Soil pollution detection device for comprehensive management of environmental pollution data
By integrating the sampler storage mechanism and photovoltaic energy-saving mechanism in the soil pollution detection device, the problem of easy loss of samplers and high energy consumption during existing devices during field operations is solved, and portability, safety, energy-saving and environmentally friendly effects are achieved.
Patent Information
- Application Number
- CN202510239784.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-03
- Publication Date
- 2025-06-27
AI Technical Summary
When existing soil pollution detection devices are operating in the field, the sampler is prone to loss and rely on external power supply or battery power, resulting in high energy consumption and increased operating costs.
A soil pollution detection device for comprehensive management of environmental pollution data was designed, and a sampler storage mechanism and a photovoltaic energy-saving mechanism were integrated. The sampler storage mechanism realizes portability and safety through the engagement of positioning card blocks and card holes; the photovoltaic energy-saving mechanism reduces dependence on traditional power through solar photovoltaic panels, charging controllers and batteries, and reduces energy consumption and carbon emissions.
The device reduces the number of equipment that needs to be carried separately, improves portability and work efficiency, reduces energy consumption and operational costs, and is in line with the concept of sustainable development.
Smart Images

Figure CN120214261A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of soil pollution detection, and specifically to a soil pollution detection device for comprehensive management of environmental pollution data. Background Art
[0002] Soil pollution detection refers to the qualitative or quantitative analysis of possible pollutants in soil through scientific methods and means to evaluate the degree of soil pollution and environmental risks. This process is crucial for protecting soil resources, maintaining ecological balance, ensuring agricultural production, and human health. Soil pollution detection usually includes the detection of heavy metals, pesticide residues, organic pollutants, radioactive substances, etc., as well as the analysis of soil physical and chemical properties, and usually requires the use of soil pollution detection devices.
[0003] When common soil pollution detection devices are in use, they usually do not have a sampler storage structure, and the sampler needs to be carried separately. Carrying the sampler separately will increase the burden on staff. Especially in the case of multi-point sampling, the separately carried sampler is likely to be lost during the sampling process, especially during field operations where the environment is complex and the sampler may be left at the site. At the same time, they do not have a photovoltaic energy-saving device and need to rely on external power sources or batteries for power supply, which will result in high energy consumption. Especially in the case of long-term use, the energy cost will increase significantly. During field operations, without a photovoltaic energy-saving mechanism, staff need to frequently replace batteries or look for power sources, which is inconvenient to operate and reduces work efficiency, bringing certain adverse effects to the usage process. Therefore, we propose a soil pollution detection device for comprehensive management of environmental pollution data. Summary of the Invention
[0004] Technical problems to be solved: Aiming at the deficiencies of the prior art, the present invention provides a soil pollution detection device for comprehensive management of environmental pollution data, which has the advantages of improved portability, enhanced safety, energy conservation and environmental protection, and reduced operation costs. Through the sampler storage mechanism provided, the storage drawer can be positioned inside the movable drawer slot through the engagement of the first positioning triangular block and the first positioning triangular hole. The electric telescopic frame is positioned inside the T-shaped positioning slot through the engagement of the second positioning triangular hole and the second positioning triangular block, reducing the number of devices that need to be carried separately, making the whole device more portable and convenient for carrying and transportation. Especially during field operations, the burden on staff is reduced and work efficiency is improved. The inner anti-slip flexible pad on the inner wall of the T-shaped positioning slot can strengthen the friction force, making the engagement more firm. When in use, the storage drawer can be pulled through the pull hole, and the electric telescopic frame can be taken from the taking control hole. Through the photovoltaic energy-saving mechanism provided, the solar photovoltaic panel is positioned on the inner wall of the photovoltaic panel positioning slot through the outer positioning frame. There is a protective sealing strip on the outer wall of the outer positioning frame to strengthen the sealing performance. The positioning box is positioned at the lower end of the inner wall of the upper connecting cover through the sealing connecting plate and the connecting positioning plate. The solar photovoltaic panel can absorb solar energy and transmit it to the charging controller through the first connecting wire. The charging controller can transmit the electric energy to the storage battery for storage through the second connecting wire, and can transmit the electric energy inside the storage battery to the soil pollution detection device main body for use through the third connecting wire, reducing the dependence on traditional electricity, thereby reducing energy consumption and carbon emissions, meeting the concept of sustainable development. At the same time, the electricity cost can be significantly reduced, especially in the case of long-term operation, and this energy-saving effect will be more obvious, effectively solving the problems in the background technology.
[0005] Technical solution: To achieve the above object, the technical solution adopted by the present invention is: A soil pollution detection device for comprehensive management of environmental pollution data, including a soil pollution detection device main body, a sampler storage mechanism is fixedly installed inside the soil pollution detection device main body, an upper connecting cover is movably connected to the upper end of the soil pollution detection device main body, a photovoltaic energy-saving mechanism is fixedly installed on the inner wall of the upper connecting cover, a detection control panel is fixedly connected to the inner wall of the soil pollution detection device main body, and detection slots are evenly opened inside the soil pollution detection device main body. The sampler storage mechanism includes a movable drawer slot, a first positioning triangular hole, a storage drawer, a pull hole, a first positioning triangular block, a T-shaped positioning slot, an inner anti-slip flexible pad, a second positioning triangular block, a taking control hole, an electric telescopic frame, a second positioning triangular hole, a sampling tube and a handle.
[0006] Preferably, the upper connecting cover is opened and closed through a hinge at the upper end of the soil pollution detection device main body, and the detection control panel is embedded in the inner wall of the soil pollution detection device main body and fixed.
[0007] Preferably, the movable drawer slot is opened on the inner wall of the lower end of the main body of the soil pollution detection device. The first positioning triangular card holes are opened on both sides of the inner wall of the movable drawer slot. The storage drawer box is located inside the movable drawer slot. The draw hole is opened at one end of the storage drawer box.
[0008] Preferably, the first positioning triangular blocks are all located on both sides of the storage drawer box. The T-shaped positioning card slot is opened on the upper end of the storage drawer box. The inner anti-slip flexible pad is located on the inner wall of the T-shaped positioning card slot. The second positioning triangular blocks are located on both sides of the inner wall of the T-shaped positioning card slot. The taking control hole is opened on the upper end of the storage drawer box and communicates with the T-shaped positioning card slot. The second positioning triangular card holes are opened on both sides of the outer wall of the electric telescopic frame. The sampling tube is located at one end of the electric telescopic frame. The handle is located at the other end of the electric telescopic frame.
[0009] Preferably, the outer wall of the storage drawer box is movably connected to the inner wall of the movable drawer slot. The rear ends of the first positioning triangular blocks are fixedly connected to both sides of the storage drawer box. The storage drawer box is positioned on the inner wall of the movable drawer slot through the engagement of the first positioning triangular blocks and the first positioning triangular card holes. One side of the inner anti-slip flexible pad is adhesively positioned to the inner wall of the T-shaped positioning card slot through strong glue. The rear ends of the second positioning triangular blocks are fixedly connected to both sides of the inner wall of the T-shaped positioning card slot.
[0010] Preferably, one end of the electric telescopic frame is fixedly connected to one end of the sampling tube, and the other end of the electric telescopic frame is fixedly connected to the outer wall of the handle. The electric telescopic frame is positioned inside the T-shaped positioning card slot through the engagement of the second positioning triangular blocks and the second positioning triangular card holes.
[0011] Preferably, the photovoltaic energy-saving mechanism includes a photovoltaic panel positioning groove, a connecting positioning plate, a solar photovoltaic panel, an outer positioning frame, a protective sealing strip, a first connecting wire, a positioning box, a sealing connecting plate, a charging controller, a second connecting wire, a storage battery, and a third connecting wire. The photovoltaic panel positioning groove is opened on the upper end of the upper connecting cover. The connecting positioning plate is located on the inner wall of the upper connecting cover. The solar photovoltaic panel is located inside the outer positioning frame. The protective sealing strip is located on the outer wall of the outer positioning frame. The first connecting wire is located between the solar photovoltaic panel and the charging controller. The sealing connecting plate is located on the upper end of the positioning box. The charging controller and the storage battery are both located inside the positioning box. The second connecting wire is located between the charging controller and the storage battery. The third connecting wire is located between the storage battery and the main body of the soil pollution detection device.
[0012] Preferably, the outer wall of the connecting and positioning tab is fixedly connected to the inner wall of the upper connecting cover, the inner wall of the outer positioning frame is fixedly connected to the outer wall of the solar photovoltaic panel, one side of the protective sealing strip is adhesively positioned to the outer wall of the outer positioning frame through strong glue, and the solar photovoltaic panel is snap-fitted and positioned on the inner wall of the photovoltaic panel positioning groove.
[0013] Preferably, both ends of the first connecting wire are respectively connected to the solar photovoltaic panel and the charging controller. The upper end of the positioning box is fixedly connected to the lower end of the sealing connecting plate. The positioning box is positioned on the inner wall of the upper connecting cover through the sealing connecting plate and the connecting and positioning tab. One side of both the charging controller and the storage battery is fixedly connected to the inner wall of the positioning box. Both ends of the second connecting wire are respectively connected to the charging controller and the storage battery. Both ends of the third connecting wire are respectively connected to the storage battery and the main body of the soil pollution detection device.
[0014] Beneficial effects: Compared with the prior art, the present invention provides a soil pollution detection device for comprehensive management of environmental pollution data, having the following beneficial effects:
[0015] 1. For this soil pollution detection device for comprehensive management of environmental pollution data, through the provided sampler storage mechanism, the storage drawer can be positioned inside the movable drawer slot through the engagement of the first positioning triangular block and the first positioning triangular hole. The electric telescopic frame is positioned inside the T-shaped positioning card slot through the engagement of the second positioning triangular hole and the second positioning triangular block, reducing the number of devices that need to be carried separately, making the entire device more portable and convenient for carrying and transportation. Especially during field operations, the burden on staff is reduced, and work efficiency is improved. The inner anti-slip flexible pad on the inner wall of the T-shaped positioning card slot can enhance the friction force, making the engagement more secure. When in use, the storage drawer can be pulled through the pull hole, and the electric telescopic frame can be taken from the access control hole.
[0016] 2. For this soil pollution detection device for comprehensive management of environmental pollution data, through the provided photovoltaic energy-saving mechanism, the solar photovoltaic panel is positioned on the inner wall of the photovoltaic panel positioning groove through the outer positioning frame. The outer wall of the outer positioning frame has a protective sealing strip to enhance the sealing performance. The positioning box is positioned at the lower end of the inner wall of the upper connecting cover through the sealing connecting plate and the connecting and positioning tab. The solar photovoltaic panel can absorb solar energy and transmit it to the charging controller through the first connecting wire. The charging controller can transmit the electric energy to the storage battery for storage through the second connecting wire, and the electric energy inside the storage battery can be transmitted to the main body of the soil pollution detection device for use through the third connecting wire, reducing the dependence on traditional electricity, thereby reducing energy consumption and carbon emissions, meeting the concept of sustainable development. At the same time, the electricity cost can be significantly reduced, especially in the case of long-term operation, and this energy-saving effect will be more obvious. Description of the Drawings
[0017] Figure 1 This is the overall structural schematic diagram of a soil pollution detection device for comprehensive management of environmental pollution data in the present invention.
[0018] Figure 2 This is the exploded schematic diagram of the solar photovoltaic panel and the photovoltaic panel positioning groove in a soil pollution detection device for comprehensive management of environmental pollution data in the present invention.
[0019] Figure 3 This is the schematic diagram of the open state of the upper connection cover in a soil pollution detection device for comprehensive management of environmental pollution data in the present invention.
[0020] Figure 4 This is the partial structural exploded schematic diagram of the photovoltaic energy-saving mechanism in a soil pollution detection device for comprehensive management of environmental pollution data in the present invention.
[0021] Figure 5 This is the flipping schematic diagram of the positioning box in a soil pollution detection device for comprehensive management of environmental pollution data in the present invention.
[0022] Figure 6 This is the schematic diagram of removing the storage drawer box in a soil pollution detection device for comprehensive management of environmental pollution data in the present invention.
[0023] Figure 7 This is the partial structural exploded schematic diagram of the sampler storage mechanism in a soil pollution detection device for comprehensive management of environmental pollution data in the present invention.
[0024] In the figure: 1. Main body of the soil pollution detection device; 2. Sampler storage mechanism; 3. Photovoltaic energy-saving mechanism; 4. Upper connection cover; 5. Detection control panel; 6. Detection slot; 201. Movable drawer slot; 202. First positioning triangular card hole; 203. Storage drawer box; 204. Drawer hole; 205. First positioning triangular card block; 206. T-shaped positioning card slot; 207. Inner anti-slip flexible pad; 208. Second positioning triangular card block; 209. Taking control hole; 210. Electric telescopic frame; 211. Second positioning triangular card hole; 212. Sampling tube; 213. Handle; 301. Photovoltaic panel positioning groove; 302. Connecting positioning tab; 303. Solar photovoltaic panel; 304. Outer positioning frame; 305. Protective sealing strip; 306. First connecting wire; 307. Positioning box; 308. Sealing connecting plate; 309. Charge controller; 310. Second connecting wire; 311. Storage battery; 312. Third connecting wire. Specific embodiments
[0025] In order to make the technical means, creative features, achieved purposes and effects of the present invention easy to understand, the present invention will be further described below in conjunction with specific embodiments.
[0026] Such as Figure 1-7As shown in the figure, a soil pollution detection device for comprehensive management of environmental pollution data includes a soil pollution detection device main body 1. Inside the soil pollution detection device main body 1, a sampler storage mechanism 2 is installed in a positioned manner. At the upper end of the soil pollution detection device main body 1, an upper connection cover 4 is movably connected. Inside the inner wall of the upper connection cover 4, a photovoltaic energy-saving mechanism 3 is installed in a positioned manner. Inside the inner wall of the soil pollution detection device main body 1, a detection control panel 5 is fixedly connected. Inside the soil pollution detection device main body 1, detection slots 6 are evenly opened. The sampler storage mechanism 2 includes a movable pull-out slot 201, a first positioning triangular card hole 202, a storage pull-out box 203, a pull-out hole 204, a first positioning triangular card block 205, a T-shaped positioning card slot 206, an inner anti-slip flexible pad 207, a second positioning triangular card block 208, a taking control hole 209, an electric telescopic frame 210, a second positioning triangular card hole 211, a sampling tube 212, and a handle 213. It reduces the number of devices that need to be carried separately, makes the whole device lighter, and is convenient for carrying and transportation. Especially during field operations, the burden on staff is reduced, and work efficiency is improved.
[0027] Further, the upper connection cover 4 is opened and closed at the upper end of the soil pollution detection device main body 1 through a hinge. The detection control panel 5 is embedded in the inner wall of the soil pollution detection device main body 1 and fixed. The detection control panel 5 can control the soil pollution detection device main body 1.
[0028] Further, the movable pull-out slot 201 is opened on the inner wall of the lower end of the soil pollution detection device main body 1. The first positioning triangular card holes 202 are opened on both sides of the inner wall of the movable pull-out slot 201. The storage pull-out box 203 is located inside the movable pull-out slot 201. The pull-out hole 204 is opened at one end of the storage pull-out box 203. Through the pull-out hole 204, it is convenient to pull out the storage pull-out box 203.
[0029] Further, the first positioning triangular card blocks 205 are both located on both sides of the storage pull-out box 203. The T-shaped positioning card slot 206 is opened at the upper end of the storage pull-out box 203. The inner anti-slip flexible pad 207 is located on the inner wall of the T-shaped positioning card slot 206. The second positioning triangular card blocks 208 are located on both sides of the inner wall of the T-shaped positioning card slot 206. The taking control hole 209 is opened at the upper end of the storage pull-out box 203 and is mutually connected with the T-shaped positioning card slot 206. The second positioning triangular card holes 211 are opened on both sides of the outer wall of the electric telescopic frame 210. The sampling tube 212 is located at one end of the electric telescopic frame 210. The handle 213 is located at the other end of the electric telescopic frame 210, which is convenient for people to grasp.
[0030] Further, the outer wall of the storage drawer 203 is movably connected to the inner wall of the movable drawer slot 201. The rear ends of the first positioning triangular blocks 205 are fixedly connected to both sides of the storage drawer 203. The storage drawer 203 is positioned on the inner wall of the movable drawer slot 201 through the engagement of the first positioning triangular blocks 205 and the first positioning triangular holes 202. One side of the inner anti-slip flexible pad 207 is positioned by bonding with the inner wall of the T-shaped positioning slot 206 through strong glue. The rear ends of the second positioning triangular blocks 208 are fixedly connected to both sides of the inner wall of the T-shaped positioning slot 206 to enhance the firmness.
[0031] Further, one end of the electric telescopic frame 210 is fixedly connected to one end of the sampling tube 212, and the other end of the electric telescopic frame 210 is fixedly connected to the outer wall of the handle 213. The electric telescopic frame 210 is positioned inside the T-shaped positioning slot 206 through the second positioning triangular blocks 208 and the second positioning triangular holes 211 to enhance the stability.
[0032] Further, the photovoltaic energy-saving mechanism 3 includes a photovoltaic panel positioning slot 301, a connecting positioning plate 302, a solar photovoltaic panel 303, an outer positioning frame 304, a protective sealing strip 305, a first connecting wire 306, a positioning box 307, a sealing connecting plate 308, a charging controller 309, a second connecting wire 310, a storage battery 311, and a third connecting wire 312. The photovoltaic panel positioning slot 301 is opened at the upper end of the upper connecting cover 4. The connecting positioning plate 302 is located on the inner wall of the upper connecting cover 4. The solar photovoltaic panel 303 is located on the inner wall of the outer positioning frame 304. The protective sealing strip 305 is located on the outer wall of the outer positioning frame 304. The first connecting wire 306 is located between the solar photovoltaic panel 303 and the charging controller 309. The sealing connecting plate 308 is located at the upper end of the positioning box 307. The charging controller 309 and the storage battery 311 are both located inside the positioning box 307. The second connecting wire 310 is located between the charging controller 309 and the storage battery 311. The third connecting wire 312 is located between the storage battery 311 and the soil pollution detection device main body 1 for transmitting electricity.
[0033] Further, the outer wall of the connecting positioning plate 302 is fixedly connected to the inner wall of the upper connecting cover 4. The inner wall of the outer positioning frame 304 is fixedly connected to the outer wall of the solar photovoltaic panel 303. One side of the protective sealing strip 305 is positioned by bonding with the outer wall of the outer positioning frame 304 through strong glue. The solar photovoltaic panel 303 is engaged and positioned on the inner wall of the photovoltaic panel positioning slot 301 to enhance the stability.
[0034] Further, both ends of the first connecting line 306 are respectively connected to the solar photovoltaic panel 303 and the charging controller 309. The upper end of the positioning box 307 is fixedly connected to the lower end of the sealing connecting plate 308. The positioning box 307 is positioned on the inner wall of the upper connecting cover 4 through the sealing connecting plate 308 and the connecting positioning lath 302. One side of both the charging controller 309 and the storage battery 311 is fixedly connected to the inner wall of the positioning box 307. Both ends of the second connecting line 310 are respectively connected to the charging controller 309 and the storage battery 311. Both ends of the third connecting line 312 are respectively connected to the storage battery 311 and the main body 1 of the soil pollution detection device, enhancing stability.
[0035] Working principle: A soil pollution detection device for comprehensive management of environmental pollution data includes the main body 1 of the soil pollution detection device, a sampler storage mechanism 2, a photovoltaic energy-saving mechanism 3, an upper connecting cover 4, a detection control panel 5, and a detection slot 6. When in use, the extracted sample can be placed inside the detection slot 6, and the detection control panel 5 can control the main body 1 of the soil pollution detection device to detect the sample. Through the provided sampler storage mechanism 2, the storage drawer 203 can be positioned inside the movable drawer slot 201 through the engagement of the first positioning triangular block 205 and the first positioning triangular hole 202. The electric telescopic frame 210 can be positioned inside the T-shaped positioning slot 206 through the engagement of the second positioning triangular hole 211 and the second positioning triangular block 208, reducing the number of devices that need to be carried separately, making the entire device lighter and more convenient to carry and transport. Especially during field operations, the burden on staff is reduced, improving work efficiency. The inner anti-slip flexible pad 207 can enhance the friction on the inner wall of the T-shaped positioning slot 206, making the engagement more secure. When in need of use, the storage drawer 203 can be pulled through the pull hole 204, and the electric telescopic frame 210 can be taken from the access control hole 209. Through the provided photovoltaic energy-saving mechanism 3, the solar photovoltaic panel 303 is positioned on the inner wall of the photovoltaic panel positioning slot 301 through the outer positioning frame 304. The outer wall of the outer positioning frame 304 has a protective sealing strip 305 to enhance the sealing performance. The positioning box 307 is positioned at the lower end of the inner wall of the upper connecting cover 4 through the sealing connecting plate 308 and the connecting positioning lath 302. The solar photovoltaic panel 303 can absorb solar energy and transmit it to the charging controller 309 through the first connecting line 306. The charging controller 309 can transmit the electric energy to the storage battery 311 for storage through the second connecting line 310. The electric energy inside the storage battery 311 can be transmitted to the main body 1 of the soil pollution detection device for use through the third connecting line 312, reducing the dependence on traditional electricity, thereby reducing energy consumption and carbon emissions, meeting the concept of sustainable development. At the same time, the electricity cost can be significantly reduced, especially in the case of long-term operation, and this energy-saving effect will be more obvious.
[0036] It should be noted that in this text, relational terms such as first and second (No. 1, No. 2), etc. are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "comprising", "including" or any other variant thereof are intended to cover non-exclusive inclusion, so that a process, method, article or device comprising a series of elements not only includes those elements, but also includes other elements not expressly listed, or elements inherent to such process, method, article or device. Without further limitation, an element defined by the statement "comprising an..." does not exclude the presence of additional identical elements in the process, method, article or device comprising the said element.
[0037] The above shows and describes the basic principles, main features and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited by the above embodiments. The above embodiments and the descriptions in the specification only illustrate the principles of the present invention. Without departing from the spirit and scope of the present invention, the present invention will have various changes and improvements, and these changes and improvements fall within the scope of the present invention claimed. The scope of the present invention claimed is defined by the appended claims and their equivalents.
Claims
1. A soil pollution detection device for comprehensive management of environmental pollution data, comprising a soil pollution detection device body (1), characterized in that: A sampler storage mechanism (2) is positioned and installed inside the main body (1) of the soil pollution detection device. An upper connection cover (4) is movably connected to the upper end of the main body (1) of the soil pollution detection device. A photovoltaic energy-saving mechanism (3) is positioned and installed on the inner wall of the upper connection cover (4). A detection control panel (5) is fixedly connected to the inner wall of the main body (1) of the soil pollution detection device. Detection slots (6) are evenly arranged inside the main body (1) of the soil pollution detection device. The sampler storage mechanism (2) comprises a movable pull-out slot (201), a No. 1 positioning triangle clamp hole (202), a storage pull-out box (203), a pull-out hole (204), a No. 1 positioning triangle clamp block (205), a T-shaped positioning clamp slot (206), an inner non-slip flexible pad (207), a No. 2 positioning triangle clamp block (208), a taking control hole (209), an electric telescopic frame (210), a No. 2 positioning triangle clamp hole (211), a sampling tube (212) and a handle (213).
2. A soil pollution detection device for comprehensive management of environmental pollution data according to claim 1, characterized in that: The upper connection cover (4) is opened and closed by hinges at the upper end of the soil pollution detection device body (1), and the detection control panel (5) is embedded in the inner wall of the soil pollution detection device body (1) and is fixed.
3. A soil pollution detection device for comprehensive management of environmental pollution data according to claim 2, characterized in that: The movable pull-out groove (201) is provided on the inner wall of the lower end of the soil pollution detection device body (1); the number one positioning triangular clamping holes (202) are provided on both sides of the inner wall of the movable pull-out groove (201); the storage pull-out box (203) is located inside the movable pull-out groove (201); and the pull-out hole (204) is provided at one end of the storage pull-out box (203).
4. A soil pollution detection device for comprehensive management of environmental pollution data according to claim 3, characterized in that: The first positioning triangular card blocks (205) are both located on both sides of the storage pull-out box (203); the T-shaped positioning card slot (206) is provided at the upper end of the storage pull-out box (203); the inner non-slip flexible pad (207) is located on the inner wall of the T-shaped positioning card slot (206); the second positioning triangular card blocks (208) are located on both sides of the inner wall of the T-shaped positioning card slot (206); the taking control hole (209) is provided at the upper end of the storage pull-out box (203) and is mutually connected with the T-shaped positioning card slot (206); the second positioning triangular card hole (211) is provided on both sides of the outer wall of the electric telescopic frame (210); the sampling tube (212) is located at one end of the electric telescopic frame (210); and the handle (213) is located at the other end of the electric telescopic frame (210).
5. A soil pollution detection device for comprehensive management of environmental pollution data according to claim 4, characterized in that: The outer wall of the storage drawer box (203) is movably connected to the inner wall of the movable drawer slot (201); the rear ends of the No. 1 positioning triangular clamp block (205) are fixedly connected to both sides of the storage drawer box (203); the storage drawer box (203) is positioned on the inner wall of the movable drawer slot (201) by the engagement of the No. 1 positioning triangular clamp block (205) and the No. 1 positioning triangular clamp hole (202); one side of the inner non-slip flexible pad (207) is positioned with the inner wall of the T-shaped positioning slot (206) by means of strong glue; and the rear ends of the No. 2 positioning triangular clamp block (208) are fixedly connected to both sides of the inner wall of the T-shaped positioning slot (206).
6. A soil pollution detection device for comprehensive management of environmental pollution data according to claim 5, characterized in that: One end of the electric telescopic frame (210) is fixedly connected to one end of the sampling tube (212), and the other end of the electric telescopic frame (210) is fixedly connected to the outer wall of the handle (213). The electric telescopic frame (210) is positioned on the inner side of the T-shaped positioning slot (206) via a No. 2 positioning triangle clamp block (208) and a No. 2 positioning triangle clamp hole (211).
7. A soil pollution detection device for comprehensive management of environmental pollution data according to claim 6, characterized in that: The photovoltaic energy-saving mechanism (3) comprises a photovoltaic panel positioning groove (301), a connection positioning plate (302), a solar photovoltaic panel (303), an external positioning frame (304), a protective sealing strip (305), a No. 1 connecting wire (306), a positioning box (307), a sealing connecting plate (308), a charging controller (309), a No. 2 connecting wire (310), a battery (311) and a No. 3 connecting wire (312). The photovoltaic panel positioning groove (301) is provided at the upper end of the upper connecting cover (4), the connection positioning plate (302) is located on the inner wall of the upper connecting cover (4), and the solar photovoltaic panel (303) is located on the outer positioning frame (304). The protective sealing strip (305) is located on the inner wall of the outer positioning frame (304), the No. 1 connecting wire (306) is located between the solar photovoltaic panel (303) and the charging controller (309), the sealing connecting plate (308) is located at the upper end of the positioning box (307), the charging controller (309) and the storage battery (311) are both located inside the positioning box (307), the No. 2 connecting wire (310) is located between the charging controller (309) and the storage battery (311), and the No. 3 connecting wire (312) is located between the storage battery (311) and the main body (1) of the soil pollution detection device.
8. A soil pollution detection device for comprehensive management of environmental pollution data according to claim 7, characterized in that: The outer wall of the connecting and positioning strap (302) is fixedly connected to the inner wall of the upper connecting cover (4), the inner wall of the external positioning frame (304) is fixedly connected to the outer wall of the solar photovoltaic panel (303), one side of the protective sealing strip (305) is fixedly attached to the outer wall of the external positioning frame (304) by strong glue, and the solar photovoltaic panel (303) is snap-fitted and positioned on the inner wall of the photovoltaic panel positioning groove (301).
9. A soil pollution detection device for comprehensive management of environmental pollution data according to claim 8, characterized in that: The two ends of the No. 1 connecting wire (306) are respectively connected to the solar photovoltaic panel (303) and the charging controller (309); the upper end of the positioning box (307) is fixedly connected to the lower end of the sealing connecting plate (308); the positioning box (307) is positioned on the inner wall of the upper connecting cover (4) through the sealing connecting plate (308) and the connecting positioning strap (302); one side of the charging controller (309) and the storage battery (311) are both fixedly connected to the inner wall of the positioning box (307); the two ends of the No. 2 connecting wire (310) are respectively connected to the charging controller (309) and the storage battery (311); and the two ends of the No. 3 connecting wire (312) are respectively connected to the storage battery (311) and the main body (1) of the soil pollution detection device.