Coal geology detection device
By introducing a shock absorption system and a card rod limit structure into the coal geological detection device, the problem of the device shaking under uneven ground and external interference is solved, and higher detection accuracy and stability are achieved.
Patent Information
- Application Number
- CN202423129823.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-18
- Publication Date
- 2025-09-30
- Estimated Expiration
- 2034-12-18
AI Technical Summary
Traditional coal geological detection devices are prone to shaking on uneven ground and under external interference factors, affecting the stability of the detector and data accuracy.
A shock absorption system, including rubber blocks, shock-absorbing springs and damping rods, combined with a telescopic support frame and a card rod limit structure, ensures the stability of the device and data accuracy in complex terrain.
It effectively reduces the impact of external vibration, improves the stability of the detector and the accuracy of data acquisition, and enhances the adaptability and reliability of the device in various terrains.
Smart Images

Figure CN223399153U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of geological detection, in particular to a coal geological detection device. Background Art
[0002] With the continuous growth of global energy demand, coal, as an important fossil energy, still occupies an important position in the energy structure of many countries. In order to ensure the rational development and efficient utilization of coal resources, accurate detection of coal mine geological conditions is particularly important. Geological exploration not only helps to discover new mineral deposits, but also can evaluate the safety and economy of existing mines. It is of great significance to ensure mine production safety and improve resource utilization.
[0003] Traditional coal geological detection devices usually include a bracket, a detection unit, a mobile component, and a control center. However, during the actual geological detection process, due to the unevenness of the ground and other external interference factors such as wind and passing vehicles, traditional detection devices are easily affected and shaken, which in turn affects the stability of the detector and causes deviations in the collected data, thereby affecting the final analysis results and limiting the application effect of traditional devices under complex geological conditions.
[0004] Therefore, a coal geological exploration device equipped with a shock absorption system is designed. Utility Model Content
[0005] In order to overcome the shortcomings of existing coal geological detection devices, which are easily affected by ground flatness and external interference factors and shake, have low stability and affect detection accuracy, the utility model provides a coal geological detection device equipped with a shock absorption system.
[0006] The cam is connected to the movable frame by means of a spring, and the movable frame is connected to the movable frame by means of a spring.
[0007] Further explanation: it also includes a fixing frame and a limit plate. The two sides of the support seat are fixedly connected to the fixing frame. The limit plate is slidably arranged on the fixing frame. Both parts of the limit plate are provided with multiple card holes that match the card rod.
[0008] Further description is given, and an elastic member is included, and the elastic member is connected between the limiting plate and the fixing frame.
[0009] Further description is made, and a fixing seat and a contact block are also included. The bottom end of the telescopic support frame is provided with a fixing seat, and the contact block is rotatably mounted on the fixing seat.
[0010] It is further explained that the side of the contact block that contacts the ground is provided with an anti-slip bump.
[0011] Further description is provided, and a protective tube is provided on the fixed end of the telescopic support frame for protecting the shock-absorbing spring and the damping rod.
[0012] Further description, a warning light is also included, and a warning light is installed on the top of the damping rod.
[0013] Compared with the existing technology, the utility model has the following technical effects: 1. By adopting rubber blocks, shock-absorbing springs and dampers to form an excellent shock-absorbing device, the impact of external vibrations on the detector can be effectively reduced, thereby ensuring the accuracy and reliability of data collection and improving the efficiency and accuracy of geological exploration.
[0014] 2. The fixing operation of the unfolded telescopic support frame is realized by cooperating with the clamping rod and the clamping hole, preventing the support frame from rotating or shifting at will during operation, thereby ensuring the stability of the device.
[0015] 3. By adding a rotatable contact block design, the contact block can be rotated to the appropriate angle and kept close to the ground to provide additional grip for the telescopic support frame, ensuring that the device can stand firmly in various terrain conditions, further improving the adaptability and reliability of the device. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 It is a schematic diagram of the three-dimensional structure of the utility model.
[0017] Figure 2 It is a three-dimensional structural diagram of components such as the support seat, telescopic support frame and damping rod of the utility model.
[0018] Figure 3 It is a three-dimensional structural diagram of the components such as the fixing frame, the limiting plate and the fixing seat of the utility model.
[0019] Figure 4 It is a three-dimensional structural diagram of the fixing frame, the limiting plate and the elastic member of the utility model.
[0020] The markings of the components in the accompanying drawings are as follows: 1. Support seat, 2. Telescopic support frame, 201, clamping rod, 3. Motor, 4. Winding wheel, 5. Connecting rope, 6. Detector, 7. Rubber block, 8. Damping rod, 9. Shock-absorbing spring, 10. Fixed frame, 11. Limiting plate, 12. Elastic part, 13. Fixed seat, 14. Contact block, 15. Protective tube, 16. Warning light. DETAILED DESCRIPTION
[0021] First of all, it should be noted that in the various described embodiments, identical components are provided with identical reference numerals or identical component names, wherein the disclosure contained throughout the entire description can be transferred to the same components having the same reference numerals or identical component names. Positional designations selected in the description, such as top, bottom, lateral, etc., also refer to the directly described and illustrated figures and are transferred to the new position in the event of a change in position.
[0022] Example 1: Please refer to Figure 1 and Figure 2 , a coal geological detection device, including a support base 1, a telescopic support frame 2, a clamping rod 201, a motor 3, a winding wheel 4, a connecting rope 5, a detector 6, a shock absorbing device, a protective tube 15 and a warning light 16. The telescopic support frame 2 is rotatably installed at the bottom of the support base 1 through a rotating shaft. Both sides of the telescopic support frame 2 are fixedly connected with a clamping rod 201. The rear part of the support base 1 is equipped with a motor 3, and the middle part of the support base 1 is equipped with a winding wheel 4 connected to the output shaft of the motor 3. A connecting rope 5 is wrapped around the surface of the winding wheel 4, and one end of the connecting rope 5 is connected to the detector 6. The winding wheel 4 is driven by the motor 3 to rotate and the connecting rope 5 is released, and the detector 6 is moved underground for geological detection. The shock absorbing device is installed on the telescopic support The support frame 2 is provided with a shock absorbing device consisting of a rubber block 7, a damping rod 8 and a shock absorbing spring 9. The main principle is to use the damping effect of the shock absorbing spring 9 and the damping rod 8 to reduce or eliminate the impact and vibration of the device. The telescopic end and the fixed end of the telescopic support frame 2 are respectively fixed with rubber blocks 7, and a damping rod 8 is installed between each adjacent rubber block 7. The damping rod 8 is provided with a shock absorbing spring 9. The fixed end of the telescopic support frame 2 is provided with a protective tube 15 for protecting the shock absorbing spring 9 and the damping rod 8 to prevent the intrusion of impurities such as dust and moisture in the external environment, thereby extending the service life of the shock absorbing system. A warning light 16 is installed on the top of the damping rod 8 for providing a visual warning at night or in an environment with low visibility to remind people around to pay attention to safety.
[0023] First, place the device at the location where geological exploration is required. Ensure that the device stands firmly on the ground by adjusting the expansion angle of the telescopic support frame 2. Once the device is stably in place, start the motor 3. The operation of the motor 3 drives the winding wheel 4 connected to it to rotate. As the winding wheel 4 rotates, the connecting rope 5 wrapped around it is gradually released, causing the detector 6 to descend vertically into the ground and begin to perform the geological exploration task. During the descent, the detector 6 will collect various geological information, such as stratum structure, mineral composition, etc., and transmit this data back to the ground control center or storage device for subsequent analysis. During the detection period, if the device shakes due to uneven ground or other external force interference, the shock-absorbing spring 9 will deform and cooperate with the damping rod 8 to absorb vibration, thereby maintaining the stable operation of the detector 6 and improving the detection accuracy. After completing the detection task, control the motor 3 to reverse, so that the winding wheel 4 rotates in the opposite direction to recycle the connecting rope 5 until the detector 6 is safely pulled back to the surface.
[0024] Example 2: Based on Example 1, please refer to Figure 3 and Figure 4 , also includes a fixing frame 10, a limiting plate 11 and an elastic member 12. The front and rear sides of the support seat 1 are fixedly connected to the fixing frame 10. The limiting plate 11 is slidably provided on the fixing frame 10. The left and right parts of the limiting plate 11 are provided with seven card holes that match the card rod 201. By inserting the card rod 201 into the corresponding card holes, the unfolded telescopic support frame 2 can be fixed to prevent the support frame from rotating and displacing at will. An elastic member 12 is connected between the limiting plate 11 and the fixing frame 10 to provide a reset force to the limiting plate 11.
[0025] See also Figure 3 , also includes a fixing seat 13 and a contact block 14. The bottom end of the telescopic support frame 2 is provided with a fixing seat 13, and the contact block 14 is rotatably mounted on the fixing seat 13. By rotating the contact block 14 to an appropriate angle, it is close to the ground, providing additional grip to the telescopic support frame 2, ensuring that the device can stand firmly under various terrain conditions. In addition, the side of the contact block 14 that contacts the ground is provided with an anti-slip bump. The design of the anti-slip bump increases the friction between the contact block 14 and the ground.
[0026] The above embodiments are intended only to illustrate the technical concepts and features of the present invention. Their purpose is to enable those familiar with the art to understand the contents of the present invention and implement them accordingly. They are not intended to limit the scope of protection of the present invention. Any equivalent changes or modifications based on the spirit of the present invention are intended to be included in the scope of protection of the present invention.
Claims
1. A coal geological detection device, comprising a support base (1), a telescopic support frame (2), a clamping rod (201), a motor (3), a reel (4), a connecting rope (5) and a detector (6), wherein the bottom of the support base (1) is rotatably mounted with the telescopic support frame (2), both sides of the telescopic support frame (2) are fixedly connected with the clamping rod (201), the rear of the support base (1) is mounted with the motor (3), the middle of the support base (1) is mounted with a reel (4) connected to the output shaft of the motor (3), a connecting rope (5) is wound around the surface of the reel (4), one end of the connecting rope (5) is connected with the detector (6), and is used for geological detection work, characterized in that The invention also includes a shock absorbing device, which is installed on the telescopic support frame (2), and the shock absorbing device is composed of a rubber block (7), a damping rod (8) and a shock absorbing spring (9), wherein the telescopic end and the fixed end of the telescopic support frame (2) are respectively fixed with rubber blocks (7), a damping rod (8) is installed between each adjacent rubber block (7), and a shock absorbing spring (9) is sleeved on the damping rod (8).
2. A coal geological exploration device according to claim 1, characterized in that: It also includes a fixing frame (10) and a limiting plate (11), wherein both sides of the support seat (1) are fixedly connected to the fixing frame (10), and the limiting plate (11) is slidably arranged on the fixing frame (10), and both sides of the limiting plate (11) are provided with a plurality of clamping holes matching the clamping rod (201).
3. A coal geological exploration device according to claim 2, characterized in that: It also includes an elastic member (12), and the elastic member (12) is connected between the limiting plate (11) and the fixing frame (10).
4. A coal geological exploration device according to claim 3, characterized in that: It also includes a fixing seat (13) and a contact block (14). The bottom end of the telescopic support frame (2) is provided with a fixing seat (13), and the contact block (14) is rotatably mounted on the fixing seat (13).
5. A coal geological exploration device according to claim 4, characterized in that: The side of the contact block (14) that contacts the ground is provided with an anti-slip bump.
6. A coal geological exploration device according to claim 5, characterized in that: It also includes a protective tube (15), and a protective tube (15) for protecting the shock-absorbing spring (9) and the damping rod (8) is provided on the fixed end of the telescopic support frame (2).
7. A coal geological exploration device according to claim 6, characterized in that: It also includes a warning light (16), and the warning light (16) is installed on the top end of the damping rod (8).