Geological remote sensing detection device
By introducing wheels and a storage mechanism into the geological remote sensing device, the problem of inconvenient movement of the device has been solved, achieving the effects of convenient movement and extended service life.
Patent Information
- Application Number
- CN202423217610.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-25
- Publication Date
- 2025-11-11
- Estimated Expiration
- 2034-12-25
AI Technical Summary
Existing geological remote sensing devices cannot be easily moved, increasing the workload of staff.
The design includes a moving mechanism consisting of a first moving wheel and a second moving wheel, as well as a storage mechanism. The moving wheels allow for convenient movement of the device, while the storage mechanism protects the detection disk from prolonged contact with the ground, thus extending the device's lifespan.
This enabled the device to be easily moved, reduced the workload of staff, and extended the service life of the device.
Smart Images

Figure CN223539026U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of geological exploration technology, and more specifically, to a geological remote sensing device. Background Technology
[0002] Geological remote sensing is a method that comprehensively applies modern remote sensing technology to study geological laws, conduct geological surveys and resource exploration. From a macroscopic perspective, it focuses on geological information obtained from the air, that is, it takes the response of various geological bodies to electromagnetic radiation as the basic basis, and combines it with the comprehensive application of other geological data and remote sensing data to analyze and judge the geological structure of a certain area.
[0003] Patent CN220556415U discloses a geological remote sensing device, including a housing. A threaded rod is rotatably connected inside the housing, and a drive mechanism is connected to the threaded rod. A lifting plate is threadedly connected to the outer surface of the threaded rod. A sliding rod is slidably connected inside the lifting plate, with both ends of the sliding rod fixedly connected to the housing. A connecting rod is fixedly installed at the bottom of the lifting plate, extending through to the outside of the housing and fixedly connected to a detection circular plate. This patent allows for quick adjustment of the working length by having the operator control the lifting plate via the drive mechanism, which in turn moves the connecting rod and the detection circular plate. However, this patent only allows the operator to move the device for detection work, increasing the workload. Utility Model Content
[0004] This invention aims to overcome the problem of the inability to easily move the device for operation and reduce the workload of staff by providing a geological remote sensing detection device.
[0005] A geological remote sensing detection device includes a detection rod, a horizontal plate, a moving mechanism, a storage mechanism, and a detection disk. The detection rod is rotatably connected to the horizontal plate. The moving mechanism is disposed on the detection rod and the horizontal plate. The storage mechanism is disposed on the horizontal plate. The detection disk is disposed inside the storage mechanism.
[0006] The moving mechanism includes a first connecting shaft, a first moving wheel, a support rod, an auxiliary component, a second connecting shaft, and a second moving wheel. The first connecting shaft passes through the side wall of the horizontal plate and is rotatably connected to the horizontal plate. The two first moving wheels are fixedly installed at both ends of the first connecting shaft. The support rod is rotatably connected to the detection rod. The auxiliary component is installed between the detection rod and the support rod. The second connecting shaft passes through the end of the support rod away from the detection rod and is rotatably connected to the support rod. The two second moving wheels are fixedly installed at both ends of the second connecting shaft.
[0007] Furthermore, a first connecting ear plate is fixedly installed on the top surface of the horizontal plate, and a first connecting block is fixedly installed at the bottom end of the probe rod. The first connecting block is hinged to the first connecting ear plate.
[0008] Furthermore, the auxiliary components include a first slider, a second connecting ear plate, a third connecting ear plate, a rotating rod, and a fourth connecting ear plate. A first groove is provided on the side wall of the probe rod. The first slider is inserted into the first groove and slides along the first groove. The second connecting ear plate is fixedly disposed on the side wall of the first slider. A second connecting block is fixedly disposed on the top of the support rod. The second connecting block is hinged to the second connecting ear plate. The third connecting ear plate is fixedly disposed on the side wall of the support rod. One end of the rotating rod is hinged to the third connecting ear plate. The fourth connecting ear plate is fixedly disposed on the bottom end of the side wall of the probe rod. The other end of the rotating rod is hinged to the fourth connecting ear plate.
[0009] Furthermore, the auxiliary component also includes a guide rod, which is fixedly disposed inside the first slide groove, and the first slider is sleeved on the guide rod and slides along the first slide groove via the guide rod.
[0010] Furthermore, a first spring and a second spring are fitted on the guide rod. One end of the first spring is fixedly connected to the inner wall of the first slide groove, and the other end of the first spring is fixedly connected to the top surface of the first slider. One end of the second spring is fixedly connected to the bottom surface of the first slider, and the other end of the second spring is fixedly connected to the inner wall of the first slide groove.
[0011] Furthermore, the storage mechanism includes a storage tray, a vertical frame, a second slider, an adjustment component, and a connecting rod. The storage tray is fixedly connected to the side wall of the horizontal plate. The vertical frame is fixedly set on the top surface of the storage tray. A second groove is opened inside the vertical frame. The second slider is inserted into the second groove and slides along the second groove. The adjustment component is set between the vertical frame and the second slider. The top end of the connecting rod is fixedly connected to the bottom surface of the second slider. The bottom end of the connecting rod passes through the storage tray and is fixedly connected to the detection disc.
[0012] Furthermore, the adjustment component includes threaded rods, two threaded rods are inserted into both ends of the second slide groove and are rotatably connected to the vertical frame and the storage tray, and the two ends of the second slider are sleeved on the two threaded rods and slide along the second slide groove through the threaded rods.
[0013] Furthermore, the adjustment assembly also includes a first bevel gear, a rotating shaft, and a second bevel gear. A horizontal groove is provided inside the top of the vertical frame. The top of the threaded rod is inserted into the horizontal groove and fixedly connected to the first bevel gear. The rotating shaft is inserted into the horizontal groove and rotatably connected to the vertical frame. Two second bevel gears are sleeved on the rotating shaft and fixedly connected to the rotating shaft. The first bevel gear and the second bevel gear mesh with each other.
[0014] Furthermore, one end of the rotating shaft passes through the side wall of the vertical frame and is fixedly equipped with a motor for rotating the rotating shaft.
[0015] Furthermore, a handle for pushing the device is fixedly installed at the top of the probe rod.
[0016] Compared with the prior art, the beneficial effects of this utility model are:
[0017] ①The geological remote sensing detection device provided by this utility model, by setting a first moving wheel and a second moving wheel, both of which are in contact with the ground, and the cooperation between the first moving wheel and the second moving wheel, enables the device to move conveniently to carry out detection operations, reducing the workload of staff.
[0018] ②The geological remote sensing detection device provided by this utility model, by setting up a storage tray, a vertical frame, a second slider and a connecting rod, the vertical frame, the second slider and the connecting rod work together to store the detection disk inside the storage tray, avoiding the detection disk from being in contact with the ground for a long time and being damaged by the external environment, thus extending the service life of the device. Attached Figure Description
[0019] The accompanying drawings are provided to further illustrate the present invention and form part of the specification. They are used together with the embodiments of the present invention to explain the present invention, but do not constitute a limitation thereof. In the drawings:
[0020] Figure 1 This is a schematic diagram of the overall structure of the geological remote sensing detection device in this utility model.
[0021] Figure 2 This is a schematic diagram of the specific structure of the moving mechanism in this utility model.
[0022] Figure 3 This is a schematic diagram of the specific structure of the storage mechanism in this utility model.
[0023] In the diagram: 1. Detector rod; 2. Horizontal plate; 3. Detector disc; 4. First connecting shaft; 5. First moving wheel; 6. Support rod; 7. Second connecting shaft; 8. Second moving wheel; 9. First connecting ear plate; 10. First connecting block; 11. First slider; 12. Second connecting ear plate; 13. Third connecting ear plate; 14. Rotating rod; 15. Fourth connecting ear plate; 16. First slide groove; 17. Second connecting block; 18. Guide rod; 19. First spring; 20. Second spring; 21. Storage tray; 22. Vertical frame; 23. Second slider; 24. Connecting rod; 25. Second slide groove; 26. Threaded rod; 27. First bevel gear; 28. Rotating shaft; 29. Second bevel gear; 30. Horizontal groove; 31. Motor; 32. Handle. Detailed Implementation
[0024] 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.
[0025] like Figure 1 As shown, a geological remote sensing detection device includes a detection rod 1, a horizontal plate 2, a moving mechanism, a storage mechanism, and a detection disk 3. The detection rod 1 is rotatably connected to the horizontal plate 2. The moving mechanism is set on the detection rod 1 and the horizontal plate 2. The storage mechanism is set on the horizontal plate 2. The detection disk 3 is set inside the storage mechanism. Specifically, the detection rod 1 is rotatably connected to the horizontal plate 2. The moving mechanism is set on the detection rod 1 and the horizontal plate 2. The storage mechanism is set on the horizontal plate 2. The detection disk 3 is set inside the storage mechanism.
[0026] like Figure 2 As shown, the moving mechanism includes a first connecting shaft 4, a first moving wheel 5, a support rod 6, an auxiliary component, a second connecting shaft 7, and a second moving wheel 8. The first connecting shaft 4 passes through the side wall of the horizontal plate 2 and is rotatably connected to the horizontal plate 2. The two first moving wheels 5 are fixedly installed at both ends of the first connecting shaft 4. The support rod 6 is rotatably connected to the detection rod 1. The auxiliary component is installed between the detection rod 1 and the support rod 6. The second connecting shaft 7 passes through the end of the support rod 6 away from the detection rod 1 and is rotatably connected to the support rod 6. The two second moving wheels 8 are fixedly installed at both ends of the second connecting shaft 7. Specifically, the first connecting shaft 4 passes through the side wall of the horizontal plate 2 and is rotatably connected to the horizontal plate 2. The two first moving wheels 5 are welded to both ends of the first connecting shaft 4. The support rod 6 is rotatably connected to the detection rod 1. An auxiliary rod is installed between the detection rod 1 and the support rod 6. The second connecting shaft 7 passes through the end of the support rod 6 away from the detection rod 1 and is rotatably connected to the support rod 6. The two second moving wheels 8 are welded to both ends of the second connecting shaft 7.
[0027] In this invention, by setting a first moving wheel 5 and a second moving wheel 8, both of which are in contact with the ground, the cooperation between the first moving wheel 5 and the second moving wheel 8 enables the device to move conveniently to carry out detection operations, reducing the workload of workers.
[0028] A first connecting lug 9 is fixedly installed on the top surface of the horizontal plate 2, and a first connecting block 10 is fixedly installed at the bottom end of the probe rod 1. The first connecting block 10 is hinged to the first connecting lug 9. Specifically, the first connecting lug 9 is welded to the top surface of the horizontal plate 2, and a pin is inserted on the first connecting lug 9. The first connecting block 10 is welded to the bottom end of the probe rod 1, and the first connecting block 10 is hinged to the first connecting lug 9 through the pin.
[0029] The auxiliary components include a first slider 11, a second connecting ear plate 12, a third connecting ear plate 13, a rotating rod 14, and a fourth connecting ear plate 15. A first groove 16 is formed on the side wall of the probe rod 1. The first slider 11 is inserted into the first groove 16 and slides along it. The second connecting ear plate 12 is fixedly mounted on the side wall of the first slider 11. A second connecting block 17 is fixedly mounted on the top of the support rod 6 and is hinged to the second connecting ear plate 12. The third connecting ear plate 13 is fixedly mounted on the side wall of the support rod 6. One end of the rotating rod 14 is hinged to the third connecting ear plate 13. The fourth connecting ear plate 15 is fixedly mounted on the bottom end of the side wall of the probe rod 1, and the other end of the rotating rod 14 is hinged to the fourth connecting ear plate 15. Specifically, the probe rod... A first groove 16 is provided on the side wall of the probe rod 1. The first slider 11 is inserted into the first groove 16 and slides along the first groove 16. The second connecting ear plate 12 is welded to the side wall of the first slider 11. A pin is inserted on the second connecting ear plate 12. The top of the support rod 6 is welded to the second connecting block 17. The second connecting block 17 is hinged to the second connecting ear plate 12 by a pin. The side wall of the support rod 6 is welded to the third connecting ear plate 13. A pin is inserted on the third connecting ear plate 13. One end of the rotating rod 14 is hinged to the third connecting ear plate 13 by a pin. The bottom of the side wall of the probe rod 1 is welded to the fourth connecting ear plate 15. A pin is inserted on the fourth connecting ear plate 15. The other end of the rotating rod 14 is hinged to the fourth connecting ear plate 15 by a pin.
[0030] The auxiliary component also includes a guide rod 18, which is fixedly disposed inside the first slide groove 16. The first slider 11 is sleeved on the guide rod 18 and slides along the first slide groove 16 through the guide rod 18. Specifically, the guide rod 18 is welded inside the first slide groove 16, and the first slider 11 has a through hole. The first slider 11 is sleeved on the guide rod 18 through the through hole and slides along the first slide groove 16 through the guide rod 18.
[0031] A first spring 19 and a second spring 20 are fitted onto the guide rod 18. One end of the first spring 19 is fixedly connected to the inner wall of the first slide groove 16, and the other end of the first spring 19 is fixedly connected to the top surface of the first slider 11. One end of the second spring 20 is fixedly connected to the bottom surface of the first slider 11, and the other end of the second spring 20 is fixedly connected to the inner wall of the first slide groove 16. Specifically, the guide rod 18 is fitted with a first spring 19 and a second spring 20. One end of the first spring 19 is welded to the top inner wall of the first slide groove 16, and the other end of the first spring 19 is welded to the top surface of the first slider 11. One end of the second spring 20 is welded to the bottom surface of the first slider 11, and the other end of the second spring 20 is welded to the bottom inner wall of the first slide groove 16.
[0032] like Figure 3As shown, the storage mechanism includes a storage tray 21, a vertical frame 22, a second slider 23, an adjustment component, and a connecting rod 24. The storage tray 21 is fixedly connected to the side wall of the horizontal plate 2. The vertical frame 22 is fixedly installed on the top surface of the storage tray 21. A second groove 25 is provided inside the vertical frame 22. The second slider 23 is inserted into the second groove 25 and slides along the second groove 25. The adjustment component is located between the vertical frame 22 and the second slider 23. The top end of the connecting rod 24 is fixedly connected to the bottom surface of the second slider 23, and the bottom end of the connecting rod 24 passes through the bottom surface of the second slider 23. The storage tray 21 is fixedly connected to the detection disc 3. Specifically, the storage tray 21 is welded to the side wall of the horizontal plate 2. A vertical frame 22 is welded to the top surface of the storage tray 21. A second sliding groove 25 is opened inside the vertical frame 22. A second slider 23 is inserted into the second sliding groove 25 and slides along the second sliding groove 25. An adjustment component is provided between the vertical frame 22 and the second slider 23. The top end of the connecting rod 24 is welded to the bottom surface of the second slider 23. The bottom end of the connecting rod 24 passes through the storage tray 21 and is welded to the detection disc 3.
[0033] In this utility model, by setting up a storage tray 21, a vertical frame 22, a second slider 23 and a connecting rod 24, the vertical frame 22, the second slider 23 and the connecting rod 24 work together to store the detection disk 3 inside the storage tray 21, avoiding the detection disk 3 from being in contact with the ground for a long time and being damaged by the external environment, thus extending the service life of the device.
[0034] The adjustment assembly includes threaded rods 26. Two threaded rods 26 are inserted into both ends of the second slide groove 25 and are rotatably connected to the vertical frame 22 and the storage tray 21. The two ends of the second slider 23 are sleeved on the two threaded rods 26 and slide along the second slide groove 25 through the threaded rods 26. Specifically, two threaded rods 26 are inserted into both ends of the second slide groove 25 and are rotatably connected to the vertical frame 22 and the storage tray 21. The two ends of the second slider 23 have through holes. The second slider 23 is sleeved on the two threaded rods 26 through the through holes and slides along the second slide groove 25 through the threaded rods 26.
[0035] The adjustment assembly also includes a first bevel gear 27, a rotating shaft 28, and a second bevel gear 29. A horizontal groove 30 is opened inside the top of the vertical frame 22. The top of the threaded rod 26 is inserted into the horizontal groove 30 and fixedly connected to the first bevel gear 27. The rotating shaft 28 is inserted into the horizontal groove 30 and rotatably connected to the vertical frame 22. The two second bevel gears 29 are sleeved on the rotating shaft 28 and fixedly connected to the rotating shaft 28. The first bevel gear 27 and the second bevel gear 29 mesh with each other. Specifically, a horizontal groove 30 is opened inside the top of the vertical frame 22. The top of the threaded rod 26 is inserted into the horizontal groove 30 and welded to the first bevel gear 27. The rotating shaft 28 is inserted into the horizontal groove 30 and rotatably connected to the vertical frame 22. The two second bevel gears 29 are sleeved on the rotating shaft 28 and welded to the rotating shaft 28. The first bevel gear 27 and the second bevel gear 29 mesh with each other.
[0036] One end of the rotating shaft 28 passes through the side wall of the vertical frame 22 and is fixedly mounted with a motor 31 for rotating the rotating shaft 28. Preferably, the motor 31 has a self-locking function, specifically, the motor 31 is fixed to the top of the side wall of the vertical frame 22 by a motor seat, and one end of the rotating shaft 28 passes through the side wall of the vertical frame 22 and is welded to the output shaft of the motor 31.
[0037] The top of the probe rod 1 is fixedly provided with a handle 32 for pushing the device. Specifically, the top of the probe rod 1 is welded with a handle 32 for pushing the device.
[0038] The working principle of the geological remote sensing detection device in this embodiment is as follows:
[0039] Motor 31 rotates the output shaft, rotating shaft 28 rotates with the output shaft, second bevel gear 29 rotates with rotating shaft 28, first bevel gear 27 rotates with second bevel gear 29, threaded rod 26 rotates with first bevel gear 27, second slider 23 rotates with threaded rod 26 and slides along second slide groove 25, connecting rod 24 moves with second slider 23, detection disk 3 moves with connecting rod 24 until it contacts the detection ground, and the operator pushes the device with handle 32, and the device moves through first moving wheel 5 and second moving wheel 8 to perform detection work.
[0040] Finally, it should be noted that the above description is merely a preferred embodiment of this utility model and is not intended to limit the utility model. Although the utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this utility model should be included within the protection scope of this utility model.
Claims
1. A geological remote sensing detection device, characterized in that: It includes a probe rod (1), a horizontal plate (2), a moving mechanism, a storage mechanism, and a probe disc (3). The probe rod (1) is rotatably connected to the horizontal plate (2). The moving mechanism is disposed on the probe rod (1) and the horizontal plate (2). The storage mechanism is disposed on the horizontal plate (2). The probe disc (3) is disposed inside the storage mechanism. The moving mechanism includes a first connecting shaft (4), a first moving wheel (5), a support rod (6), an auxiliary component, a second connecting shaft (7), and a second moving wheel (8). The first connecting shaft (4) passes through the side wall of the horizontal plate (2) and is rotatably connected to the horizontal plate (2). The two first moving wheels (5) are fixedly disposed at both ends of the first connecting shaft (4). The support rod (6) is rotatably connected to the probe rod (1). The auxiliary component is disposed between the probe rod (1) and the support rod (6). The second connecting shaft (7) passes through the end of the support rod (6) away from the probe rod (1) and is rotatably connected to the support rod (6). The two second moving wheels (8) are fixedly disposed at both ends of the second connecting shaft (7).
2. The geological remote sensing detection device according to claim 1, characterized in that: The top surface of the horizontal plate (2) is fixedly provided with a first connecting ear plate (9), and the bottom end of the probe rod (1) is fixedly provided with a first connecting block (10), and the first connecting block (10) is hinged to the first connecting ear plate (9).
3. The geological remote sensing detection device according to claim 1, characterized in that: The auxiliary components include a first slider (11), a second connecting ear plate (12), a third connecting ear plate (13), a rotating rod (14), and a fourth connecting ear plate (15). The side wall of the probe rod (1) is provided with a first sliding groove (16). The first slider (11) is inserted into the first sliding groove (16) and slides along the first sliding groove (16). The second connecting ear plate (12) is fixedly disposed on the side wall of the first slider (11). The top end of the support rod (6) is fixedly disposed with a second connecting block (17). The second connecting block (17) is hinged to the second connecting ear plate (12). The third connecting ear plate (13) is fixedly disposed on the side wall of the support rod (6). One end of the rotating rod (14) is hinged to the third connecting ear plate (13). The fourth connecting ear plate (15) is fixedly disposed at the bottom end of the side wall of the probe rod (1). The other end of the rotating rod (14) is hinged to the fourth connecting ear plate (15).
4. A geological remote sensing detection device according to claim 3, characterized in that: The auxiliary component also includes a guide rod (18), which is fixedly disposed inside the first slide groove (16). The first slider (11) is sleeved on the guide rod (18) and slides along the first slide groove (16) through the guide rod (18).
5. A geological remote sensing detection device according to claim 4, characterized in that: The guide rod (18) is fitted with a first spring (19) and a second spring (20). One end of the first spring (19) is fixedly connected to the inner wall of the first slide groove (16), and the other end of the first spring (19) is fixedly connected to the top surface of the first slider (11). One end of the second spring (20) is fixedly connected to the bottom surface of the first slider (11), and the other end of the second spring (20) is fixedly connected to the inner wall of the first slide groove (16).
6. The geological remote sensing detection device according to claim 1, characterized in that: The storage mechanism includes a storage tray (21), a vertical frame (22), a second slider (23), an adjustment component, and a connecting rod (24). The storage tray (21) is fixedly connected to the side wall of the horizontal plate (2). The vertical frame (22) is fixedly set on the top surface of the storage tray (21). A second sliding groove (25) is opened inside the vertical frame (22). The second slider (23) is inserted into the second sliding groove (25) and slides along the second sliding groove (25). The adjustment component is set between the vertical frame (22) and the second slider (23). The top end of the connecting rod (24) is fixedly connected to the bottom surface of the second slider (23). The bottom end of the connecting rod (24) passes through the storage tray (21) and is fixedly connected to the detection disc (3).
7. A geological remote sensing detection device according to claim 6, characterized in that: The adjustment assembly includes threaded rods (26), two threaded rods (26) are inserted at both ends of the second slide groove (25) and are rotatably connected to the vertical frame (22) and the storage tray (21). The two ends of the second slider (23) are sleeved on the two threaded rods (26) and slide along the second slide groove (25) through the threaded rods (26).
8. A geological remote sensing detection device according to claim 7, characterized in that: The adjustment assembly also includes a first bevel gear (27), a rotating shaft (28), and a second bevel gear (29). A horizontal groove (30) is provided inside the top of the vertical frame (22). The top of the threaded rod (26) is inserted into the horizontal groove (30) and fixedly connected to the first bevel gear (27). The rotating shaft (28) is inserted into the horizontal groove (30) and rotatably connected to the vertical frame (22). The two second bevel gears (29) are sleeved on the rotating shaft (28) and fixedly connected to the rotating shaft (28). The first bevel gear (27) and the second bevel gear (29) mesh with each other.
9. A geological remote sensing detection device according to claim 8, characterized in that: One end of the rotating shaft (28) passes through the side wall of the vertical frame (22) and is fixedly equipped with a motor (31) for rotating the rotating shaft (28).
10. A geological remote sensing detection device according to claim 1, characterized in that: The probe rod (1) is fixedly provided with a handle (32) for pushing the device.
Citation Information
Patent Citations
Geological remote sensing detection equipment
CN220556415U