Groundwater remediation filler device
By using the gear shafts of the drive mechanism and linkage mechanism to drive the rollers and transmission shaft, combined with the filler box and injection pipe, rapid filler delivery and mixing are achieved in the groundwater remediation process, solving the filling problem in blank areas and improving the safety and efficiency of remediation.
Patent Information
- Application Number
- CN202423045506.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-10
- Publication Date
- 2025-11-14
- Estimated Expiration
- 2034-12-10
AI Technical Summary
During groundwater remediation, the resulting voids are difficult to fill effectively, leading to safety hazards. Existing technologies struggle to achieve efficient filling and remediation.
The system employs a combination of a drive mechanism, a linkage mechanism, a repair mechanism, and a stirring mechanism. It utilizes a motor-driven gear shaft to drive rollers and a transmission shaft, thereby achieving rapid conveying and stirring of the packing material. The packing material is then repaired through a packing box and an injection pipe.
It enables efficient filling of gaps in the groundwater remediation process, improving remediation safety and efficiency, and shortening remediation time.
Smart Images

Figure CN223547746U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of groundwater remediation technology, and in particular to a groundwater remediation filler device. Background Technology
[0002] Groundwater remediation involves identifying, locating, and treating contaminants in groundwater to restore it to its natural state and protect the environment and human health. However, the remediation process inevitably results in some loss of groundwater, as the original volume of groundwater cannot be injected back into the original underground environment. Over time, this can create cavities underground, posing a serious safety threat.
[0003] To address this, we propose a groundwater remediation filler device that can fill and repair gaps created during the groundwater remediation process, thereby improving the safety of groundwater remediation. Furthermore, a single motor is used to perform both material feeding and mixing during the remediation process, achieving efficient filler remediation. Utility Model Content
[0004] In order to overcome the shortcomings of the existing technology, the purpose of this utility model is to provide a groundwater remediation filling device, which can fill and repair the blanks formed during the groundwater remediation process, improve the safety of groundwater remediation, and use a single motor to achieve the dual function of feeding and stirring during the remediation process, so as to achieve efficient filling and repair.
[0005] This utility model is achieved using the following technical solution: a groundwater remediation filler device, comprising: a driving mechanism, a linkage mechanism, a repair mechanism, and a stirring mechanism. The driving mechanism includes a motor mounting base, a drive motor, and a first coupling. The drive motor is mounted at the front of the motor mounting base. The first coupling is mounted at the front of the motor shaft of the drive motor. The linkage mechanism is mounted at the front of the first coupling. The linkage mechanism includes a third gear shaft, a second coupling, and a second external coupling. The second coupling is mounted at the front of the third gear shaft. The second external coupling is mounted at the front of the second coupling. The repair mechanism is mounted at the front of the second external coupling. The repair mechanism includes a filler box, a discharge pipe, and an injection pipe. The discharge pipe is mounted at the bottom of the filler box. The injection pipe is mounted at the lower part of the discharge pipe. The stirring mechanism is mounted at the lower part of the injection pipe.
[0006] Preferably, the drive mechanism further includes a housing, a fixing plate, and a base plate. The housing is installed at the rear of the motor mounting base, the fixing plates are installed on the outer sides of the bottom of the housing, and the base plate is installed at the bottom of the housing.
[0007] Preferably, the linkage mechanism further includes a linkage box, an inner cavity, a first gear shaft, a second gear shaft, a first outer coupling, a first roller, a linkage belt, a second roller, and a transmission shaft. The first gear shaft is installed at the front of the first coupling, and an inner cavity is provided outside the first gear shaft. The linkage box is installed outside the inner cavity. The second gear shaft is installed at the top of the first gear shaft through gear meshing. The first outer coupling is installed at the front of the second gear shaft through a coupling. The third gear shaft is installed at the upper part of the second gear shaft through gear meshing. The first roller is installed at the front of the first outer coupling. The second roller is installed at the first roller through a linkage belt. The transmission shaft is installed through the interior of the second roller.
[0008] Preferably, the repair mechanism further includes a fastening ring, a column, an output pipe, a packing cavity, and a conveying shaft. A fastening ring is installed on the outside of the front part of the injection pipe, a column is installed on the lower part of the fastening ring, an output pipe is installed on the front part of the injection pipe by bolts, a packing cavity is provided inside the packing box, and a conveying shaft is installed inside the injection pipe.
[0009] Preferably, the mixing mechanism further includes a fixing component, a mixing box, an upper feed inlet, a lower discharge outlet, a mixing box shell, a mixing gear, and a mixing shaft. The mixing box is installed and connected to the column via the fixing component. The top of the mixing box is provided with an upper feed inlet. The bottom of the mixing box is provided with a mixing box shell. The mixing gear is installed inside the mixing box shell. The mixing shaft is installed outside the mixing gear. The mixing shaft is provided with a lower discharge outlet.
[0010] Preferably, the bottom of the column is fixedly connected to the base plate, the filling cavity is connected to the inside of the injection pipe, and the conveying shaft is installed and connected to the second external coupling shaft.
[0011] Preferably, the stirring gear is connected to a drive shaft via gear meshing.
[0012] Compared with the prior art, the beneficial effects of this utility model are as follows:
[0013] 1. The present invention relates to a groundwater remediation filler device, wherein the first gear shaft can transmit the drive from the drive motor to the second gear shaft, thereby driving the first external coupling shaft to rotate, driving the first roller to rotate, and driving the second roller to rotate via the linkage belt, thereby realizing the rotation of the drive transmission shaft, providing power to the mixing mechanism, facilitating the rapid delivery of the remediation filler to the ground, and achieving the effect of repairing and filling groundwater that has been damaged due to remediation.
[0014] 2. The groundwater remediation filler device of this utility model has a second gear shaft that can drive the third gear shaft to rotate, thereby driving the third gear shaft to rotate and providing power to the remediation mechanism, which facilitates faster delivery of filler and improves remediation efficiency.
[0015] 3. The groundwater remediation filler device of this utility model, through the filler cavity provided inside the installed filler box, can drive the repair filler contained in the filler cavity to be quickly transported to the mixing mechanism by the continuous rotation of the conveying shaft, thereby shortening the groundwater remediation time. Attached Figure Description
[0016] Figure 1 This is a front view structural diagram of the present invention;
[0017] Figure 2 This is a partial cross-sectional view of the structure of this utility model;
[0018] Figure 3 This is a schematic diagram of the oblique structure of this utility model.
[0019] In the diagram: 1. Drive mechanism; 2. Linkage mechanism; 3. Repair mechanism; 4. Stirring mechanism; 102. Fixing plate; 103. Base plate; 104. Motor mounting base; 105. Drive motor; 106. First coupling; 201. Linkage box; 202. Inner cavity; 203. First gear shaft; 204. Second gear shaft; 205. Third gear shaft; 206. Second coupling; 207. First external coupling; 208. Second external coupling ; 209, First roller; 210, Linkage belt; 211, Second roller; 212, Drive shaft; 301, Stuffing box; 302, Feed pipe; 303, Injection pipe; 304, Fastening ring; 305, Column; 306, Output pipe; 307, Stuffing cavity; 308, Conveyor shaft; 401, Fixing component; 402, Mixing box; 403, Upper feed port; 404, Lower discharge port; 405, Mixing box shell; 406, Mixing gear. Detailed Implementation
[0020] The following specific examples illustrate the implementation of this utility model. Those skilled in the art can easily understand other advantages and effects of this utility model from the content disclosed in this specification. This utility model can also be implemented or applied through other different specific embodiments, and various details in this specification can also be modified or changed based on different viewpoints and applications without departing from the spirit of this utility model. It should be noted that, unless otherwise specified, the following embodiments and features described therein can be combined with each other.
[0021] The purpose of this invention is to address the shortcomings of existing technologies by providing a groundwater remediation filler device.
[0022] Example 1
[0023] This embodiment provides a groundwater remediation filler device, referring to... Figure 1 , Figure 2 and Figure 3As shown, the device includes: a drive mechanism 1, a linkage mechanism 2, a repair mechanism 3, and a stirring mechanism 4. The drive mechanism 1 includes a motor mounting base 104, a drive motor 105, and a first coupling 106. The drive motor 105 is mounted on the front of the motor mounting base 104. The drive motor 105 used in this invention is a commonly used servo motor. The first coupling 106 is mounted on the front of the motor spindle of the drive motor 105. The linkage mechanism 2 is mounted on the front of the first coupling 106. The linkage mechanism 2 includes a third... The gear shaft 205, the second coupling 206, and the second external coupling 208 are provided. The second coupling 206 is installed at the front of the third gear shaft 205. The second external coupling 208 is installed at the front of the second coupling 206. The repair mechanism 3 is installed at the front of the second external coupling 208. The repair mechanism 3 includes a stuffing box 301, a discharge pipe 302, and an injection pipe 303. The discharge pipe 302 is installed at the bottom of the stuffing box 301. The injection pipe 303 is installed at the bottom of the discharge pipe 302. The stirring mechanism 4 is installed at the bottom of the injection pipe 303.
[0024] The drive mechanism 1 also includes a housing 101, a fixing plate 102 and a base plate 103. The housing 101 is installed at the rear of the motor mounting base 104, the fixing plate 102 is installed on the outer sides of the bottom of the housing 101, and the base plate 103 is installed at the bottom of the housing 101.
[0025] The linkage mechanism 2 also includes a linkage box 201, an inner cavity 202, a first gear shaft 203, a second gear shaft 204, a first outer coupling 207, a first roller 209, a linkage belt 210, a second roller 211, and a transmission shaft 212. The first gear shaft 203 is mounted at the front of the first coupling 106. An inner cavity 202 is provided outside the first gear shaft 203, and the linkage box 201 is mounted on the outer side of the inner cavity 202. The second gear shaft 204 is mounted on the top of the first gear shaft 203 via gear meshing. The first outer coupling 207 is mounted on the front of the second gear shaft 204 via a coupling. A third gear shaft 205 is mounted on the upper part of the second gear shaft 204 via gear meshing. The first roller 209 is mounted on the front of the first outer coupling 207, and the first roller 209 is connected to the drive shaft 212 via the linkage belt 210. The 10 is equipped with a second roller 211, through which a drive shaft 212 is installed. The drive from the drive motor 105 is transmitted to the second gear shaft 204 via the first gear shaft 203, which in turn drives the first external coupling shaft 207 to rotate, causing the first roller 209 to rotate. This, in turn, drives the second roller 211 to rotate via the linkage belt 210, thus driving the drive shaft 212 to rotate. This provides power to the mixing mechanism 4, facilitating the rapid delivery of the repair filler to the ground, achieving the effect of repairing and filling groundwater gaps. The second gear shaft 204 can drive the third gear shaft 205 to rotate, providing power to the repair mechanism 3, facilitating faster delivery of the filler and improving repair efficiency.
[0026] The repair mechanism 3 also includes a fastening ring 304, a column 305, an output pipe 306, a packing cavity 307, and a conveying shaft 308. The fastening ring 304 is installed on the front exterior of the injection pipe 303, and the column 305 is installed on the lower part of the fastening ring 304. The output pipe 306 is bolted to the front of the injection pipe 303. The packing box 301 has a packing cavity 307 inside, and the injection pipe 303 has a conveying shaft 308 inside. Through the packing cavity 307 inside the installed packing box 301, the repair packing material inside the packing cavity 307 can be quickly transported to the mixing mechanism by the continuous rotation of the conveying shaft 308, thus shortening the groundwater repair time.
[0027] Example 2
[0028] This embodiment provides a groundwater remediation filler device, referring to... Figure 1 , Figure 2 and Figure 3 As shown, the stirring mechanism 4 also includes a fixing member 401, a stirring box 402, an upper feed port 403, a lower discharge port 404, a stirring box shell 405, a stirring gear 406, and a stirring shaft 407. The stirring box 402 is installed and connected to the column 305 through the fixing member 401. The top of the stirring box 402 is provided with an upper feed port 403. The bottom of the stirring box 402 is provided with a stirring box shell 405. The stirring gear 406 is installed inside the stirring box shell 405. The stirring shaft 407 is installed outside the stirring gear 406. The stirring shaft 407 is provided with a lower discharge port 404 inside. The bottom of the column 305 is fixedly connected to the base plate 103. The filling cavity 307 is connected to the inside of the injection pipe 303. The conveying shaft 308 is installed and connected to the second external coupling shaft 208. The stirring gear 406 is connected to the drive shaft 212 through gear meshing.
[0029] Furthermore, it should be understood that although this specification describes embodiments, not every embodiment contains only one independent technical solution. This narrative style is merely for clarity. Those skilled in the art should consider the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.
Claims
1. A groundwater remediation filler device, characterized in that, include: The system comprises a drive mechanism (1), a linkage mechanism (2), a repair mechanism (3), and a stirring mechanism (4). The drive mechanism (1) includes a motor mounting base (104), a drive motor (105), and a first coupling (106). The drive motor (105) is mounted on the front of the motor mounting base (104). The first coupling (106) is mounted on the front of the motor spindle of the drive motor (105). The linkage mechanism (2) is mounted on the front of the first coupling (106). The linkage mechanism (2) includes a third gear shaft (205), a second coupling (206), and a second external coupling. Shaft (208), a second coupling (206) is installed at the front of the third gear shaft (205), a second external coupling (208) is installed at the front of the second coupling (206), a repair mechanism (3) is installed at the front of the second external coupling (208), the repair mechanism (3) includes a stuffing box (301), a discharge pipe (302) and an injection pipe (303), the discharge pipe (302) is installed at the bottom of the stuffing box (301), the injection pipe (303) is installed at the lower part of the discharge pipe (302), and a stirring mechanism (4) is installed at the lower part of the injection pipe (303).
2. The groundwater remediation filler device according to claim 1, characterized in that: The drive mechanism (1) also includes a housing (101), a fixing plate (102) and a base plate (103). The housing (101) is installed at the rear of the motor mounting base (104). The fixing plates (102) are installed on the outer sides of the bottom of the housing (101), and the base plate (103) is installed at the bottom of the housing (101).
3. The groundwater remediation filler device according to claim 1, characterized in that: The linkage mechanism (2) further includes a linkage box (201), an inner cavity (202), a first gear shaft (203), a second gear shaft (204), a first external coupling (207), a first roller (209), a linkage belt (210), a second roller (211), and a transmission shaft (212). The first gear shaft (203) is installed at the front of the first coupling (106). The first gear shaft (203) has an inner cavity (202) outside the first gear shaft (203). The linkage box (201) is installed outside the inner cavity (202). (203) A second gear shaft (204) is installed at the top through gear meshing. A first external coupling (207) is installed at the front of the second gear shaft (204) through a coupling. A third gear shaft (205) is installed at the upper part of the second gear shaft (204) through gear meshing. A first roller (209) is installed at the front of the first external coupling (207). A second roller (211) is installed on the first roller (209) through a linkage belt (210). A drive shaft (212) is installed through the inside of the second roller (211).
4. The groundwater remediation filler device according to claim 1, characterized in that: The repair mechanism (3) also includes a fastening ring (304), a column (305), an output pipe (306), a filling chamber (307), and a conveying shaft (308). The fastening ring (304) is installed on the front exterior of the injection pipe (303), and the column (305) is installed on the lower part of the fastening ring (304). The output pipe (306) is installed on the front of the injection pipe (303) by bolts. The filling box (301) is provided with a filling chamber (307), and the conveying shaft (308) is installed inside the injection pipe (303).
5. The groundwater remediation filler device according to claim 1, characterized in that: The stirring mechanism (4) further includes a fixing member (401), a stirring box (402), an upper feed port (403), a lower discharge port (404), a stirring box shell (405), a stirring gear (406), and a stirring shaft (407). The stirring box (402) is installed and connected to the column (305) through the fixing member (401). The top of the stirring box (402) is provided with an upper feed port (403). The bottom of the stirring box (402) is provided with a stirring box shell (405). The stirring gear (406) is installed inside the stirring box shell (405). The stirring shaft (407) is installed outside the stirring gear (406). The lower discharge port (404) is provided inside the stirring shaft (407).
6. The groundwater remediation filler device according to claim 4, characterized in that: The bottom of the column (305) is fixedly connected to the base plate (103), the filling cavity (307) is connected to the inside of the injection pipe (303), and the conveying shaft (308) is installed and connected to the second external coupling shaft (208).
7. A groundwater remediation filler device according to claim 5, characterized in that: The stirring gear (406) is connected to the drive shaft (212) by gear meshing.