Underground water pollution degree detection equipment after soil remediation
By introducing a mixing mechanism and storage components into the groundwater pollution degree detection equipment after soil repair, the detection inaccuracy problem caused by pollutant settlement is solved, and the effect of uniform distribution of pollutants and convenient use of the equipment is achieved.
Patent Information
- Application Number
- CN202422026455.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-21
- Publication Date
- 2025-07-08
- Estimated Expiration
- 2034-08-21
AI Technical Summary
In the prior art, groundwater after soil repair, pollutants tend to settle during the detection period, resulting in uneven distribution, affecting the accuracy of the detection results.
A detection device including a mixing mechanism and a storage assembly is designed. The mixing mechanism drives the stirring slurry leaves to stir groundwater by driving the motor to ensure uniform distribution of pollutants. The storage assembly is used for the storage of wires and grips to prevent winding and falling off.
It improves the accuracy and efficiency of detection, avoids the impact of pollutant settlement on the detection results, and simplifies the convenience of use of the equipment.
Smart Images

Figure CN223078014U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of groundwater detection, in particular to a device for detecting the pollution degree of groundwater after soil remediation. Background Technique
[0002] Soil remediation refers to using physical, chemical, and biological methods to transfer, absorb, degrade, and transform pollutants in the soil, reducing their concentration to an acceptable level. The pollutants in the soil mainly include organic substances, bacteria, heavy metals, etc. Detecting the groundwater pollutants after soil remediation is an important step in evaluating the results of soil remediation. Currently, when detecting soil groundwater, the extracted groundwater needs to be placed in a detection container, and then a pollutant detection instrument is used to detect the pollutants in the groundwater. The pollutant detection instrument mainly consists of a wire, a detection probe, and a detection instrument body.
[0003] Since there is a certain time interval between the extraction of groundwater and its detection, the pollutants in the groundwater are likely to settle in the detection container, resulting in uneven distribution of the pollutants in the groundwater, which will affect the accuracy of the detection results. And there is no effective solution to the above problems in the existing technology. Therefore, it is necessary to develop a new device for detecting the pollution degree of groundwater after soil remediation to meet the above usage requirements. Content of the Utility Model
[0004] The purpose of the utility model is to provide a device for detecting the pollution degree of groundwater after soil remediation to solve the problems raised in the above background technique.
[0005] To achieve the above purpose, the utility model provides the following technical solution: A device for detecting the pollution degree of groundwater after soil remediation, including a detection instrument body;
[0006] A control button, arranged on the detection instrument body, for controlling the detection instrument body;
[0007] A wire, arranged on the detection instrument body, for conducting electrical signals;
[0008] A detection probe, arranged on the wire, for detecting groundwater pollutants;
[0009] A grip, arranged on the wire, for holding when the detection probe is detecting;
[0010] A stirring mechanism, arranged on the grip, for stirring groundwater during detection;
[0011] A storage component, arranged on the detection instrument body, for storing the detection probe and the wire.
[0012] Further, the stirring mechanism includes a circular plate installed on the grip. A rotating ring is rotatably installed at the bottom of the circular plate. A plurality of connecting blocks are installed on the rotating ring, and a plurality of stirring blades are installed on each of the plurality of connecting blocks.
[0013] Further, the stirring mechanism further includes an external gear ring installed on the rotating ring. A support block is installed on the circular plate. A rotating shaft is rotatably installed inside the support block. A gear is installed at the bottom end of the rotating shaft, and the gear meshes with the external gear ring.
[0014] Further, the stirring mechanism further includes a driving motor installed on the circular plate. A worm is installed at the output end of the driving motor. A worm gear is installed at the top end of the rotating shaft, and the worm gear meshes with the worm.
[0015] Further, the stirring mechanism further includes a battery box installed on the circular plate. A built-in battery is installed inside the battery box. A protective shell is installed on the grip.
[0016] Further, the storage assembly includes a support plate installed on the detection instrument body. A winding wheel is installed on the support plate.
[0017] Further, the storage assembly further includes an elastic retaining seat installed on the detection instrument body. A pressing groove and a storage hole are formed on the winding wheel, and the pressing groove communicates with the storage hole.
[0018] The beneficial effects of the present utility model are:
[0019] In the present utility model, through the setting of the stirring mechanism, when the driving motor rotates, it will drive the gear to rotate. The rotation of the gear will drive the external gear ring to rotate. The rotation of the external gear ring will drive the rotating ring to rotate. The rotation of the rotating ring will drive the connecting block to rotate. The rotation of the connecting block will drive the stirring blade to rotate. The rotation of a plurality of stirring blades can stir the groundwater in the container, so that pollutants such as organic matter, heavy metals, and bacteria in the groundwater are evenly distributed in the container, avoiding the settlement of pollutants and affecting the detection accuracy, thereby improving the detection accuracy and efficiency.
[0020] In the present utility model, through the setting of the storage assembly, the wire is wound in the winding wheel on the support plate, so that the wire can be wound and stored, avoiding entanglement with other objects when not in use. The grip is pressed into the storage hole formed on the elastic retaining seat through the pressing groove. A limiting block is provided at the top end of the grip. At this time, the grip will be clamped in the storage hole and limit the up and down movement of the grip, so that the detection probe and the grip can be clamped and stored, avoiding the wire falling off the winding wheel, making the use more convenient. Description of the Drawings
[0021] Figure 1Schematic three-dimensional structure diagram of the groundwater pollution degree detection device after soil remediation proposed by the present utility model;
[0022] Figure 2 Another perspective three-dimensional structure diagram of the groundwater pollution degree detection device after soil remediation proposed by the present utility model;
[0023] Figure 3 Schematic structure diagram of the protective shell, external gear ring, etc. of the groundwater pollution degree detection device after soil remediation proposed by the present utility model;
[0024] Figure 4 Schematic structure diagram of the stirring blade, etc. of the groundwater pollution degree detection device after soil remediation proposed by the present utility model;
[0025] Figure 5 Schematic structure diagram of part A of the groundwater pollution degree detection device after soil remediation proposed by the present utility model;
[0026] Figure 6 Schematic structure diagram of the battery box, built-in battery, etc. of the groundwater pollution degree detection device after soil remediation proposed by the present utility model.
[0027] In the figure: 1, detection instrument body; 2, control button; 3, wire; 4, detection probe; 5, grip; 6, stirring mechanism; 61, circular plate; 62, rotating ring; 63, connecting block; 64, stirring blade; 65, external gear ring; 66, support block; 67, rotating shaft; 68, gear; 69, driving motor; 610, worm; 611, worm gear; 612, battery box; 613, built-in battery; 614, protective shell; 7, storage component; 71, support plate; 72, winding wheel; 73, elastic retaining seat; 74, pressing groove; 75, storage hole. Specific implementation mode
[0028] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments.
[0029] Embodiment:
[0030] As Figure 1-6As shown in the figure, this embodiment provides a detection device for the degree of groundwater pollution after soil remediation, including a detection instrument body 1; a control button 2, which is arranged on the detection instrument body 1 and used for controlling the detection instrument body 1; a wire 3, which is arranged on the detection instrument body 1 and used for the conduction of electrical signals; a detection probe 4, which is arranged on the wire 3 and used for detecting groundwater pollutants; a grip 5, which is arranged on the wire 3 and used for holding when the detection probe 4 is detecting; a stirring mechanism 6, which is arranged on the grip 5 and used for stirring groundwater during detection; a storage component 7, which is arranged on the detection instrument body 1 and used for storing the detection probe 4 and the wire 3.
[0031] Hold the grip 5 by hand and place the detection probe 4 in a detection container filled with groundwater. The detection probe 4 can detect pollutants such as organic matter, heavy metals, and bacteria in the groundwater. During detection, the stirring mechanism 6 can stir the groundwater in the container, so that pollutants such as organic matter, heavy metals, and bacteria in the groundwater are evenly distributed in the container, avoiding the settlement of pollutants and affecting the detection accuracy. After the detection is completed, the wire 3 can be wound and stored through the storage component 7, and the detection probe 4 and the grip 5 can be clamped and stored to prevent the wire 3 from falling off and getting entangled with other objects.
[0032] In one embodiment, specifically, the stirring mechanism 6 includes a circular plate 61 installed on the grip 5. A rotating ring 62 is rotatably installed at the bottom of the circular plate 61. A plurality of connecting blocks 63 are installed on the rotating ring 62, and a plurality of stirring blades 64 are installed on the plurality of connecting blocks 63.
[0033] When it is necessary to stir the groundwater in the container, the detection probe 4 extends into the container to be detected. The rotation of the rotating ring 62 will drive the rotation of the connecting block 63, and the rotation of the connecting block 63 will drive the rotation of the stirring blade 64. The rotation of the plurality of stirring blades 64 can stir the groundwater in the container.
[0034] In one embodiment, specifically, the stirring mechanism 6 further includes an external gear ring 65 installed on the rotating ring 62. A support block 66 is installed on the circular plate 61. A rotating shaft 67 is rotatably installed in the support block 66. A gear 68 is installed at the bottom end of the rotating shaft 67, and the gear 68 meshes with the external gear ring 65.
[0035] When it is necessary to drive the rotation of the rotating ring 62, the rotation of the rotating shaft 67 will drive the rotation of the gear 68, the rotation of the gear 68 will drive the rotation of the external gear ring 65, and the rotation of the external gear ring 65 will drive the rotation of the rotating ring 62, so that the stirring blade 64 can be driven by the rotation of the rotating ring 62 to stir the groundwater in the container.
[0036] In one embodiment, specifically, the stirring mechanism 6 further includes a driving motor 69 installed on the circular plate 61. A worm 610 is installed at the output end of the driving motor 69. A worm gear 611 is installed at the top end of the rotating shaft 67, and the worm gear 611 meshes with the worm 610.
[0037] When it is necessary to drive the rotation of the rotating shaft 67, the driving motor 69 can be started. The rotation of the driving motor 69 will drive the rotation of the worm 610, the rotation of the worm 610 will drive the rotation of the worm gear 611, and the rotation of the worm gear 611 will drive the rotation of the rotating shaft 67.
[0038] In one embodiment, specifically, the stirring mechanism 6 further includes a battery box 612 installed on the circular plate 61. An internal battery 613 is installed in the battery box 612, and a protective shell 614 is installed on the grip 5;
[0039] Through the setting of the internal battery 613, the operation of the driving motor 69 can be powered, and there is no need for an external power supply, which is relatively convenient to operate. Through the setting of the protective shell 614, it can play a role in protecting the mechanism inside the protective shell 614.
[0040] In one embodiment, specifically, the storage assembly 7 includes a support plate 71 installed on the detection instrument body 1, and a winding wheel 72 is installed on the support plate 71;
[0041] When it is necessary to organize the wire 3 after the detection is completed, the wire 3 can be wound into the winding wheel 72 on the support plate 71, and the wire 3 can be wound and stored to avoid entanglement of the wire 3 with other objects when not in use.
[0042] In one embodiment, specifically, the storage assembly 7 further includes an elastic retention seat 73 installed on the detection instrument body 1. Pressing grooves 74 and storage holes 75 are formed on the winding wheel 72, and the pressing grooves 74 and the storage holes 75 are communicated with each other;
[0043] When it is necessary to clamp and store the detection probe 4 and the grip 5, the grip 5 can be pressed into the storage hole 75 formed on the elastic retention seat 73 through the pressing groove 74. A limit block is provided at the top of the grip 5. At this time, the grip 5 will be clamped in the storage hole 75 and the up and down movement of the grip 5 will be restricted, so that the detection probe 4 and the grip 5 can be clamped and stored, and the wire 3 can be prevented from falling off the winding wheel 72.
[0044] Working principle: When in use, hold the handle 5 and place the detection probe 4 in the detection container filled with groundwater. The detection probe 4 can detect pollutants such as organic matters, heavy metals, and bacteria in the groundwater. During the detection, start the drive motor 69. The rotation of the drive motor 69 will drive the worm 610 to rotate. The rotation of the worm 610 will drive the worm gear 611 to rotate. The rotation of the worm gear 611 will drive the rotating shaft 67 to rotate. The rotation of the storage assembly 7 will drive the gear 68 to rotate. The rotation of the gear 68 will drive the outer tooth ring 65 to rotate. The rotation of the outer tooth ring 65 will drive the rotating ring 62 to rotate. The rotation of the rotating ring 62 will drive the connecting block 63 to rotate. The rotation of the connecting block 63 will drive the stirring blades 64 to rotate. The rotation of multiple groups of stirring blades 64 can stir the groundwater in the container, making the pollutants such as organic matters, heavy metals, and bacteria in the groundwater evenly distributed in the container, avoiding the settlement of pollutants from affecting the detection accuracy. After the detection is completed, wind the wire 3 into the winding wheel 72 on the support plate 71, which can wind and store the wire 3, avoiding the entanglement of the wire 3 with other objects when not in use. Press the handle 5 into the storage hole 75 opened on the elastic retaining seat 73 through the pressing groove 74. The top of the handle 5 is provided with a limiting block. At this time, the handle 5 will be clamped in the storage hole 75 and the up-and-down movement of the handle 5 will be restricted, so as to receive and store the detection probe 4 and the handle 5, avoiding the wire 3 falling off the winding wheel 72.
[0045] The above is only a preferred specific embodiment of the present invention, but the protection scope of the present invention is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present invention, according to the technical solution of the present invention and its inventive concept, making equivalent substitutions or changes, should be covered by the protection scope of the present invention.
Claims
1. Groundwater pollution degree detection equipment after soil remediation, comprising, characterized in that: The detection instrument body (1); The control button (2), arranged on the detection instrument body (1) for controlling the detection instrument body (1); The wire (3), arranged on the detection instrument body (1) for conducting electrical signals; The detection probe (4), arranged on the wire (3) for detecting groundwater pollutants; The grip (5), arranged on the wire (3) for holding when the detection probe (4) is detecting; The stirring mechanism (6), arranged on the grip (5) for stirring groundwater during detection; The storage component (7), arranged on the detection instrument body (1) for storing the detection probe (4) and the wire (3).
2. The groundwater pollution degree detection device after soil remediation according to claim 1, characterized in that: The stirring mechanism (6) includes a circular plate (61) installed on the grip (5). A rotating ring (62) is rotatably installed at the bottom of the circular plate (61). Multiple connecting blocks (63) are installed on the rotating ring (62). Multiple stirring blades (64) are installed on the multiple connecting blocks (63).
3. The groundwater pollution degree detection device after soil remediation according to claim 2, characterized in that: The stirring mechanism (6) further includes an external toothed ring (65) installed on the rotating ring (62). A support block (66) is installed on the circular plate (61). A rotating shaft (67) is rotatably installed inside the support block (66). A gear (68) is installed at the bottom end of the rotating shaft (67). The gear (68) meshes with the external toothed ring (65).
4. The groundwater pollution degree detection device after soil remediation according to claim 3, characterized in that: The stirring mechanism (6) further includes a driving motor (69) installed on the circular plate (61). A worm (610) is installed at the output end of the driving motor (69). A worm gear (611) is installed at the top end of the rotating shaft (67). The worm gear (611) meshes with the worm (610).
5. The groundwater pollution degree detection device after soil remediation according to claim 4, characterized in that: The stirring mechanism (6) further includes a battery box (612) installed on the circular plate (61). An internal battery (613) is installed inside the battery box (612). A protective shell (614) is installed on the grip (5).
6. The groundwater pollution degree detection device after soil remediation according to claim 1, characterized in that: The storage component (7) includes a support plate (71) installed on the detection instrument body (1). A winding wheel (72) is installed on the support plate (71).
7. The groundwater pollution degree detection device after soil remediation according to claim 6, characterized in that: The storage component (7) further includes an elastic retaining seat (73) installed on the detection instrument body (1). A pressing groove (74) and a storage hole (75) are formed on the winding wheel (72). The pressing groove (74) communicates with the storage hole (75).