Accurate drought resistance identification pool system
By using control and detection devices in the crop identification pool system, the water volume is monitored and automatically adjusted in real time, solving the problem of inaccurate identification caused by the differences in manual water control, and achieving uniformity and accuracy in crop drought resistance identification.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- BEIJING ZHIZHONG UNITED ENG TECH CO LTD
- Filing Date
- 2025-02-28
- Publication Date
- 2026-04-14
AI Technical Summary
In existing technologies, the artificial water control used to assess crop drought resistance varies, leading to inconsistent testing indicators and affecting the accuracy of the assessment results.
The precision drought resistance assessment pool system, controlled by a control device, monitors water volume in real time and automatically adjusts water inflow and outflow to ensure the uniformity and consistency of water content in each pool.
This approach achieves uniformity in water control during large-scale crop identification, improves the accuracy of identification results, reduces human intervention, and ensures the uniformity of testing indicators.
Smart Images

Figure CN224111849U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of drought resistance identification pool technology, and in particular to a precision drought resistance identification pool system. Background Technology
[0002] Food plays a vital role in human survival, and crops are an important part of food. Crop cultivation requires making the most of the land, but the choice of crops depends on the environment, especially in arid or water-scarce areas.
[0003] For crop cultivation in arid or water-scarce areas, drought resistance tests are necessary to ensure crop drought resistance, thereby guaranteeing germination and survival rates during subsequent planting. However, current technologies for assessing crop drought resistance generally involve artificially controlling water volume and testing various crop indicators. But artificial water control is prone to inconsistencies, which can lead to discrepancies in the tested indicators during large-scale testing, resulting in inaccurate data and affecting the final assessment results. Utility Model Content
[0004] The purpose of this utility model is to provide a precise drought resistance identification pool system, which can solve the above-mentioned technical problems.
[0005] This utility model provides a precise drought resistance assessment pool system, including a control device, and further comprising:
[0006] Several primary pools are located at the site of use;
[0007] The main pipe is connected to several first pools through several first inlet pipes; and a first detection device is installed on the first inlet pipe; the first detection device is connected to the control device.
[0008] Several first drain pipes are respectively installed in several first pools, and one end of each of the several first drain pipes extends to the outside of the several first pools.
[0009] The first water supply unit is located at the site of use and is connected to the main water supply line;
[0010] Several first acquisition devices are respectively disposed in the first pool body; all of the several first acquisition devices are connected to the control device.
[0011] As a further technical solution, it also includes:
[0012] Several first drip irrigation tapes are respectively installed in several first pools, and the several first drip irrigation tapes are respectively connected to several first water inlet pipes.
[0013] As a further technical solution, a first inlet valve is provided on each of the first inlet pipes; and the first inlet valve is connected to the control device.
[0014] As a further technical solution, it also includes:
[0015] Several second pools are located at the site of use;
[0016] Several second water inlet pipes are connected to the second pool body, and a second detection device is installed on the second water inlet pipe;
[0017] Several second drain pipes are respectively installed in several second pools, and one end of each of the several second drain pipes extends to the outside of the several second pools.
[0018] Several second acquisition devices are respectively disposed in the second pool; all of the several second acquisition devices are connected to the control device.
[0019] The second inlet pipe is connected to the main pipe.
[0020] As a further technical solution, it also includes:
[0021] Several second drip irrigation tapes are respectively installed in several second pools, and the several second drip irrigation tapes are respectively connected to several second water inlet pipes.
[0022] As a further technical solution, a second water inlet valve is provided on each of the second water inlet pipes; and the second water inlet valve is connected to the control device.
[0023] As a further technical solution, it also includes:
[0024] Several third-party pools are located at the site of use;
[0025] Several third water inlet pipes are connected to the third pool body respectively, and a third detection device is installed on the second water inlet pipe;
[0026] Several third drain pipes are respectively installed in several third pools, and one end of each of the several third drain pipes extends to the outside of the several third pools.
[0027] Several third acquisition devices are respectively installed in the third pool; all of the several third acquisition devices are connected to the control device;
[0028] The third inlet pipe is connected to the main pipe.
[0029] As a further technical solution, it also includes:
[0030] Several third drip irrigation tapes are respectively installed in several third pools, and the several third drip irrigation tapes are respectively connected to several third water inlet pipes.
[0031] As a further technical solution, a third water inlet valve is installed on each of the third water inlet pipes; and the third water inlet valve is connected to the control device.
[0032] As a further technical solution, it also includes: a second water supply unit, located at the site of use and connected to the main water supply line.
[0033] The technical solution of this utility model involves planting crops in several first pools located at the site. During the planting process, water for irrigating the crops is supplied to the main pipe through a first water supply mechanism, and water for irrigating the crops is also supplied to several first pools through several first water inlet pipes. In addition, during the water supply process, the water inflow is obtained through a first detection device and sent to a control device, which controls the opening and closing of the first water inlet pipes. During the planting process in the several first pools, the moisture content in the first pools is detected by a first acquisition device, and the detection result is sent to the control device. The control device selects the first water inlet pipe to supply water to the first pool or the first drain pipe to discharge water from the first pool as needed. Compared with the prior art, this method can accurately obtain the moisture content in the first pools and control the supply or drainage of water to the first pools through the first water inlet pipe or the first drain pipe. This process does not require manual intervention, ensuring the consistency of various indicators during large-scale detection and improving the accuracy of the overall identification results. Attached Figure Description
[0034] To more clearly illustrate the specific embodiments of this utility model or the technical solutions in the prior art, the drawings used in the description of the specific embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are some embodiments of this utility model. For those skilled in the art, other drawings can be obtained from these drawings without creative effort.
[0035] Figure 1 This is a schematic diagram of the structure of one embodiment of the precision drought resistance identification pool system of this utility model;
[0036] Figure 2 This is a schematic diagram of another embodiment of the precision drought resistance identification pool system of this utility model;
[0037] Figure 3 This is a schematic diagram of another embodiment of the precision drought resistance identification pool system of this utility model;
[0038] Figure 4 This is a control relationship block diagram in this utility model;
[0039] Explanation of reference numerals in the attached figures:
[0040] 100 - Control device; 200 - Main pipe; 301 - First pool body; 302 - First inlet pipe; 303 - First detection device; 304 - First drain pipe; 305 - First acquisition device; 306 - First drip irrigation tape; 307 - First inlet valve; 308 - First drain valve; 400 - First water supply mechanism; 501 - Second pool body; 502 - Second inlet pipe; 503 - Second detection device; 504 - Second drain pipe; 505 - Second acquisition device; 506 - Second drip irrigation tape; 507 - Second inlet valve; 508 - Second drain valve; 601 - Third pool body; 602 - Third inlet pipe; 603 - Third detection device; 604 - Third drain pipe; 605 - Third acquisition device; 606 - Third drip irrigation tape; 607 - Third inlet valve; 608 - Third drain valve; 700 - Second water supply mechanism. Detailed Implementation
[0041] The technical solution of this utility model will be clearly and completely described below with reference to the embodiments. Obviously, the described embodiments are only some embodiments of this utility model, not all embodiments. Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of this utility model.
[0042] In the description of this utility model, it should be understood that the terms "center", "longitudinal", "lateral", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", etc., indicating the orientation or positional relationship are based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing this utility model and simplifying the description, and are not intended to indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this utility model.
[0043] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more features. In the description of this utility model, "a plurality of" means two or more, unless otherwise explicitly specified. Furthermore, the terms "installed," "connected," and "linked" should be interpreted broadly; for example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model based on the specific circumstances.
[0044] like Figure 1-4 As shown, this utility model proposes a precision drought resistance assessment pool system, including a control device 100. It should be noted that the control device 100 is preferably based on existing technology, such as a PLC control board or a microcontroller; therefore, this utility model does not further limit its use in this regard. It also includes:
[0045] A plurality of first pools 301 are installed at the site of use; the number of first pools 301 can be set as needed; a main pipe 200 is connected to the plurality of first pools 301 through a plurality of first inlet pipes 302; and a first detection device 303 is installed on the first inlet pipe 302; the first detection device 303 is connected to the control device 100; during use, water is delivered to the plurality of first inlet pipes 302 through the main pipe 200, and water is delivered to the plurality of first pools 301 through the plurality of first inlet pipes 302; a plurality of first drain pipes 304 are respectively installed in the plurality of first pools 301, and one end of the plurality of first drain pipes 304 extends to the outside of the plurality of first pools 301; when the water volume in the plurality of first pools 301 is too large, the system automatically discharges water. Excess water in several first pools 301 is discharged through several first drain pipes 304; a first water supply mechanism 400 is installed at the place of use and connected to the main pipe 200, and supplies water to the main pipe 200 through the water supply mechanism; several first acquisition devices 305 are respectively installed in the first pools 301; several first acquisition devices 305 are all connected to the control device 100; in actual use, the moisture in several first pools 301 is detected by several first acquisition devices 305, and the detection results are sent to the control device 100. After the control device 100 obtains the detection results of several first acquisition devices 305, it controls the first inlet pipe 302 and the first drain pipe 304 respectively, thereby realizing the inlet or outlet of water into several first pools 301. Example 1:
[0046] like Figure 1As shown, a preferred configuration includes 16 first pools 301. A first water supply mechanism 400 is connected to a main pipe 200, which in turn connects to two first inlet pipes 302. Each first inlet pipe 302 is connected to a first pool 301 via eight first branch pipes. Simultaneously, a first drain pipe 304 is installed at the bottom of each first pool 301. The first inlet pipes 302 are located at the top of each first pool 301. In operation, a first acquisition device 305 continuously monitors the water content within the first pool 301 and sends the monitoring results to a control device 100. When the water content in the first pool 301 is too low, the control device 100 activates the first water supply mechanism 400 to supply water to the main pipe 200, and then delivers the water from the main pipe 200 into the first pool 301 via the first inlet pipes 302. Simultaneously, during the process of water delivery from the first inlet pipes 302 into the first pool 301, a first detection device 303 detects the water inflow and sends the detected water flow data to the first pool 301. The result is returned to the control device 100, which controls whether the first inlet pipe 302 is open based on the detection result. In this embodiment, preferably, each of the first inlet pipes 302 is equipped with a first inlet valve 307, i.e., 16 first inlet valves 307 are provided in this embodiment. The first inlet valves 307 are connected to the control device 100. When the amount of water entering the first pool 301 is sufficient, the control device 100 controls the first inlet valves 307 to close, thereby cutting off the flow in the first inlet pipes 302. When there is too much water in the first pool 301, the control device 100 opens the first drain pipe 304 to drain the excess water from the first pool 301. Specifically, the first drain pipe 304 is equipped with a first drain valve 308, and the first drain valve 308 is connected to the control device 100. The control device 100 controls whether the first drain pipe 304 is open by controlling the opening and closing of the first drain valve 308.
[0047] It should be noted that the conditions within each first pool 301 are different. During use, the control device 100 acquires data from each first acquisition device 305 and each first detection device 303, and controls each first inlet valve 307 and first outlet valve 308 to ensure precise control of the water content in each first pool 301. In this embodiment, preferably, the first water supply mechanism 400 is a water supply pool, and a water pump is installed in the water supply pool. The water pump is connected to the control device 100. Both the first inlet valve 307 and the first outlet valve 308 are solenoid valves, and the control device 100 controls the opening and closing of the first inlet valve 307 and the first outlet valve 308 respectively. The first detection device 303 is preferably a flow sensor. The first acquisition device 305 is preferably a moisture sensor. Of course, the number of first acquisition devices 305 can be increased according to actual needs. The specific details are subject to actual requirements, and this utility model will not elaborate further on this.
[0048] In this embodiment, in order to increase the uniformity of water acquisition for crops in the first pools 301 and avoid the impact of concentrated water intake on crops, preferably, a plurality of first drip irrigation tapes 306 are provided. The plurality of first drip irrigation tapes 306 are respectively disposed in the plurality of first pools 301 and are respectively connected to a plurality of first water inlet pipes 302. Specifically, the first drip irrigation tapes 306 are connected to the first branch pipes connected to the first water inlet pipes 302, so as to disperse the water delivered from the first water inlet pipes 302 and deliver it to the first pools 301. Example 2:
[0049] like Figure 2 As shown, based on Embodiment 1, Embodiment 2 further includes: a plurality of second pools 501 disposed at the site of use; a plurality of second inlet pipes 502 respectively connected to the second pools 501, and a second detection device 503 disposed on the second inlet pipes 502; a plurality of second drain pipes 504 respectively disposed within the plurality of second pools 501, and one end of the plurality of second drain pipes 504 respectively extending to the outside of the plurality of second pools 501; a plurality of second acquisition devices 505 respectively disposed within the second pools 501; the plurality of second acquisition devices 505 are all connected to the control device 100; the second inlet pipes 502 are connected to the main pipe 200; in this embodiment, it is preferable to provide 6 second pools 501, and to connect 3 second pools 501 respectively through 2 second inlet pipes 502;
[0050] Specifically, each second pool 501 is connected to the second inlet pipe 502 via a second branch pipe. When the second acquisition device 505 detects insufficient water in the second pool 501, it sends the detection result to the control device 100. After receiving the result, the control device 100 activates the first water supply mechanism 400 to supply water to the main pipe 200, which then flows into the second pool 501 through the second inlet pipe 502. During the water delivery process through the second inlet pipe 502, the second detection device 503 detects the water delivery volume and returns the volume to the control device 100, which then closes the second inlet pipe 502. When the second detection device 503 detects excessive water in the second pool 501, the control device 100 activates the second drain pipe 504 to drain the excess water from the second pool 501. Specifically, the second drain pipe 504 is equipped with a second drain valve 508. Connected to the control device 100, the second drain valve 508 is used to drain water from the second pool 501. Preferably, each of the second inlet pipes 502 is equipped with a second inlet valve 507, i.e., six second inlet valves 507 are provided in this embodiment. The second inlet valves 507 are connected to the control device 100. When the amount of water entering the second pool 501 is sufficient, the control device 100 controls the second inlet valves 507 to close and cut off the flow in the second inlet pipes 502. When there is too much water in the second pool 501, the control device 100 opens the second drain pipe 504 to drain the excess water from the second pool 501. Specifically, the second drain pipe 504 is equipped with a second drain valve 508, and the second drain valve 508 is connected to the control device 100. The control device 100 controls whether the second drain pipe 504 is open by controlling the opening and closing of the second drain valve 508.
[0051] It should be noted that the conditions within each second pool 501 are different. During use, the control device 100 acquires data from each second acquisition device 505 and each second detection device 503, and controls each second inlet valve 507 and second outlet valve 508 to ensure precise control of the moisture content in each second pool 501. In this embodiment, both the second inlet valve 507 and the second outlet valve 508 are solenoid valves, and the control device 100 controls the opening and closing of the second inlet valve 507 and the second outlet valve 508 respectively. The second detection device 503 is preferably a flow sensor; the second acquisition device 505 is preferably a moisture sensor. Of course, the number of second acquisition devices 505 can be increased according to actual needs, and the specific details will not be elaborated further in this invention.
[0052] In this embodiment, to increase the uniformity of water acquisition for crops within the several second pools 501 and to avoid the impact of concentrated water intake on crops, preferably, several second drip irrigation tapes 506 are provided. These second drip irrigation tapes 506 are respectively disposed within the several second pools 501 and are respectively connected to several second water inlet pipes 502. Specifically, the second drip irrigation tapes 506 are connected to the second branch pipes connected to the second water inlet pipes 502, dispersing the water delivered from the second water inlet pipes 502 and transporting it into the second pools 501. Example 3:
[0053] like Figure 3 As shown, based on Embodiment 2, it further includes: a plurality of third pools 601 disposed at the place of use; a plurality of third inlet pipes 602 respectively connected to the third pools 601, and a third detection device 603 disposed on the third inlet pipes 602; a plurality of third drain pipes 604 respectively disposed inside the plurality of third pools 601, and one end of the plurality of third drain pipes 604 respectively extending to the outside of the plurality of third pools 601; a plurality of third acquisition devices 605 respectively disposed inside the third pools 601; the plurality of third acquisition devices 605 are all connected to the control device 100; the third inlet pipes 602 are connected to the main pipe 200; in this embodiment, it is preferable to provide 4 third pools 601, and to connect 2 third pools 601 respectively through 2 third inlet pipes 602;
[0054] Specifically, each third pool 601 is connected to the third inlet pipe 602 via a third branch pipe. When the third acquisition device 605 detects insufficient water in the third pool 601, it sends the detection result to the control device 100. After receiving the result, the control device 100 activates the first water supply mechanism 400 to supply water to the main pipe 200, which then enters the third pool 601 through the third inlet pipe 602. During the water supply process through the third inlet pipe 602, the third detection device 603 detects the water supply volume to ensure proper water distribution. The water volume returns to the control device 100, which closes the third inlet pipe 602. When the third detection device 603 detects that the water level in the third pool 601 is too high, the control device 100, after acquiring the information, starts the third drain pipe 604 to drain the excess water from the third pool 601. Specifically, the third drain pipe 604 is equipped with a third drain valve 608, which is connected to the control device 100. The opening and closing of the third drain valve 608 is controlled to drain water from the third pool 601.
[0055] In addition, a third inlet valve 607 is provided on each of the third inlet pipes 602, that is, four third inlet valves 607 are provided in this embodiment; and the third inlet valves 607 are connected to the control device 100; when the amount of water entering the third pool 601 is sufficient for use, the control device 100 closes the third inlet valves 607 to cut off the flow in the third inlet pipes 602.
[0056] It should be noted that the conditions within each third pool 601 are different. During use, the control device 100 acquires data from each third acquisition device 605 and each third detection device 603, and controls each third inlet valve 607 and third outlet valve 608 to ensure precise control of the moisture content in each third pool 601. In this embodiment, both the third inlet valve 607 and the third outlet valve 608 are solenoid valves, and the control device 100 controls their opening and closing. The third detection device 603 is preferably a flow sensor; the third acquisition device 605 is preferably a moisture sensor. Of course, the number of third acquisition devices 605 can be increased according to actual needs, and the specific details will not be elaborated further in this invention.
[0057] In this embodiment, to increase the uniformity of water acquisition for crops within the third pools 601 and to avoid the impact of concentrated water intake on crops, preferably, a plurality of third drip irrigation tapes 606 are provided. These third drip irrigation tapes 606 are respectively disposed within the third pools 601 and are respectively connected to a plurality of third water inlet pipes 602. Specifically, the third drip irrigation tapes 606 are connected to the third branch pipes connected to the third water inlet pipes 602, dispersing the water delivered from the third water inlet pipes 602 and transporting it into the third pools 601. Example 4:
[0058] Based on embodiments 1, 2, or 3, this embodiment further includes a second water supply mechanism 700, which is located at the point of use and connected to the main pipe 200. Specifically, the first water supply mechanism 400 is a water supply tank, and a water pump is installed in the water supply tank. The water pump is connected to the control device 100. During actual use, water is supplied through the first water supply mechanism 400. When the water in the first water supply mechanism 400 can no longer be supplied, water needs to be stored in the first water supply mechanism 400. At this time, the system switches to the second water supply mechanism 700 to supply water to the main pipe 200, and water is stored in the first water supply mechanism 400 at the same time as the second water supply mechanism 700 supplies water, so as to avoid the first water supply mechanism 400 being unable to supply water to the main pipe 200 during the water storage process. In subsequent use, the system switches between the first water supply mechanism 400 and the second water supply mechanism to achieve continuous water supply to the main pipe 200.
[0059] The technical solution of this utility model involves planting crops in several first pools 301 located at the site. During the planting process, water is supplied to the main pipe 200 through a first water supply mechanism 400, and water for irrigating the crops is supplied to the several first pools 301 through several first inlet pipes 302. Furthermore, during the water supply process, the water inflow is acquired by a first detection device 303 and sent to a control device 100, which controls the opening and closing of the first inlet pipes 302. During the crop planting process in the several first pools 301, the first acquisition device 30... 5. The moisture content in the first pool 301 is detected, and the detection result is sent to the control device 100. The control device 100 selects the first inlet pipe 302 to introduce water into the first pool 301 or the first drain pipe 304 to drain water from the first pool 301 as needed. Compared with the prior art, the moisture content in the first pool 301 can be accurately obtained, and the first inlet pipe 302 or the first drain pipe 304 can be controlled to introduce or drain water into the first pool 301. No manual intervention is required in this process, which ensures the consistency of various indicators when detecting large areas and improves the accuracy of the overall identification results.
[0060] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of this utility model, and are not intended to limit it. Although the utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some or all of the technical features therein. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of this utility model.
Claims
1. A precision drought resistance assessment pool system, comprising a control device (100), characterized in that, Also includes: Several first pool bodies (301) are installed at the site of use; The main pipe (200) is connected to several first pools (301) through several first inlet pipes (302); and a first detection device (303) is provided on the first inlet pipe (302); the first detection device (303) is connected to the control device (100); A plurality of first drain pipes (304) are respectively installed in a plurality of first pool bodies (301), and one end of the plurality of first drain pipes (304) extends to the outside of the plurality of first pool bodies (301); The first water supply unit (400) is located at the site of use and is connected to the main water supply pipe (200); A plurality of first acquisition devices (305) are respectively disposed in the first pool body (301); the plurality of first acquisition devices (305) are all connected to the control device (100).
2. The precision drought resistance assessment pool system according to claim 1, characterized in that, Also includes: A plurality of first drip irrigation tapes (306) are respectively disposed in a plurality of first pool bodies (301), and the plurality of first drip irrigation tapes (306) are respectively connected to a plurality of first water inlet pipes (302).
3. The precision drought resistance assessment pool system according to claim 1, characterized in that, Each of the first water inlet pipes (302) is provided with a first water inlet valve (307); and the first water inlet valve (307) is connected to the control device (100).
4. The precision drought resistance assessment pool system according to claim 1, characterized in that, Also includes: Several second pools (501) are installed at the site of use; Several second water inlet pipes (502) are respectively connected to the second pool body (501), and a second detection device (503) is provided on the second water inlet pipe (502). A plurality of second drain pipes (504) are respectively installed in a plurality of second pool bodies (501), and one end of the plurality of second drain pipes (504) extends to the outside of the plurality of second pool bodies (501); A plurality of second acquisition devices (505) are respectively disposed in the second pool (501); the plurality of second acquisition devices (505) are all connected to the control device (100); The second water inlet pipe (502) is connected to the main pipe (200).
5. The precision drought resistance identification pool system according to claim 4, characterized in that, Also includes: A plurality of second drip irrigation tapes (506) are respectively installed in a plurality of second pool bodies (501), and the plurality of second drip irrigation tapes (506) are respectively connected to a plurality of second water inlet pipes (502).
6. The precision drought resistance identification pool system according to claim 4, characterized in that, Each of the second water inlet pipes (502) is provided with a second water inlet valve (507); and the second water inlet valve (507) is connected to the control device (100).
7. The precision drought resistance assessment pool system according to claim 4, characterized in that, Also includes: Several third pool bodies (601) are installed at the site of use; Several third water inlet pipes (602) are respectively connected to the third pool body (601), and a third detection device (603) is provided on the second water inlet pipe (502). A plurality of third drain pipes (604) are respectively disposed in a plurality of the third pool bodies (601), and one end of the plurality of third drain pipes (604) extends to the outside of the plurality of the third pool bodies (601); A plurality of third acquisition devices (605) are respectively disposed in a plurality of the third pools (601); the plurality of third acquisition devices (605) are all connected to the control device (100); The third water inlet pipe (602) is connected to the main pipe (200).
8. The precision drought resistance identification pool system according to claim 7, characterized in that, Also includes: A plurality of third drip irrigation tapes (606) are respectively installed in a plurality of the third pool bodies (601), and the plurality of third drip irrigation tapes (606) are respectively connected to a plurality of third water inlet pipes (602).
9. The precision drought resistance identification pool system according to claim 8, characterized in that, Each of the aforementioned third water inlet pipes (602) is provided with a third water inlet valve (607); and the third water inlet valve (607) is connected to the control device (100).
10. The precision drought resistance assessment pool system according to claim 1, characterized in that, Also includes: The second water supply unit (700) is located at the site of use and is connected to the main water supply unit (200).