This application claims priority of Taiwanese Patent Application No. 108205564, filed on May 6, 2019.
The disclosure relates to a soil drainage device, and more particularly to a soil drainage device which can extract water or fluids from soil to regulate moisture of the soil.
Water drainage from soil is essential for preventing water ponding on the ground surface which causes breeding habitat of vector mosquitoes, and excess water in soil which causes problems such as plant root rot, poor growth and even death. A conventional approach for extracting water from soil surface is natural infiltration and evaporation, which is inefficient and time consuming. Another approach is to use a drainage ditch, or a vent pipe buried therein to increase the evaporation rate. It is troublesome to build a drainage ditch at low-lying areas and use a vent pipe at a cement-covered ground.
To improve the drainage efficiency, a water extracting machine is employed and equipped with a water pump which is in direct contact with the water in soil. However, the soil contains, in addition to moisture, a large amount of sediment impurities that will cause serious wear and blockage to the structure of the pump. Moreover, water on the surface of soil and penetrating into the soil can be hardly drained by means of the water pump.
Therefore, an object of the disclosure is to provide a soil drainage device that can alleviate at least one of the drawbacks of the prior art.
According to the disclosure, the soil drainage device includes a host, at least one water collecting assembly and a piping unit. The host includes a host housing defining a control chamber therein, a control module disposed in the control chamber, and an air pump disposed in the control chamber and coupled with the control module to be operable for pushing air. The water collecting assembly includes an assembly housing having a surrounding wall which defines therein a water collecting chamber and a water reservoir chamber that is disposed under the water collecting chamber. The assembly housing has an upper penetrating bore for entering of water into the water collecting chamber from an upper end thereof, and a plurality of openings formed through the surrounding wall for laterally entering of water into the water collecting chamber. A filter unit includes first and second filter members disposed on the assembly housing to respectively cover the upper penetrating bore and the openings. A water level switch is disposed in the water reservoir chamber and is coupled with the control module. A valve member is disposed to regulate flow of water from the water collectins chamber into the water reservoir chamber. The piping unit includes an air intake pipe in spatial communication between the control chamber and ambient air, at least one water draining pipe in spatial communication between the water reservoir chamber of the water collecting assembly and outside thereof, and at least one air conducting pipe disposed to introduce compressed air from the air pump into the water reservoir chamber to forma pressure in the water reservoir chamber so as to force water flow out through the water draining pipe.
Other features and advantages of the disclosure will become apparent in the following detailed description of the embodiments with reference to the accompanying drawings, of which:
FIG. is an exploded perspective view of the embodiment;
Before the disclosure is described in greater detail, it should be noted that where considered appropriate, reference numerals or terminal portions of reference numerals have been repeated among the figures to indicate corresponding or analogous elements, which may optionally have similar characteristics.
Referring to
The machine housing 1 has a host housing 51 and an assembly housing 61 integrally formed with each other as a one-single piece in this embodiment. Specifically, the machine housing 1 includes a bottom wall 11, a surrounding wall 12 extending upwardly from a periphery of the bottom wall 11 and terminating at an upper surrounding edge, an upper cover wall 13 disposed on and covering the upper surrounding edge of the surrounding wall 12, and first, second and third partition walls 14, 15, 16 disposed within the surrounding wall 12. The first partition wall and the upper cover wall 13 cooperate with the surrounding wall 12 to serve as the host housing 51 which defines a control chamber (R1) therein. The first partition wall 14 and the bottom wall 11 cooperate with the surrounding wall 12 to serve as the assembly housing 61 under the host housing 51. More particularly, the first and second partition walls 14, 15 cooperate with the surrounding wall 12 to define a water collecting chamber (R2) thereamong. The second and third partition walls 15, 16 cooperate with the surrounding wall 12 to define a water reservoir chamber (R3) thereamong under the water collecting chamber (R2). The third partition wall 16 and the bottom wall 11 cooperate with the surrounding wall 12 to define an air introducing chamber (R4) thereamong under the water reservoir chamber (R3). The upper cover wall 13 is formed with an upper penetrating bore 131 extending therethrough for entering of water into the machine housing 1 from an upper end thereof. The first partition wall 14 is formed with a first through bore 141 extending therethrough. A connecting pipe interconnects the upper penetrating and first through bores 131, 141 to permit water entering from the upper penetrating bore 131 to flow into the water collecting chamber (R2). The second partition wall 15 is formed with a second through bore 151 to make spatial communication between the water collecting chamber (R2) and the water reservoir chamber (R3). The surrounding wall 12 has a plurality of openings 121 formed therethrough to make spatial communication between the water collecting-chamber (R2) and outside thereof for laterally entering of water into the water collecting chamber (R2), and a plurality of slots 122 formed therethrough to make spatial communication between the air introducing chamber (R4) and outside thereof.
The filter unit 2 includes a first filter member 21 disposed upon the upper cover wall 13 to cover the upper penetrating bore 131, a second filter member 22 disposed on and inwardly of the surrounding wall 12 in the water collecting chamber (R2) to cover the openings 121, and a third filter member 23 disposed on and inwardly of the surrounding wall 12 in the air introducing chamber (R4) to cover the slots 122.
The air compressor unit 3 includes a control module 31 disposed in the control chamber (R1), an air pump 32 disposed in the control chamber (R1) and coupled with the control module 31 to be operable for pushing air, a water level switch 33 disposed in the water reservoir chamber (R3) and coupled with the control module 31, a valve member 34 disposed to regulate flow of water from the second through bore 151 into the water reservoir chamber (R3), and a shift module 35 disposed in the control chamber (R1) and coupled with the control module 31. In this embodiment, the control module 31 has a wireless signal receiver (not shown) for receiving a wireless control signal in a known manner, and is programmed to control an operating time of the air pump 32.
The piping unit 4 includes an air intake pipe 41 in spatial communication between the control chamber (R1) and ambient air, a water draining pipe 42 in spatial communication between the water reservoir chamber (R3) and outside thereof, a connecting conduit 43 interconnecting the air pump 32 and the shift module 35, an air conducting pipe 44 connected with the shift module 35 to introduce compressed air from the air pump 32 into the water reservoir chamber (R3) to form a pressure in the water reservoir chamber (R3) so as to force water flow out through the water draining pipe 42, and an air introducing pipe 45 connected with the shift module 35 to introduce the air into the air introducing chamber (R4). The shift module 35 is operable to shift between a draining mode where the air pump 32 is in air communication with the air conducting pipe 44, and an air introducing mode where the air pump 32 is in air communication with the air introducing pipe 45.
With reference to
The air pump 32 is actuated for a predetermined operating time given by the control module 31, and is stopped to avoid overrunning thereof caused by occurrence of draining blockage or other accidents so as to prevent damage to the air pump 32. The operating time is predetermined in accordance with the volume of the water reservoir chamber (R3) and the drainage rate and is set in the control module 31. In addition, the air pump 32 is actuated when the shift module 35 is shifted to an air introducing mode, where the air communication between the air introducing pipe 45 and the connecting conduit 43 is made for a predetermined time given by the control module 31. In this mode, the air pushed by the air pump 32 flows to the air introducing chamber (R4), and is introduced in the soil (S) through the third filter member 23 and the slots 122 for providing oxygen to roots of plants.
In this embodiment, the shift module 35 is provided with two solenoid valves (not shown) to respectively regulate the air communication between the air conducting pipe 44 or the air introducing pipe 45 and the connecting conduit 43. Alternatively, in a modified embodiment, the water drainage function is performed without providing the air introducing chamber (R4), the shift module 35, the connecting conduit 43 and the air introducing pipe 45. That is, in the machine housing 1, the third partition wall 16 can be dispensed with, and the surrounding wall 12 is not needed to have the slots 122. The air conducting pipe 44 can be directly connected with the air pump 32.
Referring to
The host 5 includes a host housing 51 defining a control chamber (R1) therein, a control module 31 (with reference to
Taking
In this embodiment, the piping unit 4 includes an air intake pipe 41 in spatial communication between the control chamber (R1) and ambient air, a connecting conduit 43 interconnecting the air pump 32 and the shift module 35, a plurality of air conducting pipes 44 each interconnecting the shift module 35 and the respective water collecting assembly 6, and a plurality of water draining pipes 42 each in spatial communication between the water reservoir chamber (R3) of the respective water collecting assembly 6 and outside thereof. Each air conducting pipe 44 is in spatial connection with the water reservoir chamber (R3) of the respective water collecting assembly 6 to introduce compressed air from the air pump 32 into the water reservoir chamber (R3) to form a pressure in the water reservoir chamber (R3). The shift module 35 is interposed between the connecting conduit 43 and a respective one of the air conducting pipes 44 to shift between an air communicating mode where an air communication therebetween is made, and an air interrupting mode where the air communication is interrupted. The shift module 35 is provided with a plurality of solenoid valves (not shown) to respectively regulate the air communication between the air conducting pipes 44 and the connecting conduit 43. As mentioned above, in a modified embodiment, each water collecting assembly 6 may have an air introducing chamber (R4). In such modified embodiment, the piping unit 4 further includes a plurality of air introducing pipes 45 (with reference to
Specifically, in this embodiment, a single host 5 and a plurality of water collecting assemblies 6 are provided to form a soil drainage device 100 for being used in a large area of soil (S), which improves water drainage efficiency and dispenses with a cost of preparing extra hosts.
As illustrated, the soil drainage device 100 of the disclosure is embedded in soil (S), and collects water on the soil surface and in the soil by virtue of gravity and penetration. The water collected in the machine housing can be extracted by means of compressed air so as to achieve great soil drainage efficiency. Moreover, air is introduced in the soil (S) to provide oxygen to roots of plants.
While the disclosure has been described in connection with what are considered the exemplary embodiments, it is understood that this disclosure is not limited to the disclosed embodiments but is intended to cover various arrangements included within the spirit and scope of the broadest interpretation so as to encompass all such modifications and equivalent arrangements.
Number | Date | Country | Kind |
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108205564 | May 2019 | TW | national |
Number | Name | Date | Kind |
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4948294 | Mercier | Aug 1990 | A |
20070251877 | Chang | Nov 2007 | A1 |
20130213869 | Allard | Aug 2013 | A1 |
20140377009 | Lacazedieu | Dec 2014 | A1 |
Number | Date | Country | |
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20200354911 A1 | Nov 2020 | US |