wet, while on the contrary, when said soil is dry, the capillary water 5 transport increases, thereby obtaining a stable moisture regulating irrigation system.
One of the capillary cords 7 is provided with a branch section 12 so that the rainwater 3 can be distributed at different location in the soil 11, 5 thereby obtaining a more uniform irrigation effect. Obviously, it is also possible to provide cords 7 that have no branches, thus obtaining a simplified and cheaper cord structure.
In an embodiment according to the invention, the diameter of the apertures 8, 9 and the diameter of the corresponding capillary cords 6, 7 10 have mainly the same size so that the cords fit easy in the apertures. However, experiments have shown that, though the capillary water transport is satisfactory, a reduced water flow might be obtained in an advantageous way if the aperture diameter is slightly smaller than the corresponding capillary cord diameter. As an example, if the aperture 15 diameter is circa 0.1 mm smaller than the capillary cord diameter, corresponding to a relatively diameter decrease of circa 2% to circa 5%, a surprisingly improved reduction in water flow may be obtained.
Figure 2 shows a schematic perspective cross sectional view of a capillary cord 6 comprised by the water irrigation system 1 shown in Fig. 1. 20 The cord comprises a hygroscopic kernel 20 provided with filaments 21a-c substantially aligned with a longitudinal axis A of the cord 6. Further, the capillary cord 6 comprises an enveloping layer 22 surrounding the kernel 20. By providing the enveloping layer surrounding the kernel, leakage of the water, away from the hygroscopic cord kernel, is counteracted, thereby 25 providing an efficient passive transport medium wherein the water may in principle flow without substantial losses to a desired irrigation area
The aligned filaments 21 form microscopic channels 24 a,b providing the capillary transport in the longitudinal axis A direction of the cord 6. The filaments 21 may include string elements and preferably 30 comprise a natural fiber, such as cotton, linen, jute, silk, hair or wool.
6
Alternatively or additionally, the filaments may also comprise synthetic fibers such as rock wool or, more preferably a polyamide, more preferably a nylon.
The enveloping layer 22 may include braided string elements 23.
5 The string elements may comprise synthetic material, e.g. a synthetic polymer, preferably a polyamide, more preferably a nylon, so that a waste away process of the cord that is continuously exposed to soil, is counteracted. However, also natural, braided material could be used, e.g. for temporal use of the water irrigation system. Preferably, the enveloping 10 layer surrounding the kernel is water impermeable.
In a preferred embodiment according to the invention, a specific nylon type is used, e.g. nylon 6,6 wherein the diamine and the diacid each donate 6 carbons to the polymer chain. Alternatively, other nylon types might be used, e.g. nylon 6, nylon 9, nylon 5,10 made from pentamethylene 15 diamine and sebaic acid, nylon 6,12, nylon 6,11 or nylon 10,12. Molecular chains of nylon fibre are long and straight having no side chains or linkages. By cold drawing, the chains can be aligned and oriented with the lengthwise direction that a highly crystalline structure is obtained, thereby obtaining nearly perfectly aligned filaments in the kernel of the hygroscopic capillary 20 cord.
The invention is not restricted to the embodiments described herein. It will be understood that many variants are possible.
The container might be located above or on the soil surface, but might also be buried, at least partially, e.g. to counteract evaporation 25 processes.
Further, the size of the container is in principle not limited, but may be designed depending on specific irrigation requirements such as the size of the area to be irrigated and the duration of the time period that the system is expected to operate without being replenished.
7
Instead of using a multiple number of capillary cords, the system according to the invention might also be provided with a single capillary cord, e.g. having a multiple number of branches.
The length of the capillary cords is in principle also not limited and 5 might vary between several centimeters to several hundreds of meters.
In a particular embodiment according to the invention, the container is filled with water and than sealed and brought in the neighborhood of soil wherein a plant or tree that has just been planted, e.g. by burying the container near the root structure of the plant or tree, so that 10 the plant or tree is provided with water in a dosed manner during a certain after-plant irrigation period, e.g. a couple of months. Optionally, the container is refilled after a first irrigation period by removing the seal or opening the valve and flowing water in the container. The container might be formed as a flexible bag or hose, e.g. annular-shaped, at least partially 15 surrounding the plant or tree. The wall of the container might include flexible material, such as a synthetic or natural rubber. Preferably, the wall is made from bio-degradable material. Obviously, a single container can be used to irrigate a multiple number of plants and/or trees.
Other such variants will be obvious for the person skilled in the art 20 and are considered to lie within the scope of the invention as formulated in the following claims.

Claims (15)

1. Water irrigatie-systeem voor het irrigeren van water in de grond, omvattende een houder met een wand die een inwendige kamer definieert voor het bevatten van water, voorts omvattende een capillair koord met een capillair uiteinde dat zich uitstrekt buiten de houder en is ingericht om in 5 vloeistofverbinding te zijn met water in de inwendige kamer van de houder, waarbij het capillaire koord een kern omvat en een omgevende laag die de kern omgeeft, waarbij de kern is voorzien van draden die in hoofdzaak zijn uitgelijnd met een lichaamsas van het koord.A water irrigation system for irrigating water in the ground, comprising a container with a wall defining an internal chamber for containing water, further comprising a capillary cord with a capillary end extending outside the container and arranged to be in fluid communication with water in the interior chamber of the container, the capillary cord comprising a core and a surrounding layer surrounding the core, the core being provided with wires substantially aligned with a body axis of the cord . 2. Water irrigatie-systeem volgens conclusie 1, waarbij de kern 10 hygroscopisch is.The water irrigation system according to claim 1, wherein the core 10 is hygroscopic. 3. Water irrigatie-systeem volgens conclusie 1 of 2, waarbij de omgevende laag geweven koordelementen omvat.The water irrigation system according to claim 1 or 2, wherein the surrounding layer comprises woven cord elements. 4. Water irrigatie-systeem volgens één der voorgaande conclusies, waarbij de omgevende laag synthetisch materiaal omvat.Water irrigation system according to any of the preceding claims, wherein the surrounding layer comprises synthetic material. 5. Water irrigatie-systeem volgens conclusie 4, waarbij het synthetische material van de omgevende laag een synthetische polymer, bij voorkeur een polyamide, meer in het bijzonder een nylon omvat.Water irrigation system according to claim 4, wherein the synthetic material of the surrounding layer comprises a synthetic polymer, preferably a polyamide, more in particular a nylon. 6. Water irrigatie-systeem volgens één der voorgaande conclusies, waarbij de draden een natuurlijke vezel, bij voorkeur katoen, of een 20 synthetisch materiaal, bij voorkeur een polyamide, meer bij voorkeur een nylon omvat.6. Water irrigation system according to any one of the preceding claims, wherein the threads comprise a natural fiber, preferably cotton, or a synthetic material, preferably a polyamide, more preferably a nylon. 7. Water irrigatie-systeem volgens één der voorgaande conclusies, waarbij de diameter van de opening en de diameter van het capillaire koord in hoofdzaak dezelfde afmeting hebben.Water irrigation system according to any one of the preceding claims, wherein the diameter of the opening and the diameter of the capillary cord have substantially the same size. 8. Water irrigatie-systeem volgens één der voorgaande conclusies, waarbij de diameter van de opening enigszins geringer is dan de diameter van het capillaire koord.A water irrigation system according to any one of the preceding claims, wherein the diameter of the opening is slightly smaller than the diameter of the capillary cord. 9. Water irrigatie-systeem volgens één der voorgaande conclusies, waarbij het capillaire koord een vertakkingsdeel omvat.Water irrigation system according to any one of the preceding claims, wherein the capillary cord comprises a branching part. 10. Water irrigatie-systeem volgens één der voorgaande conclusies, waarbij de wand is voorzien van een opening waardoor het capillaire koord 5 zich uitstrekt.10. Water irrigation system as claimed in any of the foregoing claims, wherein the wall is provided with an opening through which the capillary cord 5 extends. 11. Water irrigatie-systeem volgens één der voorgaande conclusies, omvattende een meervoudig aantal capillaire koorden die zijn ingericht om in vloeistofverbinding te zijn, via corresponderende openingen in de houderwand, met water in de inwendige kamer van de houder.Water irrigation system according to any of the preceding claims, comprising a plurality of capillary cords adapted to be in fluid communication, via corresponding openings in the container wall, with water in the interior chamber of the container. 12. Water irrigatie-systeem volgens één der voorgaande conclusies, waarbij het capillaire koord zich uitstrekt onder het grondoppervlak.A water irrigation system according to any one of the preceding claims, wherein the capillary cord extends below the ground surface. 13. Water irrigatie-systeem volgens één der voorgaande conclusies, waarbij de container een invoerdeel omvat voor verbinding met een watervullende eenheid.A water irrigation system according to any one of the preceding claims, wherein the container comprises an input part for connection to a water filling unit. 14. Water irrigatie-systeem volgens één der voorgaande conclusies, waarbij het invoerdeel van de houder is voorzien van een instroomopening om water door te laten stromen tot in de inwendige kamer van de houder, en een klep voor het openen en sluiten van de instroomopening.Water irrigation system as claimed in any of the foregoing claims, wherein the inlet part of the holder is provided with an inflow opening for water to flow into the inner chamber of the holder, and a valve for opening and closing the inflow opening. 15. Water irrigatie-systeem volgens één der voorgaande conclusies, 20 waarbij het invoerdeel van de houder is voorzien van een koppeleenheid voor koppeling met de watervullende eenheid.15. Water irrigation system as claimed in any of the foregoing claims, wherein the input part of the holder is provided with a coupling unit for coupling with the water filling unit.
NL2003277A 2009-07-24 2009-07-24 A WATER IRRIGATION SYSTEM. NL2003277C2 (en)

Priority Applications (2)

Application Number Priority Date Filing Date Title
NL2003277A NL2003277C2 (en) 2009-07-24 2009-07-24 A WATER IRRIGATION SYSTEM.
PCT/NL2010/050485 WO2011010930A1 (en) 2009-07-24 2010-07-26 A water irrigation system

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
NL2003277 2009-07-24
NL2003277A NL2003277C2 (en) 2009-07-24 2009-07-24 A WATER IRRIGATION SYSTEM.

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NL2003277C2 true NL2003277C2 (en) 2011-01-25

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NL2003277A NL2003277C2 (en) 2009-07-24 2009-07-24 A WATER IRRIGATION SYSTEM.

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Families Citing this family (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE102020122858B4 (en) 2020-09-01 2022-04-28 Marco Strecker Device for watering plants
CN114145213A (en) * 2020-09-07 2022-03-08 南京威顶自动化科技有限公司 Automatic watering device of organic rich water

Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB1292802A (en) * 1968-09-20 1972-10-11 Interior Gardens Ltd Improvements in or relating to apparatus for supplying water to a plant and to a method of irrigating a plant
DE2437141A1 (en) * 1974-08-01 1976-02-19 Hans Ekkehard Lommerzheim Water conducting wick for horticultural purposes etc. - is made of assemblies of synthetic fibres individually non-absorbent
US4328640A (en) * 1980-11-03 1982-05-11 Revelle William F Rope wick
US5375371A (en) * 1992-08-31 1994-12-27 Wells; Anthony L. Watering system
EP0893054A1 (en) * 1997-07-25 1999-01-27 Eisuke Momiyama Water-supplying apparatus capable of keeping predetermined water level

Patent Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB1292802A (en) * 1968-09-20 1972-10-11 Interior Gardens Ltd Improvements in or relating to apparatus for supplying water to a plant and to a method of irrigating a plant
DE2437141A1 (en) * 1974-08-01 1976-02-19 Hans Ekkehard Lommerzheim Water conducting wick for horticultural purposes etc. - is made of assemblies of synthetic fibres individually non-absorbent
US4328640A (en) * 1980-11-03 1982-05-11 Revelle William F Rope wick
US5375371A (en) * 1992-08-31 1994-12-27 Wells; Anthony L. Watering system
EP0893054A1 (en) * 1997-07-25 1999-01-27 Eisuke Momiyama Water-supplying apparatus capable of keeping predetermined water level

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Effective date: 20150801