Portable geological detection surveying and mapping device

By designing a portable geological surveying and mapping device with a combination structure of rotating disk, fixed plate and support rod, the problems of traditional devices being difficult to carry and unstable in support are solved, and the support legs can be quickly installed and stored, thus improving stability.

CN223924441UActive Publication Date: 2026-02-17GUANGZHOU QUANCHENG DUOWEI INFORMATION TECH CO LTD
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Patent Information

Application Number
CN202520856226.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-30
Publication Date
2026-02-17
Estimated Expiration
2035-04-30

AI Technical Summary

Technical Problem

Traditional geological surveying and mapping equipment is difficult to carry and has unstable support, and its support tripod is difficult to store.

Method used

A portable geological surveying and mapping device was designed. Through the combination structure of rotating disk, fixed plate, first and second support rods, telescopic groove, telescopic rod and fixed collar, the support frame can be quickly installed and stored. The triangular structure is used to improve the support stability.

Benefits of technology

It enables quick installation and storage of the support legs, making it easy to carry, improving the stability of the device during use, and preventing slippage.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a portable geological detection surveying and mapping device, relates to the field of geological detection surveying and mapping, and provides the following scheme aiming at the problems that most of existing geological detection surveying and mapping devices are difficult to carry and unstable in supporting due to the fact that supporting foot stools are difficult to store: the portable geological detection surveying and mapping device comprises surveying and mapping equipment, a camera, a rotating disc and a base, the bottom of the base is connected with a first rotating shaft, one side of the first rotating shaft is connected with a first supporting rod, a telescopic rod is arranged in the first supporting rod, the end of the first supporting rod is sleeved with a fixing block, the outer side of the fixing block is sleeved with a fixing lantern ring, a hollowed-out groove is formed in the telescopic rod, and a second rotating shaft is connected into the hollowed-out groove. And one side of the second rotating shaft is connected with a second supporting rod. The surveying and mapping device is novel in structure, the supporting foot stool can be rapidly installed, meanwhile, the auxiliary foot stool is arranged to support and fix the surveying and mapping device, the supporting foot stool can be rapidly stored, and the surveying and mapping device is convenient to carry.
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Description

Technical Field

[0001] This utility model relates to the field of geological testing and mapping, and in particular to a portable geological testing and mapping device. Background Technology

[0002] Geological surveying and mapping devices are typically used to acquire geological data and information for geological exploration, engineering construction planning, and other purposes. They are designed and manufactured for data acquisition, processing, and output in surveying operations. Traditional geological surveying and mapping devices are often difficult to store with their support tripods, making them hard to carry and unstable during use. This paper proposes a portable geological surveying and mapping device that allows for quick installation of the support tripods and includes auxiliary tripods to support and fix the device. The support tripods can be quickly stored away for easy transport. Utility Model Content

[0003] This invention proposes a portable geological detection and mapping device, which solves the existing problems.

[0004] To achieve the above objectives, the present invention adopts the following technical solution:

[0005] A portable geological surveying and mapping device includes a surveying apparatus. A camera is mounted on one side of the surveying apparatus, and a rotating disk is provided at the bottom of the surveying apparatus. A base is mounted on the bottom of the rotating disk, and a fixing plate is provided at the bottom of the base. A first rotating shaft is connected between the fixing plates, and a first support rod is connected to one side of the first rotating shaft. A telescopic groove is formed inside the first support rod, and a telescopic rod is provided inside the telescopic groove. A fixing block is sleeved at the end of the first support rod, and a fixing collar is sleeved on the outside of the fixing block. A hollow groove is formed inside the telescopic rod, and a second rotating shaft is connected to the hollow groove. A second support rod is connected to one side of the second rotating shaft.

[0006] Preferably, the rotating disk rotates on top of the base, and the surveying device is positioned at the center of the top of the rotating disk.

[0007] Preferably, there are three sets of fixing plates, and the fixing plates are arranged in a circumferential array at the bottom of the base, and the first rotating shaft is rotatably connected inside the fixing plates.

[0008] Preferably, the shape and size of the telescopic groove match the telescopic rod, and the telescopic rod is slidably connected inside the telescopic groove. A fixing screw groove is provided on the outer side of the fixing block, and a fixing thread is provided on the inner side of the fixing collar. The shape and size of the fixing screw groove match the fixing thread, and the fixing collar and the fixing block are threadedly engaged with each other.

[0009] Preferably, one side of the fixing block is provided with a circumferential array of clamping blocks, and one side of the clamping block is in contact with the telescopic rod. The other side of the clamping block has an inclined structure, and the inclination of the lower inner side of the fixing collar matches that of the clamping block. The other side of the clamping block is in contact with the inside of the fixing collar, and the outer side of the fixing collar is provided with an anti-slip groove.

[0010] Preferably, the shape and size of the hollowed-out groove match the second support rod, and the second support rod rotates around the second rotation axis.

[0011] Preferably, the ends of the telescopic rod and the second support rod are both inclined structures, and the telescopic rod and the second support rod form a triangular structure when supporting each other.

[0012] The beneficial effects of this utility model are as follows:

[0013] 1. The first support rod adjusts the support angle by rotating around the first rotation axis. The second support rod is used to provide auxiliary support for the telescopic rod. The telescopic rod and the second support rod form a triangular structure when supporting, which improves the stability when supporting.

[0014] 2. The fixing collar and the fixing block are threaded together. By rotating, the fixing collar moves up and down along the first support rod to achieve the purpose of squeezing and releasing the clamping block, so as to quickly clamp and fix the telescopic rod and better adjust the telescopic length of the telescopic rod.

[0015] 3. The hollowed-out groove is used to store the second support rod. The ends of both the telescopic rod and the second support rod are inclined, which allows the telescopic rod and the second support rod to be better inserted into the ground and effectively prevents slippage during support.

[0016] In summary, by adopting the structure of this utility model, the problems of traditional geological surveying and mapping devices being difficult to store with their support legs, making them difficult to carry, and having unstable support during use can be better solved. Attached Figure Description

[0017] Figure 1 This is a schematic diagram of the geological detection and mapping device of this utility model;

[0018] Figure 2 This is a cross-sectional view of the geological detection and mapping device of this utility model;

[0019] Figure 3 This is a schematic diagram of the telescopic rod structure of this utility model;

[0020] Figure 4 This is a schematic diagram of the first support rod structure of this utility model;

[0021] Figure 5This is a schematic diagram of the first support rod of this utility model from another angle.

[0022] The following are the labels in the diagram: 1. Surveying equipment; 2. Camera; 3. Rotating disk; 4. Base; 5. Fixing plate; 6. First rotating shaft; 7. First support rod; 8. Fixing block; 9. Telescopic groove; 10. Clamping block; 11. Fixing screw groove; 12. Telescopic rod; 13. Fixing collar; 14. Fixing thread; 15. Anti-slip groove; 16. Hollowed-out groove; 17. Second rotating shaft; 18. Second support rod. Detailed Implementation

[0023] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments.

[0024] Reference Figures 1-5 A portable geological surveying and mapping device includes a surveying device 1, a camera 2 mounted on one side of the surveying device 1 for geological surveying and mapping, a rotating disk 3 at the bottom of the surveying device 1 that rotates on top of a base 4, and the surveying device 1 positioned at the center of the top of the rotating disk 3 for easy adjustment of the rotation angle of the surveying device 1 by the rotating disk 3. A base 4 is mounted on the bottom of the rotating disk 3, and fixing plates 5 are provided at the bottom of the base 4. A first rotating shaft 6 connects the fixing plates 5. Three sets of fixing plates 5 are arranged in a circumferential array on the bottom of the base 4. The first rotating shaft 6 is rotatably connected inside the fixing plates 5. The fixing plates 5 are used for... The first rotating shaft 6 rotates within the bottom of the base 4, and a first support rod 7 is connected to one side of the first rotating shaft 6. The first support rod 7 has a telescopic groove 9 inside, and a telescopic rod 12 is installed inside the telescopic groove 9. The first support rod 7 is used to adjust the support angle of the telescopic rod 12. A fixing block 8 is sleeved at the end of the first support rod 7, and a fixing collar 13 is sleeved on the outside of the fixing block 8. The fixing collar 13 is used to fix the telescopic length of the telescopic rod 12. A hollow groove 16 is opened inside the telescopic rod 12, and a second rotating shaft 17 is connected inside the hollow groove 16. A second support rod 18 is connected to one side of the second rotating shaft 17, and the second support rod 18 is used to provide auxiliary support for the telescopic rod 12.

[0025] Reference Figure 3 The shape and size of the telescopic groove 9 match the telescopic rod 12, and the telescopic rod 12 is slidably connected inside the telescopic groove 9. The outer side of the fixing block 8 is provided with a fixing screw groove 11, and the inner side of the fixing collar 13 is provided with a fixing thread 14. The shape and size of the fixing screw groove 11 match the fixing thread 14. The fixing collar 13 and the fixing block 8 are threadedly engaged with each other. By rotating, the fixing collar 13 moves up and down along the first support rod 7.

[0026] Reference Figure 4 and Figure 5 One side of the fixing block 8 is provided with a circumferential array of clamping blocks 10, and one side of the clamping blocks 10 is in contact with the telescopic rod 12. The other side of the clamping blocks 10 has an inclined structure, and the inclination of the lower inner side of the fixing collar 13 matches that of the clamping blocks 10. The other side of the clamping blocks 10 is in contact with the inside of the fixing collar 13, and the outer side of the fixing collar 13 is provided with an anti-slip groove 15. The fixing collar 13 achieves the purpose of squeezing and releasing the clamping blocks 10 by moving up and down along the first support rod 7, so as to quickly clamp and fix the telescopic rod 12 and better adjust the telescopic length of the telescopic rod 12.

[0027] Reference Figure 1 and Figure 2 The shape and size of the hollow groove 16 match the second support rod 18, and the second support rod 18 rotates around the second rotating axis 17. The hollow groove 16 is used to store the second support rod 18. The ends of the telescopic rod 12 and the second support rod 18 are both inclined structures, which makes the telescopic rod 12 and the second support rod 18 better inserted into the ground and effectively prevents slippage during support. The telescopic rod 12 and the second support rod 18 form a triangular structure when supported, which improves the stability during support.

[0028] Working principle: First, when using the geological surveying and mapping device, place it in a suitable position. Then, rotate the first support rod 7 around the first rotating shaft 6 to adjust it to the appropriate position. Next, rotate the fixing collar 13 to move it downwards, causing the clamping block 10 to expand and loosen outwards, pulling the telescopic rod 12 out from inside the first support rod 7. Adjust the length of the telescopic rod 12 accordingly. After adjustment, rotate the fixing collar 13 in the opposite direction to move it downwards, squeezing the clamping block 10 and clamping and fixing the telescopic rod 12. Then, move the end of the telescopic rod 12... The inclined surface of the telescopic rod 12 is inserted into the ground to initially fix it. The second support rod 18 installed in the hollow groove 16 inside the telescopic rod 12 is moved to rotate around the second rotating axis 17, so that the second support rod 18 is rotated to the position of contact with the ground, so that the telescopic rod 12 and the second support rod 18 form a triangular structure. After use, the second support rod 18 is rotated into the hollow groove 16 for storage. Then, the fixing collar 13 is rotated to move upward, so that the telescopic rod 12 enters the first support rod 7 along the telescopic groove 9, achieving the purpose of storage, reducing the size of the surveying device when carried, and making it easier to carry.

[0029] The above description is only a preferred embodiment of the present utility model, but the protection scope of the present utility model is not limited thereto. Any equivalent substitutions or changes made by those skilled in the art within the technical scope disclosed in the present utility model, based on the technical solution and the inventive concept of the present utility model, should be included within the protection scope of the present utility model.

Claims

1. A portable geological detection mapping device comprising a mapping device (1), characterized in that, The mapping device (1) is provided with a camera (2) on one side, and a rotating disc (3) is arranged at the bottom of the mapping device (1), a base (4) is arranged at the bottom of the rotating disc (3), and fixed pieces (5) are arranged at the bottom of the base (4), a first rotating shaft (6) is connected between the fixed pieces (5), a first supporting rod (7) is connected to one side of the first rotating shaft (6), a telescopic slot (9) is formed in the first supporting rod (7), a telescopic rod (12) is arranged in the telescopic slot (9), a fixed block (8) is sleeved at the end of the first supporting rod (7), a fixed sleeve ring (13) is sleeved outside the fixed block (8), a hollow slot (16) is formed in the telescopic rod (12), a second rotating shaft (17) is connected in the hollow slot (16), and a second supporting rod (18) is connected to one side of the second rotating shaft (17).

2. The portable geological detection mapping device of claim 1, wherein, The rotating disc (3) rotates on the top of the base (4), and the mapping device (1) is arranged at the center of the top of the rotating disc (3).

3. The portable geological detection mapping device of claim 1, wherein, The fixed pieces (5) are arranged in three groups, and are arranged in a circumferential array at the bottom of the base (4), and the first rotating shaft (6) is rotatably connected in the fixed pieces (5).

4. The portable geological detection mapping device of claim 1, wherein, The telescopic slot (9) is matched in size with the telescopic rod (12), the telescopic rod (12) is slidably connected in the telescopic slot (9), a fixed screw groove (11) is formed on the outside of the fixed block (8), a fixed screw thread (14) is formed on the inside of the fixed sleeve ring (13), the fixed screw groove (11) is matched in size with the fixed screw thread (14), and the fixed sleeve ring (13) and the fixed block (8) are threadedly engaged with each other.

5. The portable geological detection mapping device of claim 1, wherein, A clamping block (10) is arranged in a circumferential array on one side of the fixed block (8), and the clamping block (10) is attached to the telescopic rod (12) on one side, the other side of the clamping block (10) is an inclined structure, the inclination of the inside of the fixed sleeve ring (13) is matched with the clamping block (10), the other side of the clamping block (10) is attached to the inside of the fixed sleeve ring (13), and an anti-skid groove (15) is formed on the outside of the fixed sleeve ring (13).

6. The portable geological detection mapping device of claim 1, wherein, The hollow slot (16) is matched in size with the second supporting rod (18), and the second supporting rod (18) rotates around the second rotating shaft (17).

7. The portable geological detection mapping device of claim 1, wherein, The end of the telescopic rod (12) and the end of the second supporting rod (18) are both inclined structures, and the telescopic rod (12) and the second supporting rod (18) form a triangular structure when supporting.