Aerial drilling rig
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- LIASI ELECTRICAL & MECHENICAL ENG CO LTD
- Filing Date
- 2025-08-22
- Publication Date
- 2026-08-07
AI Technical Summary
不仅存在登高工具转运/组装的麻烦,且在安全方面存在严重危险源,工作人员容易发生高空坠落,因此提供一种高空钻孔车
[0015] The beneficial effects of this utility model are as follows: Through the above-described structural design, in use, by setting a drilling device including an impact drill and a drive unit, as well as a control system for controlling the working state of the impact drill on the transfer vehicle of the high-altitude drilling vehicle, the impact drill's position can be flexibly adjusted according to the actual drilling location by using the drive unit to move the impact drill closer to or away from the transfer vehicle, thus meeting the drilling needs of different heights and positions. At the same time, the control system's function of controlling the working state of the impact drill achieves precise control of the drilling process, improving the accuracy and stability of drilling and ensuring the quality of drilling operations.
Smart Images

Figure CN224601993U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of high-altitude operation technology, and in particular to a high-altitude drilling vehicle. Background Technology
[0002] In many fields such as building construction and equipment installation, drilling operations are frequently required at heights. Traditional drilling methods mainly rely on manually erecting scaffolding or using simple lifting platforms to transport workers and drilling equipment to the working height. This not only presents the inconvenience of transporting / assembling tools at heights but also poses serious safety hazards, with workers prone to falls from heights. Therefore, a high-altitude drilling vehicle is needed. Utility Model Content
[0003] In order to overcome the shortcomings of the existing technology, this utility model provides a high-altitude drilling vehicle.
[0004] The technical solution adopted by this utility model to solve its technical problem is:
[0005] This utility model provides a high-altitude drilling vehicle, including a transfer vehicle; the transfer vehicle is equipped with a drilling device and a control system. The drilling device includes an impact drill and a drive component for driving the impact drill to approach or move away from the transfer vehicle, and the control system is used to control the working state of the impact drill.
[0006] Preferably, the drilling device includes a telescopic rod mounted on a transfer vehicle, with the impact drill positioned at the end of the telescopic rod furthest from the transfer vehicle. The telescopic rod is driven by a drive mechanism to bring the impact drill closer to or away from the transfer vehicle. By setting the telescopic rod and positioning the impact drill at one end, and utilizing the drive mechanism to move the telescopic rod, the impact drill can be flexibly moved closer to or away from the transfer vehicle. This allows for convenient adjustment of the impact drill's position to adapt to drilling requirements at different heights and locations, improving the flexibility and applicability of drilling operations.
[0007] Preferably, the driving component is an air compressor, and the telescopic rod is a pneumatic telescopic rod used in conjunction with the air compressor. By using an air compressor as the driving component in conjunction with the pneumatic telescopic rod, the telescopic rod can be driven to extend and retract pneumatically. Pneumatic drive has the advantages of high power, fast response speed, and stable operation, which can drive the impact drill to move more stably and reliably, ensuring the stable progress of drilling operations.
[0008] Preferably, the end of the telescopic rod furthest from the impact drill is provided with a support foot. There are two support feet, and the two ends of the support feet are respectively used to mount the telescopic rod and the transfer vehicle. The function of providing two support feet at one end of the telescopic rod and connecting the telescopic rod and the transfer vehicle is to enhance the connection stability between the telescopic rod and the transfer vehicle, provide more stable support for the telescopic rod and the impact drill, reduce the shaking caused by impact force during drilling, and improve the drilling accuracy and quality.
[0009] Preferably, the air compressor is equipped with an air outlet, and the air outlet is equipped with a connecting pipe. The air compressor is connected to the pneumatic telescopic rod through the connecting pipe to form a gas supply path. By setting an air outlet and connecting pipe on the air compressor to connect the pneumatic telescopic rod and form a gas supply path, the compressed air generated by the air compressor is stably delivered to the pneumatic telescopic rod, providing continuous power support for the extension and retraction of the telescopic rod, ensuring that the telescopic rod can work normally, and thus ensuring the effectiveness of the position adjustment function of the impact drill.
[0010] Preferably, the air compressor is equipped with a pressure gauge and a pressure relief valve. The pressure gauge measures the pressure of the compressed air inside the air compressor, while the pressure relief valve is used for manual or automatic pressure relief to provide overpressure protection. The function of installing a pressure gauge and a pressure relief valve on the air compressor is to enable real-time monitoring of the pressure inside the air compressor via the pressure gauge, allowing operators to easily monitor the system pressure status. At the same time, the pressure relief valve can automatically relieve pressure when it is too high, preventing damage to the equipment and system due to excessive pressure, and ensuring the safe operation of the air compressor and the entire drilling device.
[0011] Preferably, the transfer vehicle includes a support plate for supporting / installing the drilling device and control system. A self-locking wheel is provided on the side of the support plate away from the drilling device and control system. A handle is also rotatably provided on the support plate to allow the operator to move the transfer vehicle. The support plate serves to support the drilling device and control system, and the self-locking wheel and rotatable handle on its underside facilitate the movement and fixation of the transfer vehicle. The self-locking wheel can lock the position of the transfer vehicle when needed to prevent it from moving arbitrarily, while the handle allows the operator to push or pull the transfer vehicle, improving the mobility and operational flexibility of the equipment.
[0012] Preferably, the control system is an electrical control cabinet, and the drive unit and impact drill are electrically connected to the electrical control cabinet. The electrical control cabinet is equipped with control components for controlling the drive unit and impact drill. By designing the control system as an electrical control cabinet and electrically connecting the drive unit and impact drill to it, and by setting up the control components, the working status of the drive unit and impact drill can be centrally controlled through the electrical control cabinet. Operators can conveniently control the start, stop, and operating parameters of the equipment through the control components, thereby improving the ease of operation and control accuracy of the equipment.
[0013] Preferably, the control system is equipped with a cover to protect the control components and their top. This cover protects the control components and their top from external dust, rain, debris, etc., preventing damage or malfunction caused by external factors, extending the service life of the control components, and ensuring the normal operation of the equipment.
[0014] Preferably, the dimension of the cover at the end furthest from the control system along the thickness direction of the control system is greater than the dimension of the cover at the end closest to the control system along the thickness direction of the control system. Designing the cover so that the dimension at the end furthest from the control system is greater than the dimension at the end closest to the control system expands the protection range of the cover and better protects the control components. At the same time, this shape design may be more conducive to the sliding off of liquids such as rainwater, reducing the accumulation of liquid on the cover and further improving the protection effect on the control components.
[0015] The beneficial effects of this utility model are as follows: Through the above-described structural design, in use, by setting a drilling device including an impact drill and a drive unit, as well as a control system for controlling the working state of the impact drill on the transfer vehicle of the high-altitude drilling vehicle, the impact drill's position can be flexibly adjusted according to the actual drilling location by using the drive unit to move the impact drill closer to or away from the transfer vehicle, thus meeting the drilling needs of different heights and positions. At the same time, the control system's function of controlling the working state of the impact drill achieves precise control of the drilling process, improving the accuracy and stability of drilling and ensuring the quality of drilling operations. Attached Figure Description
[0016] To more clearly illustrate the technical solutions in the embodiments of this utility model, the drawings used in the following description of the embodiments will be briefly introduced. The drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0017] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0018] Figure 1 This is a structural schematic diagram of the high-altitude drilling vehicle of this utility model;
[0019] Figure 2 This is a schematic diagram of the structure of the transfer vehicle of this utility model;
[0020] Figure 3 This is a structural schematic diagram of the impact drill and telescopic rod of this utility model;
[0021] Figure 4 This is a structural schematic diagram of the magnet component of this utility model;
[0022] Figure 5 This is a schematic diagram of the gripper structure of this utility model;
[0023] Figure 6 This is a schematic diagram of the structure of the cover of this utility model.
[0024] The reference numerals in the figures include:
[0025] 1. Transfer vehicle; 2. Drilling device; 3. Control system; 11. Bearing plate; 12. Handle; 13. Self-locking wheel; 21. Impact drill; 22. Telescopic rod; 23. Drive unit; 231. Pressure gauge; 232. Pressure relief valve; 233. Air outlet; 234. Connecting pipe; 24. Line; 25. Support leg; 31. Control unit; 32. Cover; 321. Inclined part; 41. Magnetic component; 42. Gripper. Detailed Implementation
[0026] Reference Figures 1 to 4 A high-altitude drilling vehicle includes a transfer vehicle 1; the transfer vehicle 1 is equipped with a drilling device 2 and a control system 3. The drilling device 2 includes an impact drill 21 and a drive component 23 for driving the impact drill 21 to approach or move away from the transfer vehicle 1. The impact drill 21 and the drive component 23 are both electrically connected to the control system 3. The control system 3 is used to control the working state of the impact drill 21 and the drive component 23.
[0027] With the above-described structural configuration, during use, a drilling device 2, including an impact drill 21 and a drive unit 23, and a control system 3 for controlling the working state of the impact drill 21 are installed on the transfer vehicle 1 of the high-altitude drilling vehicle. The drive unit 23 drives the impact drill 21 to move closer to or away from the transfer vehicle 1, which enables flexible adjustment of the position of the impact drill 21 according to the actual drilling position, meeting the drilling needs of different heights and positions. At the same time, the control system 3 controls the working state of the impact drill 21, which enables precise control of the drilling process, improves the accuracy and stability of drilling, and ensures the quality of drilling operations.
[0028] Specifically, a cable 24 is provided between the impact drill 21 and the control system 3. The cable 24 is made of a flexible cable. In other embodiments, a retractable cable reel that is electrically connected to the drilling device 2 and the control system 3 can also be provided on the transfer vehicle 1.
[0029] Specifically, the control system 3 is an electrical control cabinet, and a connecting component is provided between the electrical control cabinet and the handle 12. The connecting component is used so that the handle 12 can be stably installed on the electrical control cabinet when not in use.
[0030] Specifically, the connecting components include a magnet 41 installed on the electrical control cabinet, and the end of the handle 12 away from the transfer vehicle 1 is made of ferromagnetic material or the end of the handle 12 away from the transfer vehicle 1 is provided with ferromagnetic material, which is used to attract the magnet 41.
[0031] Specifically, the connecting components include grippers 42 mounted on the electrical control cabinet, and the end of the handle 12 away from the transfer vehicle 1 is used to engage with the grippers 42.
[0032] Specifically, the drilling device 2 includes a telescopic rod 22 mounted on the transfer vehicle 1, and an impact drill 21 mounted at the end of the telescopic rod 22 away from the transfer vehicle 1. The telescopic rod 22 is driven by a drive member 23 to move the impact drill 21 closer to or further away from the transfer vehicle 1. By setting the telescopic rod 22 and mounting the impact drill 21 at one end of it, and by using the drive member 23 to drive the telescopic rod 22, the impact drill 21 can be flexibly moved closer to or further away from the transfer vehicle 1. This allows for convenient adjustment of the position of the impact drill 21 to adapt to drilling requirements at different heights and positions, thereby improving the flexibility and applicability of drilling operations.
[0033] Specifically, the telescopic pole 22 is a three-section pneumatic telescopic pole, with each section being 2.5 meters long and extending up to 7.5 meters.
[0034] Specifically, the drive component 23 is an air compressor, and the telescopic rod 22 is a pneumatic telescopic rod used in conjunction with the air compressor. By using the air compressor as the drive component 23 in conjunction with the pneumatic telescopic rod, the telescopic rod 22 can be driven to extend and retract pneumatically. Pneumatic drive has the advantages of high power, fast response speed and stable operation, which can drive the impact drill 21 to move more stably and reliably, ensuring the stable operation of drilling.
[0035] Specifically, the end of the telescopic rod 22 away from the impact drill 21 is provided with a support foot 25. There are two support feet 25, and the two ends of the support feet 25 are respectively used to mount the telescopic rod 22 and the transfer vehicle 1. The function of providing two support feet 25 at one end of the telescopic rod 22 and connecting the telescopic rod 22 and the transfer vehicle 1 is to enhance the connection stability between the telescopic rod 22 and the transfer vehicle 1, provide more stable support for the telescopic rod 22 and the impact drill 21, reduce the shaking caused by the impact force during drilling, and improve the drilling accuracy and quality.
[0036] Specifically, the positions of the two support feet 25 on the transfer vehicle 1 are not collinear with the positions of the telescopic rod 22 on the transfer vehicle 1.
[0037] Specifically, the two support feet 25 and the telescopic rod 22 are fixed on the transfer vehicle 1 by external bolts.
[0038] Specifically, the air compressor is provided with an air outlet 233, and the air outlet 233 is provided with a connecting pipe 234. The air compressor is connected to the pneumatic telescopic rod through the connecting pipe 234 to form a gas supply path. By setting the air outlet 233 and the connecting pipe 234 on the air compressor to connect the pneumatic telescopic rod to form a gas supply path, the compressed air generated by the air compressor is stably delivered to the pneumatic telescopic rod, providing continuous power support for the extension and retraction of the telescopic rod 22, ensuring that the telescopic rod 22 can work normally, and thus ensuring the effectiveness of the position adjustment function of the impact drill 21.
[0039] Specifically, the air compressor is equipped with a pressure gauge 231 and a pressure relief valve 232. The pressure gauge 231 is used to measure the pressure of the compressed air inside the air compressor, and the pressure relief valve 232 is used for manual or automatic pressure relief to provide overpressure protection. The function of installing the pressure gauge 231 and the pressure relief valve 232 on the air compressor is to enable real-time monitoring of the pressure inside the air compressor through the pressure gauge 231, which makes it easy for operators to grasp the system pressure status; at the same time, the pressure relief valve 232 can automatically relieve pressure when the pressure is too high, preventing damage to the equipment and system due to excessive pressure, and ensuring the safe operation of the air compressor and the entire drilling device 2.
[0040] Specifically, the transfer vehicle 1 includes a support plate 11, which is used to support / install the drilling device 2 and the control system 3. A self-locking wheel 13 is provided on the side of the support plate 11 away from the drilling device 2 and the control system 3. A handle 12 is also rotatably provided on the support plate 11 so that the operator can move the transfer vehicle 1. The support plate 11 is used to support the drilling device 2 and the control system 3, and the self-locking wheel 13 and the rotatably provided handle 12 on its lower side realize the convenience of moving and fixing the transfer vehicle 1. The self-locking wheel 13 can lock the position of the transfer vehicle 1 when needed to prevent it from moving at will, while the handle 12 makes it easy for the operator to push or pull the transfer vehicle 1, which improves the mobility and operational flexibility of the equipment.
[0041] Specifically, the handle 12 is U-shaped, and the length of the handle 12 is equal to the length of the control system 3.
[0042] Specifically, in other embodiments, a limiting block may also be provided on the support plate 11. The limiting block is set on the rotation path of the handle 12 to limit the rotation angle of the handle 12.
[0043] Specifically, the control system 3 is located on the support plate 11 at one end near the handle 12.
[0044] Specifically, the control system 3 is an electrical control cabinet. The drive unit 23 and the impact drill 21 are both electrically connected to the electrical control cabinet. The electrical control cabinet is equipped with a control unit 31 for controlling the drive unit 23 and the impact drill 21. By designing the control system 3 as an electrical control cabinet and electrically connecting the drive unit 23 and the impact drill 21 to it, and setting the function of the control unit 31, the working status of the drive unit 23 and the impact drill 21 can be centrally controlled through the electrical control cabinet. Operators can conveniently control the start, stop, and operating parameters of the equipment through the control unit 31, thereby improving the ease of operation and control accuracy of the equipment.
[0045] Specifically, in this embodiment, the control component 31 is a pneumatic lifting rod control handle, and the electrical control cabinet is also equipped with an impact drill start / stop button, an emergency stop button, and a main electrical switch.
[0046] Specifically, the magnet 41 is a neodymium magnet, and the handle 12 is made of or includes ferromagnetic material. The handle 12 can be magnetically attached to the electrical control cabinet via the magnet 41. The magnet 41 can be configured to fit the shape of the handle 12, such as by setting the magnet 41 on a semi-circular groove wall. A magnetic shielding component is also required between the magnet 41 and the electrical control cabinet.
[0047] Specifically, the control system 3 is equipped with a cover 32, which is used to cover and protect the control component 31 and its top. The cover 32 on the control system 3 protects the control component 31 and its top, preventing external dust, rain, debris and other objects from entering the control component 31, avoiding damage or malfunction of the control component 31 due to external factors, extending the service life of the control component 31 and ensuring the normal operation of the equipment.
[0048] Specifically, the dimension of the cover 32 away from the control system 3 along the thickness direction of the control system 3 is greater than the dimension of the cover 32 near the control system 3 along the thickness direction of the control system 3. Designing the cover 32 so that the dimension of the end away from the control system 3 is greater than the dimension of the end near the control system 3 expands the protection range of the cover 32 and better protects the control component 31. At the same time, this shape design may be more conducive to the sliding off of liquids such as rainwater, reducing the accumulation of liquid on the cover 32, and further improving the protection effect on the control component 31.
[0049] Specifically, the cover 32 includes an inclined portion 321, which is oriented toward the impact drill 21.
[0050] The above description provides one or more embodiments in conjunction with specific content, but it is not intended that the specific implementation of this utility model is limited to these descriptions. Any methods or structures that are similar to or identical to those of this utility model, or any technical deductions or substitutions made based on the concept of this utility model, should be considered within the scope of protection of this utility model.
Claims
1. A high-altitude drilling vehicle, including a transfer vehicle (1); characterized in that: The transfer vehicle (1) is equipped with a drilling device (2) and a control system (3). The drilling device (2) includes an impact drill (21) and a drive unit (23) for driving the impact drill (21) to approach or move away from the transfer vehicle (1). The impact drill (21) is electrically connected to the control system (3) so that the control system (3) controls the working state of the impact drill (21). The transfer vehicle (1) is also equipped with a handle (12). The handle (12) is rotatably set at one end of the length direction of the transfer vehicle (1). The handle (12) is used to facilitate the operator to move the transfer vehicle (1).
2. The high-altitude drilling vehicle according to claim 1, characterized in that: The control system (3) is an electrical control cabinet. A connection component is provided between the electrical control cabinet and the handle (12). The connection component is used so that the handle (12) can be stably installed on the electrical control cabinet when it is not in use.
3. The high-altitude drilling vehicle according to claim 2, characterized in that: The connecting components include a magnet (41) installed on the electrical control cabinet, and a handle (12) with one end away from the transfer vehicle (1) made of ferromagnetic material or the handle (12) with one end away from the transfer vehicle (1) provided with ferromagnetic material, which is used to attract the magnet (41).
4. The high-altitude drilling vehicle according to claim 2, characterized in that: The connecting components include grippers (42) mounted on the electrical control cabinet, and the end of the handle (12) away from the transfer vehicle (1) is used to engage with the grippers (42).
5. The high-altitude drilling vehicle according to claim 1, characterized in that: The drilling device (2) includes a telescopic rod (22) mounted on a transfer vehicle (1), and an impact drill (21) mounted at the end of the telescopic rod (22) away from the transfer vehicle (1). The telescopic rod (22) is driven via a drive member (23) to move the impact drill (21) closer to or away from the transfer vehicle (1).
6. The high-altitude drilling vehicle according to claim 5, characterized in that: The drive unit (23) is an air compressor, and the telescopic rod (22) is a pneumatic telescopic rod used in conjunction with the air compressor.
7. The high-altitude drilling vehicle according to claim 6, characterized in that: The air compressor is provided with an air outlet (233), and the air outlet (233) is provided with a connecting pipe (234). The air compressor is connected to the pneumatic telescopic rod through the connecting pipe (234) to form a gas supply path.
8. The high-altitude drilling vehicle according to claim 6, characterized in that: The air compressor is equipped with a pressure gauge (231) and a pressure relief valve (232). The pressure gauge (231) is used to display the pressure value of the compressed air inside the air compressor, and the pressure relief valve (232) is used for manual or automatic pressure relief to provide overpressure protection.
9. The high-altitude drilling vehicle according to claim 6, characterized in that: Both the drive unit (23) and the impact drill (21) are electrically connected to the control system (3). The control system (3) is equipped with a control unit (31) for controlling the drive unit (23) and the impact drill (21). The control system (3) is equipped with a cover (32) for covering and protecting the control unit (31) and the top of the control unit (31).
10. The high-altitude drilling vehicle according to claim 9, characterized in that: The dimension of the cover (32) away from the control system (3) along the thickness direction of the control system (3) is greater than the dimension of the cover (32) near the control system (3) along the thickness direction of the control system (3).