In-situ leaching uranium mine geological structure detection device
By designing a protective shell structure and using an electric push rod control, the problem of probe damage due to collisions in curved mine tunnels was solved, achieving probe protection and stable detection.
Patent Information
- Application Number
- CN202520009461.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-03
- Publication Date
- 2025-11-25
- Estimated Expiration
- 2035-01-03
AI Technical Summary
When existing geological structure detection devices are used in curved mine tunnels, the probes are prone to collision with the tunnel walls, resulting in damage.
A geological structure detection device for in-situ leaching uranium mines was designed. It adopts a protective shell structure, and the opening and closing of the protective shell is controlled by an electric push rod. The sliding ring is stabilized by a limiting block and a limiting rod. Combined with the meshing connection of teeth and gears, the protection and exposure of the probe are achieved.
It effectively protects the probe, preventing damage caused by collisions and ensuring the stable operation of the detection device.
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Figure CN223597920U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to a detection device technical field especially relates to a kind of in-situ leaching uranium mine geological structure detection device. BACKGROUND
[0002] The mine geological structure detection device is used for detecting and analyzing the underground geological structure, ore body distribution and rock layer properties during the mine exploration and exploitation. The existing geological structure detection device is prone to collision between the probe and the wall of the hole during use, and the probe may be damaged after multiple collisions. Therefore, an in-situ leaching uranium mine geological structure detection device is needed to solve the above problems. SUMMARY
[0003] The utility model discloses a kind of in-situ leaching uranium mine geological structure detection devices to solve the above problems.
[0004] To achieve the above object, the utility model adopts the following technical scheme: a kind of in-situ leaching uranium mine geological structure detection device, including connector, the side fixedly connected with probe of the connector, the side fixedly connected with two side blocks of the connector, the side fixedly connected with arc plate of the side block, the side fixedly connected with fixed frame between two arc plates, the both sides of the fixed frame are fixedly connected with fixed shell, the both sides of the fixed frame are rotatably connected with four shaft poles, the one end of the shaft pole is fixedly connected with rotating plate, the side of the rotating plate is equipped with rotating hole, the inner wall of the rotating hole is rotatably connected with rotating rod, the one end of two rotating rods is fixedly connected with connecting plate, the side fixedly connected with protection shell between two connecting plates, the side of the fixed shell is equipped with sliding hole, the inner wall of the sliding hole is slidably connected with sliding plate, the both sides of the sliding plate are provided with two teeth, the outer surface of the shaft pole is fixedly provided with gear, and the gear and the teeth are meshingly connected.
[0005] As a preferred embodiment, the side of the arc plate is fixedly connected with electric push rod, the one end of the electric push rod is fixedly connected with connecting block, and the side of the connecting block is fixedly connected with half slip ring.
[0006] As a preferred implementation form, one side of the arc-shaped plate is fixedly connected with two limiting rods, one end of the limiting rod is fixedly connected with one side of the fixed frame.
[0007] As a preferred implementation form, one side of the semi-rotating ring is fixedly connected with two limiting blocks, one side of the limiting block is provided with a limiting hole, and the inner wall of the limiting hole is in sliding connection with the outer surface of the limiting rod.
[0008] As a preferred implementation form, one side of the semi-rotating ring is fixedly connected with two limiting blocks, one side of the limiting block is provided with a limiting hole, and the inner wall of the limiting hole is in sliding connection with the outer surface of the limiting rod.
[0009] As a preferred implementation form, the two sides of the fixed shell are provided with sliding holes, the inner wall of the sliding hole is in sliding connection with a sliding plate, one side of the sliding plate is fixedly connected with one side of the semi-rotating ring, and one side of the sliding plate is fixedly connected with the outer surface of the sliding plate.
[0010] Compared with the prior art, the advantages and positive effects of the utility model are that: each connecting plate is controlled by two rotating plates, the rotating plate is connected with the connecting plate by a rotating rod, the rotating plate forms co-phase rotation by a shaft rod, the two rotating plates can drive the connecting plate to move horizontally, the two protective shells can be moved, the length of the rotating plate can form the opening and closing structure of the two protective shells, when the two protective shells are opened and closed, the probe inside the protective shell can be exposed for detection, the probe can be protected when the two protective shells are closed, the semi-rotating ring can be limited by the limiting block and the limiting rod, the semi-rotating ring can stably slide, the two sliding plates can be controlled by the semi-rotating ring, the sliding plate can control the sliding plate, the electric push rod can drive the sliding plate to move, the sliding plate is connected with the gear by the tooth, and the electric push rod can control the opening and closing of the protective shell. BRIEF DESCRIPTION OF DRAWINGS
[0011] Figure 1 A structural schematic view of the in-situ leaching uranium mine geological structure detection device is provided.
[0012] Figure 2 A structural schematic view of the protective shell inside the in-situ leaching uranium mine geological structure detection device is provided.
[0013] Figure 3 An explosion structural schematic view of the rotating plate of the in-situ leaching uranium mine geological structure detection device is provided.
[0014] Figure 4 A structural schematic view of the semi-rotating ring of the in-situ leaching uranium mine geological structure detection device is provided.
[0015] LEGEND:
[0016] 1. Connector; 2. Probe; 3. Side block; 4. Fixing frame; 5. Shaft; 6. Rotating plate; 7. Rotating rod; 8. Connecting plate; 9. Protective shell; 10. Gear; 11. Slide plate; 12. Fixing shell; 13. Sliding plate; 14. Arc plate; 15. Electric push rod; 16. Semi-slip ring; 17. Connecting block; 18. Limiting rod; 19. Limiting block. Detailed Implementation
[0017] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0018] Example
[0019] like Figures 1-4 As shown, this utility model provides a technical solution: a geological structure detection device for uranium leaching mines, including a connector 1, a probe 2 fixedly connected to one side of the connector 1, two side blocks 3 fixedly connected to one side of the connector 1, an arc plate 14 fixedly connected to one side of the side block 3, a fixed frame 4 fixedly connected between the two arc plates 14, a fixed shell 12 fixedly connected to both sides of the fixed frame 4, four shafts 5 rotatably connected to both sides of the fixed frame 4, a rotating plate 6 fixedly connected to one end of the shaft 5, a rotating hole opened on one side of the rotating plate 6, a rotating rod 7 rotatably connected to the inner wall of the rotating hole, a connecting plate 8 fixedly connected to one end of each pair of rotating rods 7, a protective shell 9 fixedly connected between the two connecting plates 8, a sliding hole opened on one side of the fixed shell 12, a sliding plate 11 slidably connected to the inner wall of the sliding hole, two teeth provided on both sides of the sliding plate 11, a gear 10 fixedly sleeved on the outer surface of the shaft 5, and the gear 10 meshing with the teeth;
[0020] In the above embodiments, each connecting plate 8 is controlled by two rotating plates 6. The rotating plates 6 are connected to the connecting plate 8 by rotating rods 7. The rotating plates 6 rotate in the same direction through shafts 5. Thus, the two rotating plates 6 can drive the connecting plate 8 to move horizontally, which in turn can drive the two protective shells 9 to move. The length of the rotating plates 6 allows the two protective shells 9 to form an opening and closing structure. When the two protective shells 9 are open or closed, the probe 2 inside the protective shell 9 can be exposed for detection. When the two protective shells 9 are closed, the probe 2 can be protected.
[0021] An electric push rod 15 is fixedly connected to one side of the arc plate 14, a connecting block 17 is fixedly connected to one end of the electric push rod 15, and a semi-slip ring 16 is fixedly connected to one side of the connecting block 17.
[0022] Two limiting rods 18 are fixedly connected to one side of the arc plate 14, and one end of the limiting rod 18 is fixedly connected to one side of the fixing frame 4.
[0023] Two limiting blocks 19 are fixedly connected to one side of the semi-slip ring 16. A limiting hole is opened on one side of the limiting block 19, and the inner wall of the limiting hole is slidably connected to the outer surface of the limiting rod 18.
[0024] Through the above embodiments, the half slip ring 16 can be limited by the limiting block 19 and the limiting rod 18, so that the half slip ring 16 can slide stably.
[0025] The two semi-slip rings 16 are slidably connected to the outer surface of the fixed shell 12 on one side;
[0026] The fixed shell 12 has sliding holes on both sides, and a sliding plate 13 is slidably connected to the inner wall of the sliding hole. One side of the sliding plate 13 is fixedly connected to one side of the half-slip ring 16, and one side of the sliding plate 13 is fixedly connected to the outer surface of the slide plate 11.
[0027] In the above embodiments, the sliding plates 13 are controlled to slide by the semi-slip ring 16, and the sliding plates 13 can control the slide plate 11. In turn, the electric push rod 15 can drive the slide plate 11 to move. At the same time, the slide plate 11 is connected to the gear 10 through teeth, so the opening and closing of the protective shell 9 can be controlled by the electric push rod 15.
[0028] Working principle:
[0029] like Figures 1-4 As shown, during use, when the probe is in operation, the electric push rod 15 extends, causing the connecting block 17 to move. The movement of the connecting block 17 causes the half-slip ring 16 to move. The movement of the half-slip ring 16 causes the sliding plate 13 to move. The movement of the sliding plate 13 causes the slide plate 11 to move. The movement of the slide plate 11 drives the gear 10 to rotate through the teeth. The rotation of the gear 10 drives the shaft 5 to rotate. The rotation of the shaft 5 drives the rotating plate 6 to rotate. The rotation of the rotating plate 6 drives the connecting plate 8 to rotate through the rotating rod 7. This controls the opening and closing of the protective shell 9 to expose the probe 2. When closed, the electric push rod 15 retracts, causing the protective shell 9 to close, thus protecting the probe 2.
[0030] The above description is merely a preferred embodiment of the present utility model and is not intended to limit the present utility model in any other way. Any person skilled in the art may make changes or modifications to the above-disclosed technical content to create equivalent embodiments for application in other fields. However, any simple modifications, equivalent changes, and modifications made to the above embodiments based on the technical essence of the present utility model without departing from the technical solution of the present utility model shall still fall within the protection scope of the technical solution of the present utility model.
Claims
1. A geological structure detection device for in-situ leaching uranium mines, comprising a connector (1), characterized in that, A probe (2) is fixedly connected to one side of the connector (1), and two side blocks (3) are fixedly connected to one side of the connector (1). An arc-shaped plate (14) is fixedly connected to one side of each side block (3). A fixing frame (4) is fixedly connected between the two arc-shaped plates (14). A fixing shell (12) is fixedly connected to both sides of the fixing frame (4). Four shafts (5) are rotatably connected to both sides of the fixing frame (4). A rotating plate (6) is fixedly connected to one end of each shaft (5). A rotating hole is provided on one side, and a rotating rod (7) is rotatably connected to the inner wall of the rotating hole. A connecting plate (8) is fixedly connected to one end of each pair of rotating rods (7). A protective shell (9) is fixedly connected between one side of the two connecting plates (8). A sliding hole is provided on one side of the fixed shell (12), and a sliding plate (11) is slidably connected to the inner wall of the sliding hole. Two teeth are provided on both sides of the sliding plate (11). A gear (10) is fixedly sleeved on the outer surface of the shaft (5), and the gear (10) meshes with the teeth.
2. The geological structure detection device for in-situ leaching uranium mines according to claim 1, characterized in that: An electric push rod (15) is fixedly connected to one side of the arc plate (14), a connecting block (17) is fixedly connected to one end of the electric push rod (15), and a semi-slip ring (16) is fixedly connected to one side of the connecting block (17).
3. The geological structure detection device for in-situ leaching uranium mines according to claim 1, characterized in that: Two limiting rods (18) are fixedly connected to one side of the arc plate (14), and one end of the limiting rod (18) is fixedly connected to one side of the fixing frame (4).
4. The geological structure detection device for in-situ leaching uranium mines according to claim 2, characterized in that: Two limiting blocks (19) are fixedly connected to one side of the semi-slip ring (16). A limiting hole is opened on one side of the limiting block (19), and the inner wall of the limiting hole is slidably connected to the outer surface of the limiting rod (18).
5. The geological structure detection device for in-situ leaching uranium mines according to claim 2, characterized in that: The two semi-slip rings (16) are slidably connected to the outer surface of the fixed shell (12) on one side.
6. The geological structure detection device for in-situ leaching uranium mines according to claim 2, characterized in that: The fixed shell (12) has sliding holes on both sides. A sliding plate (13) is slidably connected to the inner wall of the sliding hole. One side of the sliding plate (13) is fixedly connected to one side of the semi-slip ring (16), and one side of the sliding plate (13) is fixedly connected to the outer surface of the slide plate (11).