Mine hoisting cable flaw detection structure

By introducing supporting columns, protective shells, motors, rotating shafts and rockers into the mine lifting structure, adjusting the position and tension of the exploration rope, and using wire material and real-time monitoring devices, the instability and vulnerability of the traditional mine lifting structure are solved, achieving higher safety and detection accuracy.

CN223166623UActive Publication Date: 2025-07-29YANTAI MOUJIN MINING CO LTD
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Patent Information

Application Number
CN202421688769.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-17
Publication Date
2025-07-29
Estimated Expiration
2034-07-17

AI Technical Summary

Technical Problem

The traditional mine lifting cable flaw detection structure lacks the function of adjusting the position and tension of the exploration rope, resulting in unstable detection, safety hazards, and the equipment is easily damaged and has a short service life.

Method used

The supporting column, protective shell, motor, rotary shaft and rocker are used to drive the rotation axis movement through the motor to adjust the position and tension of the exploration rope, and protect the rotation axis and exploration rope through the protective shell, combined with the detector placement groove, rubber ring, connector and camera for real-time monitoring, and use the exploration rope made of wire material.

Benefits of technology

It improves the stability and safety of the cable car system, extends the service life, ensures the accuracy of detection and the reliability of the equipment, avoids damage caused by vibration or collision, and provides good lighting to support detection tasks.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The utility model relates to the field of mines, and discloses a mine hoisting cable flaw detection structure which comprises a base, a groove is formed in the center of the upper end face of the base, a frame is arranged at the center of the upper end face of the base, a control panel is arranged at the position, close to one side, of the center of the front end face of the frame, and a supporting protection structure is arranged at the center of the inner wall of the frame. An exploration rope is wound around the center of the interior of the supporting and protecting structure, a rotator is fixedly connected to the center of the lower end face of the exploration rope, a connecting block is fixedly connected to the output end of the rotator, and a placement monitoring structure is arranged on the outer side wall and the lower end face of the connecting block. According to the cableway system, through the supporting column, the protective shell, the motor, the rotating shaft and the rocker, the motor drives the rotating shaft to move, the position and tension of the exploration rope are adjusted, the stability and safety of the cableway system are guaranteed, the service life is prolonged, and meanwhile the protective shell can protect the rotating shaft and the exploration rope from being affected by the external environment.
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Description

Technical Field

[0001] The utility model relates to the field of mine shafts, in particular to a mine hoisting rope flaw detection structure. Background Art

[0002] The mine hoisting rope is a key component for lifting and lowering hoisting equipment in the mine shaft. Rope flaw detection refers to the non-destructive testing of the hoisting rope to detect possible structural defects or damages. The ultrasonic testing equipment is used to detect the flaws of the mine hoisting rope to check whether there are defects such as cracks and deformations inside the rope body.

[0003] The traditional mine hoisting rope flaw detection structure may lack the function of adjusting the position and tension of the exploration rope, resulting in the inability to flexibly meet the requirements under different working conditions. There may be potential safety hazards, and the stability of the detector cannot be guaranteed, making it prone to detection errors and accidents, and requiring more frequent replacement or repair of components. Therefore, those skilled in the art have provided a mine hoisting rope flaw detection structure to solve the problems raised in the above background art. Summary of the Utility Model

[0004] The purpose of the utility model is to solve the deficiencies existing in the prior art, and a mine hoisting rope flaw detection structure is proposed. Through the support column, protective shell, motor, rotating shaft and rocker, the motor drives the rotating shaft to move to adjust the position and tension of the exploration rope, ensuring the stability and safety of the cableway system and extending the service life. At the same time, the setting of the protective shell can protect the rotating shaft and the exploration rope from the influence of the external environment. Through the detector placement groove, rubber ring, connector and camera, the state and operation of the cableway system can be monitored in real time, ensuring stability and accuracy and avoiding damage caused by vibration or collision. By using a steel wire as the material of the exploration rope, it has high strength and wear resistance, improving the service life and reliability of the equipment, and providing good lighting through the lighting lamp, making it more convenient to carry out the detection task of the mine shaft.

[0005] To achieve the above purpose, the utility model provides the following technical solution: A mine hoisting rope flaw detection structure, including a base, a groove is provided at the center of the upper end surface of the base, a frame is provided at the center of the upper end surface of the base, a control panel is provided at one side near the center of the front end surface of the frame, a support and protection structure is provided at the center of the inner wall of the frame, an exploration rope is wound around the center of the support and protection structure, a rotator is fixedly connected to the center of the lower end surface of the exploration rope, a connecting block is fixedly connected to the output end of the rotator, a placement and monitoring structure is provided on the outer side wall and the lower end surface of the connecting block, and a lighting lamp is provided at the center of the lower end surface of the placement and monitoring structure;

[0006] Through the above technical solutions, with the support columns, protective housing, motor, rotating shaft and rocker, the motor drives the movement of the rotating shaft to adjust the position and tension of the exploration rope, ensuring the stability and safety of the cableway system and extending its service life. At the same time, the setting of the protective housing can protect the rotating shaft and the exploration rope from the influence of the external environment. Through the detector placement slots, rubber rings, connectors and cameras, the state and operation of the cableway system can be monitored in real time, ensuring stability and accuracy and avoiding damage caused by vibration or collision. By using a steel wire as the material of the exploration rope, it has high strength and wear resistance, improving the service life and reliability of the equipment. And good lighting is provided by the lighting lamp, making it more convenient to carry out the exploration task of the mine.

[0007] Further, the support and protection structure includes support columns, a protective housing, a motor, a rotating shaft and a rocker. The support columns are arranged at the center of the inner wall of the lower part of the frame. The protective housing is arranged at the center of the lower end face of the support columns. The motor is arranged at the center of the front end face of the protective housing. The rocker is arranged at the center of the rear end face of the protective housing. The rotating shaft is arranged at the center of the inside of the protective housing. The exploration rope is wound around the outside of the rotating shaft;

[0008] Through the above technical solutions, when the mine hoisting rope is running, the motor drives the movement of the rocker through the rotating shaft, making the rocker generate a rotational movement. The rocker is connected to the exploration rope. When the rocker rotates, the position of the exploration rope can be changed, thereby adjusting the tension of the exploration rope. When the rotation angle of the rocker increases, the tension received by the exploration rope will also increase accordingly, and vice versa, thus ensuring the stability and safety of the cableway system. At the same time, the setting of the protective housing can protect the rotating shaft and the exploration rope from the influence of the external environment, extending their service life and facilitating the operator to carry out the exploration task of the mine.

[0009] Further, the placement and monitoring structure includes four detector placement slots, four rubber rings, a mounting block, four connectors and four cameras. The four detector placement slots are respectively arranged at the center of the front and rear end faces and the two side walls of the connection block. The four rubber rings are respectively arranged at the center of the inside of the four detector placement slots. The mounting block is arranged at the center of the lower end face of the connection block. The four connectors are respectively arranged at the center of the front and rear end faces and the two side walls of the four mounting blocks. The four cameras are respectively arranged at the center of the inside of the four connectors;

[0010] Through the above technical solutions, when the mine hoisting rope is running, the camera can monitor the state and operation of the cableway system in real time. The user places the detectors that need to be detected according to different requirements inside the detector placement slots and fixes the detectors through the rubber rings, ensuring stability and accuracy and avoiding damage caused by vibration or collision.

[0011] Furthermore, the output end of the motor penetrates through the front end face of the protective housing and extends into the interior of the protective housing, and the end is fixedly connected to one end of the rotating shaft. One end of the rocker penetrates through the rear end face of the protective housing and extends into the interior of the protective housing, and the end is fixedly connected to the other end of the rotating shaft;

[0012] Through the above technical solution, the motor, the rocker and the rotating shaft are closely connected and can move inside the protective housing.

[0013] Furthermore, four support legs are arranged in a rectangular array on the lower end face of the base;

[0014] Through the above technical solution, the equipment is more stable when placed, avoiding shaking or tilting caused by imbalance, and improving the safety and stability of the equipment.

[0015] Furthermore, a storage battery is provided at a position near the front of one side of the upper end face of the base;

[0016] Through the above technical solution, it is more convenient to replace and charge the battery of the equipment, and at the same time, a stable power supply is provided during the operation of the equipment to ensure the normal operation of the equipment.

[0017] Furthermore, the exploration rope is made of steel wire;

[0018] Through the above technical solution, the steel wire material has high strength and wear resistance, can better adapt to different environments and working conditions, and improves the service life and reliability of the equipment.

[0019] The utility model has the following beneficial effects:

[0020] 1. In the utility model, in the mine hoisting rope flaw detection structure, through the support column, the protective housing, the motor, the rotating shaft and the rocker, the motor drives the rotating shaft to move, adjusts the position and tension of the exploration rope, ensures the stability and safety of the cableway system, and extends the service life. At the same time, the setting of the protective housing can protect the rotating shaft and the exploration rope from the influence of the external environment.

[0021] 2. In the utility model, through the detector placement groove, the rubber ring, the connector and the camera, the state and operation of the cableway system can be monitored in real time, ensuring stability and accuracy, and avoiding damage due to vibration or collision.

[0022] 3. In the utility model, by using the exploration rope made of steel wire, it has high strength and wear resistance, improves the service life and reliability of the equipment, and provides good lighting through the lighting lamp, making it more convenient to carry out the exploration task of the mine. BRIEF DESCRIPTION OF THE DRAWINGS

[0023] Figure 1 is a three-dimensional view of a mine hoisting rope flaw detection structure proposed by the utility model;

[0024] Figure 2 A three-dimensional cross-sectional view of a mine hoisting rope flaw detection structure proposed by the present utility model;

[0025] Figure 3 A front cross-sectional view of a mine hoisting rope flaw detection structure proposed by the present utility model;

[0026] Figure 4 A side cross-sectional view of a mine hoisting rope flaw detection structure proposed by the present utility model.

[0027] Legend description:

[0028] 1. Base; 2. Groove; 3. Support leg; 4. Frame; 5. Support and protection structure; 501. Support column; 502. Protective shell; 503. Motor; 504. Rotating shaft; 505. Rocker; 6. Exploration rope; 7. Rotator; 8. Connecting block; 9. Placing and monitoring structure; 901. Detector placing groove; 902. Rubber ring; 903. Mounting block; 904. Connector; 905. Camera; 10. Lighting lamp; 11. Control panel; 12. Battery. Specific implementation manners

[0029] Next, the technical solutions of the present utility model will be clearly and completely described in conjunction with the drawings of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all of the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present utility model.

[0030] Refer to Figures 1-4, An embodiment provided by the present utility model: A flaw detection structure for a mine hoisting rope, comprising a base 1. A groove 2 is provided at the center of the upper end face of the base 1. A frame 4 is provided at the center of the upper end face of the base 1. A control panel 11 is provided at a position close to one side of the center of the front end face of the frame 4. A support and protection structure 5 is provided at the center of the inner upper wall of the frame 4. An exploration rope 6 is wound around the center of the support and protection structure 5. A rotator 7 is fixedly connected to the center of the lower end face of the exploration rope 6. The output end of the rotator 7 is fixedly connected to a connection block 8. A placement and monitoring structure 9 is provided on the outer side wall and the lower end face of the connection block 8. A lighting lamp 10 is provided at the center of the lower end face of the placement and monitoring structure 9. When the mine hoisting rope is running, the exploration rope 6 is connected to the support and protection structure 5 through the rotator 7 and the connection block 8. The support and protection structure 5 is used to adjust the position and tension of the exploration rope 6. At the same time, the placement and monitoring structure 9 is used to monitor the running state and safety of the ropeway, enhancing the safety and stability of the mine hoisting rope. At the same time, it improves the monitoring and management ability of the running state of the ropeway, realizing the monitoring and detection of the internal situation of the mine. Four support legs 3 are arranged in a rectangular pattern on the lower end face of the base 1, making the equipment more stable when placed, avoiding shaking or tilting caused by imbalance, and improving the safety and stability of the equipment. A storage battery 12 is provided at a position close to the front of one side of the upper end face of the base 1, making the equipment more convenient to replace and charge the battery. At the same time, it provides a stable power supply during the operation of the equipment to ensure the normal operation of the equipment. The exploration rope 6 is made of steel wire. The steel wire material has high strength and wear resistance, can better adapt to different environments and working conditions, and improves the service life and reliability of the equipment.

[0031] The support and protection structure 5 includes a support column 501, a protective shell 502, a motor 503, a rotating shaft 504 and a rocker 505. The support column 501 is arranged at the center of the lower inner wall of the frame 4. The protective shell 502 is arranged at the center of the lower end face of the support column 501. The motor 503 is arranged at the center of the front end face of the protective shell 502. The rocker 505 is arranged at the center of the rear end face of the protective shell 502. The rotating shaft 504 is arranged at the center of the interior of the protective shell 502. The exploration rope 6 is wound around the outside of the rotating shaft 504. When the mine hoisting rope is running, when the mine hoisting rope is running, the motor 503 drives the movement of the rocker 505 through the rotating shaft 504, causing the rocker 505 to perform a rotational movement. The rocker 505 is connected to the exploration rope 6. When the rocker 505 rotates, the position of the exploration rope 6 can be changed, thereby adjusting the tension of the exploration rope 6. When the rotation angle of the rocker 505 increases, the tension received by the exploration rope 6 will also increase accordingly, and vice versa, thus ensuring the stability and safety of the cableway system, thus ensuring the stability and safety of the cableway system. At the same time, the setting of the protective shell 502 can protect the rotating shaft 504 and the exploration rope 6 from the influence of the external environment, extend their service life, and facilitate the operator to perform the detection task of the mine. The output end of the motor 503 penetrates the front end face of the protective shell 502 and leads to the interior of the protective shell 502, and the end is fixedly connected to one end of the rotating shaft 504. One end of the rocker 505 penetrates the rear end face of the protective shell 502 and leads to the interior of the protective shell 502, and the end is fixedly connected to the other end of the rotating shaft 504, making the motor 503, the rocker 505 and the rotating shaft 504 closely connected and capable of moving inside the protective shell 502.

[0032] The placement monitoring structure 9 includes four detector placement slots 901, four rubber rings 902, a mounting block 903, four connectors 904 and four cameras 905. The four detector placement slots 901 are respectively arranged at the center of the front and rear end faces and the two side walls of the connection block 8. The four rubber rings 902 are respectively arranged at the center of the interiors of the four detector placement slots 901. The mounting block 903 is arranged at the center of the lower end face of the connection block 8. The four connectors 904 are respectively arranged at the center of the front and rear end faces and the two side walls of the four mounting blocks 903. The four cameras 905 are respectively arranged at the center of the interiors of the four connectors 904. When the mine hoisting rope is running, the cameras 905 can monitor the state and operation of the cableway system in real time. The user places the detectors that need to be detected according to different requirements inside the detector placement slots 901 and fixes the detectors through the rubber rings 902 to ensure stability and accuracy and avoid damage due to vibration or collision.

[0033] Working principle: When the mine hoisting rope is running, the motor 503 drives the movement of the rocker 505 through the rotating shaft 504, causing the rocker 505 to rotate. The rocker 505 is connected to the exploration rope 6. When the rocker 505 rotates, the position of the exploration rope 6 can be changed, thereby adjusting the tension of the exploration rope 6. When the rotation angle of the rocker 505 increases, the tension received by the exploration rope 6 will also increase accordingly, and vice versa, thus ensuring the stability and safety of the cableway system. At the same time, the setting of the protective shell 502 can protect the rotating shaft 504 and the exploration rope 6 from the influence of the external environment, extend their service life, and facilitate the operator to perform the detection task of the mine. The rotating block 7 drives the connecting block 8 to rotate, and the connecting block 8 drives the mounting block 903, so that the camera 905 rotates inside the mine to monitor the state and operation of the cableway system in real time. The user places the detectors that need to be detected according to different requirements inside the detector placement groove 901 and fixes the detectors through the rubber ring 902 to ensure the stability and accuracy. And through the rotation of the rotating block 7, different detectors detect the inside of the mine in all directions. The rubber ring 902 prevents the detectors from being damaged due to vibration or collision, avoiding affecting the detection.

[0034] Finally, it should be noted that the above are only the preferred embodiments of the present invention and are not used to limit the present invention. Although the present invention has been described in detail with reference to the foregoing embodiments, for those skilled in the art, they can still modify the technical solutions described in the foregoing embodiments, or perform equivalent replacements for some of the technical features. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included in the protection scope of the present invention.

Claims

1. A mine hoisting rope flaw detection structure, including a base (1), characterized in that: A groove (2) is provided at the center of the upper end face of the base (1). A frame (4) is provided at the center of the upper end face of the base (1). A control panel (11) is provided at a position close to one side of the center of the front end face of the frame (4). A support and protection structure (5) is provided at the center of the inner wall of the upper part of the frame (4). An exploration rope (6) is wound around the center of the support and protection structure (5). A spinner (7) is fixedly connected to the center of the lower end face of the exploration rope (6). A connecting block (8) is fixedly connected to the output end of the spinner (7). A placement and monitoring structure (9) is provided on the outer wall and the lower end face of the connecting block (8). A lighting lamp (10) is provided at the center of the lower end face of the placement and monitoring structure (9).

2. The flaw detection structure of a mine hoisting rope according to claim 1, wherein: The support and protection structure (5) includes a support column (501), a protective shell (502), a motor (503), a rotating shaft (504) and a rocker (505). The support column (501) is provided at the center of the inner wall of the lower part of the frame (4). The protective shell (502) is provided at the center of the lower end face of the support column (501). The motor (503) is provided at the center of the front end face of the protective shell (502). The rocker (505) is provided at the center of the rear end face of the protective shell (502). The rotating shaft (504) is provided at the center of the inside of the protective shell (502). The exploration rope (6) is wound around the outside of the rotating shaft (504).

3. The flaw detection structure of a mine hoisting rope according to claim 1, characterized in that: The placement and monitoring structure (9) includes four detector placement grooves (901), four rubber rings (902), a mounting block (903), four connectors (904) and four cameras (905). The four detector placement grooves (901) are respectively provided at the centers of the front and rear end faces and the two side walls of the connecting block (8). The four rubber rings (902) are respectively provided at the centers of the inside of the four detector placement grooves (901). The mounting block (903) is provided at the center of the lower end face of the connecting block (8). The four connectors (904) are respectively provided at the centers of the front and rear end faces and the two side walls of the four mounting blocks (903). The four cameras (905) are respectively provided at the centers of the inside of the four connectors (904).

4. A mine hoisting rope flaw detection structure according to claim 2, characterized in that: The output end of the motor (503) passes through the front end face of the protective shell (502) and extends into the inside of the protective shell (502), and the end part is fixedly connected to one end of the rotating shaft (504). One end of a rocker (505) passes through the rear end face of the protective shell (502) and extends into the inside of the protective shell (502), and the end part is fixedly connected to the other end of the rotating shaft (504).

5. The flaw detection structure of a mine hoisting rope according to claim 1, characterized in that: Four support legs (3) are arranged in a rectangular pattern on the lower end face of the base (1).

6. A flaw detection structure for a mine hoisting rope according to claim 1, characterized in that: A storage battery (12) is provided at a position close to the front on one side of the upper end face of the base (1).

7. A flaw detection structure for a mine hoisting rope according to claim 1, characterized in that: The exploration rope (6) is made of steel wire.