Signal receiver of automation equipment
By introducing automatic cleaning and shock absorption mechanisms into the signal receiver, the problems of dust blockage and vibration of the heat dissipation port are solved, the stable operation and efficient connection of the equipment are achieved, and troubleshooting is simplified.
Patent Information
- Application Number
- CN202510536862.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-27
- Publication Date
- 2025-08-01
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
During use, dust accumulates in the heat dissipation port, which affects the heat dissipation effect, affecting the stable operation of the equipment.
A signal receiver for automation equipment is designed, including a heat dissipation mechanism, a shock absorber and an auxiliary wire pulling mechanism. The heat dissipation port is automatically cleaned with a cleaning brush, the shock absorber spring cushiones vibration, and the plug-in and unplug and troubleshooting of auxiliary wires through the clamp and the electric telescopic rod.
Ensure the heat dissipation effect of the receiver body, reduce vibration impact, improve connection efficiency, simplify troubleshooting, prevent dust clogging, and improve equipment stability and service life.
Smart Images

Figure CN120415461A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of signal receivers, and particularly to a signal receiver for an automated device. Background Art
[0002] Automated devices often need to communicate with a host computer or other devices wirelessly. For example, in the industrial Internet of Things, devices receive control instructions or sensor data through a radio signal receiver; in remote monitoring, devices need to use a radio signal receiver to receive signals from a control center to achieve real-time monitoring and adjustment of device status; in automated logistics, warehousing, or mobile robots, a radio signal receiver can cooperate with systems such as GPS and Beidou to achieve precise positioning. This makes the radio signal receiver play an important role in automated devices, especially in wireless communication, positioning, and data transmission scenarios.
[0003] In the prior art, during the use of a radio signal receiver, although it can well assist an automated device in receiving relevant signals to ensure the stable operation of the automated device, the radio signal receiver is usually directly placed on the top of a designated placement platform. As a result, a relatively large amount of dust and other impurities will accumulate at the top heat dissipation port of the radio signal receiver. A large amount of dust adhering to the heat dissipation port will affect the heat dissipation effect of the radio signal receiver, thereby causing the radio signal receiver to be easily affected by high temperature during use, interfering with the signal reception of the radio signal receiver, and also affecting the use of related automated devices. Summary of the Invention
[0004] The purpose of the present invention is to solve the drawbacks existing in the prior art and to propose a signal receiver for an automated device.
[0005] To achieve the above purpose, the present invention adopts the following technical solutions:
[0006] A signal receiver for an automated device includes a receiver body. A heat dissipation port is provided at the top of the receiver body. A plurality of connection ports, two network ports, and an antenna are provided on the back of the receiver body. A cleaning mechanism for automatically cleaning the heat dissipation port is provided at the top of the receiver body. The bottom of the receiver body is connected to a frame through a shock absorption mechanism provided. A rotating plate is provided on the back of the device body, and an auxiliary wire pulling mechanism for assisting in disconnecting the external connection wire from the plurality of connection ports and network ports is provided on the top of the rotating plate.
[0007] Optionally, the heat dissipation mechanism includes first chutes opened on the outer walls on both sides of the receiver body. First sliders are installed inside both first chutes. Moving rods are installed at the ends of both first sliders away from the first chutes.
[0008] Optionally, second sliding grooves are formed in the outer walls of the two moving rods close to each other, second sliding blocks are installed inside the two second sliding grooves, and a moving plate is jointly installed at the ends of the two second sliding blocks away from the second sliding grooves.
[0009] Optionally, two cleaning brushes are installed at the bottom of the moving plate, and an air outlet is arranged at the center of the bottom of the moving plate.
[0010] Optionally, the shock absorption mechanism includes a plurality of damping rods. The tops of the plurality of damping rods are connected to the bottom of the receiver body. A plurality of circular grooves are formed inside the frame body. The bottoms of the plurality of damping rods are installed inside the corresponding circular grooves, and shock absorption springs are sleeved on the outer walls of the plurality of damping rods.
[0011] Optionally, two first electric telescopic rods are installed on one inner wall of the frame body. A mounting seat is jointly installed at the telescopic ends of the two first electric telescopic rods. One end of the rotating plate is rotatably connected to the mounting seat.
[0012] Optionally, second electric telescopic rods are installed on the outer walls of both sides of the rotating plate. A rectangular plate is jointly installed at the telescopic ends of the two second electric telescopic rods. A plurality of rubber sleeves for placing connecting wires are installed on the top of the rectangular plate.
[0013] Optionally, the auxiliary wire pulling mechanism includes a third sliding groove formed on the top of the rotating plate. A third sliding block is installed inside the third sliding groove, and a rotating block is rotatably installed on the top of the third sliding block.
[0014] Optionally, a third electric telescopic rod is installed at one end of the rotating block away from the rotating part. A mounting plate is installed at the telescopic end of the third electric telescopic rod. A double-headed screw rod is rotatably installed inside the mounting plate.
[0015] Optionally, two moving seats are threadedly installed on the outer wall of the double-headed screw rod. Clamping plates are rotatably installed on the tops of the two moving seats.
[0016] The beneficial effects of the present invention are as follows:
[0017] 1. In this invention, through the provided heat dissipation mechanism, it can assist in air-cooling the receiver body to ensure that the receiver body is not affected by high temperature during use; and it can automatically clean the heat dissipation port with the cleaning brush at the bottom of the moving plate to avoid dust blocking the heat dissipation port and affecting the heat dissipation effect of the receiver body, ensuring the stable use of the receiver body and reducing the impact on automated equipment.
[0018] 2. In this invention, through the provided auxiliary wire pulling mechanism, it can automatically pull out the connection ends of the connecting wire and the network cable, which is convenient for protecting the receiver body in special situations, and can also assist the staff in quickly troubleshooting the cause of the failure of the receiver body subsequently, ensuring the stability of the receiver body during use.
[0019] 3. In the invention, during the use of the receiver body, the auxiliary wire-pulling mechanism is not required. With the mutual cooperation among its multiple components, it can drive two clamping plates to clamp and fix the rotating part of the antenna. As the rotating block rotates and adjusts on the top of the third slider, it can drive the rotating part of the antenna clamped and fixed by the two clamping plates to rotate synchronously, so as to achieve the effect of assisting the antenna to rotate and adjust. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] For the convenience of those skilled in the art to understand, the present invention will be further described below with reference to the accompanying drawings.
[0021] Figure 1 It is a schematic diagram of the overall structure of a signal receiver of an automated device proposed by the present invention;
[0022] Figure 2 It is Figure 1 A schematic diagram of the structure from another angle;
[0023] Figure 3 It is a schematic diagram of the structure at the bottom of the receiver body in the present invention;
[0024] Figure 4 It is a schematic diagram of the structure of two moving rods and a moving plate in the present invention;
[0025] Figure 5 It is a schematic diagram of the structure at the bottom of the moving plate in the present invention;
[0026] Figure 6 It is a schematic diagram of the structure excluding the receiver body in the present invention;
[0027] Figure 7 It is a schematic diagram of the structure of a rotating plate and a rectangular plate in the present invention;
[0028] Figure 8 It is a schematic diagram of the structure of the auxiliary wire-pulling mechanism in the present invention.
[0029] In the figure: 1. Receiver body; 2. Heat dissipation port; 3. First chute; 4. Moving rod; 5. Moving plate; 6. Frame; 7. Antenna; 8. Rotating plate; 9. Rectangular plate; 10. Network port; 11. Connection port; 12. Shock-absorbing spring; 13. Damping rod; 14. First slider; 15. Second chute; 16. Cleaning brush; 17. Second slider; 18. Air outlet; 19. Circular groove; 20. First electric telescopic rod; 21. Mounting seat; 22. Second electric telescopic rod; 23. Third chute; 24. Rubber sleeve; 25. Clamping plate; 26. Third slider; 27. Rotating block; 28. Third electric telescopic rod; 29. Mounting plate; 30. Double-headed screw; 31. Moving seat. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0030] The technical solution of the present invention will be clearly and completely described below in conjunction with the embodiments. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all of the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.
[0031] Referring to Figures 1-8 , a signal receiver of an automated device, includes a receiver body 1. A heat dissipation port 2 is provided at the top of the receiver body 1. A plurality of connection ports 11, two network ports 10 and an antenna 7 are provided on the back of the receiver body 1. A cleaning mechanism for automatically cleaning the heat dissipation port 2 is provided at the top of the receiver body 1. The bottom of the receiver body 1 is connected to a frame 6 through a shock absorption mechanism provided. A rotating plate 8 is provided on the back of the device body. A top of the rotating plate 8 is provided with an auxiliary wire pulling mechanism for assisting in disconnecting the connection between an external connection wire and the plurality of connection ports 11 and the network ports 10.
[0032] As a technical optimization solution of the present invention, the heat dissipation mechanism includes first sliding grooves 3 opened on the outer walls of both sides of the receiver body 1. First sliders 14 are installed inside both of the first sliding grooves 3. One ends of both of the first sliders 14 away from the first sliding grooves 3 are installed with moving rods 4. First linear motors are preset inside both of the first sliding grooves 3. The two first linear motors can drive the two first sliders 14 to move back and forth inside the corresponding first sliding grooves 3, and accordingly drive the two moving rods 4 to move and adjust on both sides of the receiver body 1.
[0033] As a technical optimization solution of the present invention, second sliding grooves 15 are opened on the outer walls of the sides of both of the moving rods 4 close to each other. Second sliders 17 are installed inside both of the second sliding grooves 15. One ends of both of the second sliders 17 away from the second sliding grooves 15 are jointly installed with a moving plate 5. Second linear motors are preset inside both of the second sliding grooves 15. The two second linear motors can drive the two second sliders 17 to move up and down inside the corresponding second sliding grooves 15, and accordingly drive the moving plate 5 to move up and down together.
[0034] As a technical optimization solution of the present invention, two cleaning brushes 16 are installed at the bottom of the moving plate 5, and an air outlet 18 is provided at the center position of the bottom of the moving plate 5. The two second sliders 17 move downward inside the corresponding second chutes 15, and then drive the moving plate 5 and the two cleaning brushes 16 at its bottom to move downward for adjustment until the two cleaning brushes 16 abut against the top of the receiver body 1. At this time, control the two first sliders 14 to drive the two moving rods 4 and the moving plate 5 to move back and forth outside the receiver body 1, and then drive the two cleaning brushes 16 to clean the heat dissipation openings 2; the inside of the moving plate 5 is hollow, and a blower is preset outside. The output end of the blower is connected to the connecting part provided on the outer wall of one side of the moving plate 5 through a pipeline, so that the wind generated by the external blower can be discharged downward through the air outlet 18 at the bottom of the moving plate 5 to assist in air-cooling the receiver body 1.
[0035] As a technical optimization solution of the present invention, the shock absorption mechanism includes a plurality of damping rods 13. The tops of the plurality of damping rods 13 are connected to the bottom of the receiver body 1. A plurality of circular grooves 19 are formed inside the frame body 6, and the bottoms of the plurality of damping rods 13 are installed inside the corresponding circular grooves 19. Shock absorption springs 12 are sleeved on the outer walls of the plurality of damping rods 13. With the cooperation of the plurality of damping rods 13 and the corresponding shock absorption springs 12, the receiver body 1 can be shock-absorbed, and the vibration influence received during the use of the receiver body 1 can be reduced.
[0036] As a technical optimization solution of the present invention, two first electric telescopic rods 20 are installed on one inner wall of the frame body 6. An installation seat 21 is jointly installed at the telescopic ends of the two first electric telescopic rods 20. One end of the rotating plate 8 is rotatably connected to the installation seat 21. During the telescopic process of the telescopic ends of the two first electric telescopic rods 20, the installation seat 21 and the rotating plate 8 can be driven to move and adjust together; a first driving motor is preset on the outer wall of one side of the installation seat 21, and the output end of the first driving motor is connected to the rotating part of one end of the rotating plate 8, so that the rotating plate 8 can be driven to rotate and adjust inside the installation seat 21.
[0037] As a technical optimization solution of the present invention, two second electric telescopic rods 22 are installed on the outer walls of both sides of the rotating plate 8. A rectangular plate 9 is jointly installed at the telescopic ends of the two second electric telescopic rods 22. A plurality of rubber sleeves 24 for placing connection lines are installed on the top of the rectangular plate 9. During the telescopic process of the telescopic ends of the two second electric telescopic rods 22, the rectangular plate 9 can be driven to move synchronously for adjustment.
[0038] As a technical optimization solution of the present invention, the wire pulling assisting mechanism includes a third sliding groove 23 formed at the top of the rotating plate 8. A third sliding block 26 is installed inside the third sliding groove 23, and a rotating block 27 is rotatably installed at the top of the third sliding block 26. A third linear motor is preset inside the third sliding groove 23, and the third linear motor can drive the third sliding block 26 to move back and forth inside the third sliding groove 23 for adjustment; a second driving motor is preset on the outer wall of one side of the third sliding block 26, and the output end of the second driving motor is connected to the rotating part of one end of the rotating block 27, so as to drive the rotating block 27 to rotate inside the third sliding block 26.
[0039] As a technical optimization solution of the present invention, a third electric telescopic rod 28 is installed at one end of the rotating block 27 away from the rotating part, and an installation plate 29 is installed at the telescopic end of the third electric telescopic rod 28. A double-headed screw rod 30 is rotatably installed inside the installation plate 29. A third driving motor is preset inside the rotating block 27, and the output end of the third driving motor is connected to the third electric telescopic rod 28, so as to drive the third electric telescopic rod 28 and the installation plate 29 to rotate and adjust together.
[0040] As a technical optimization solution of the present invention, two moving seats 31 are threadedly installed on the outer wall of the double-headed screw rod 30, and clamping plates 25 are rotatably installed at the tops of the two moving seats 31. A fourth driving motor is preset on the outer wall of one side of the installation plate, and the output end of the fourth driving motor is connected to one end of the double-headed screw rod 30, so as to drive the double-headed screw rod 30 to rotate inside the installation plate 29, and then drive the two moving seats 31 and the clamping plates 25 to move towards each other or away from each other on the outer wall of the double-headed screw rod 30 for adjustment; and fifth driving motors are preset on the outer wall of one side of the two moving seats 31, and the output ends of the fifth driving motors are connected to the rotating parts of one ends of the clamping plates 25, so as to drive the clamping plates 25 to rotate and adjust inside the moving seats 31.
[0041] In the present invention, when the user uses the device and places the receiver body 1 at the designated position of the automation equipment waiting for installation and use, at this time, the third electric telescopic rod 28 and the installation plate 29 can be controlled to rotate and adjust 90 degrees together on the top of the rotating block 27, driving the installation plate 29 to rotate to a state parallel to the first electric telescopic rod 20. Then, the rotating block 27 can be controlled to rotate downward 90 degrees on the top of the third sliding block 26, and the third sliding block 26 can be controlled to move towards the left end or the right end to the end inside the third sliding groove 23. Finally, the rotating plate 8 can be controlled to rotate upward 90 degrees inside the mounting seat 21, so as to drive the rotating plate 8 to shield and protect a plurality of connection ports 11 and network ports 10 on the back of the receiver body 1, avoiding foreign matters from entering the inside of the connection ports 11 and network ports 10 when the receiver body 1 is not in use.
[0042] When the receiver body 1 needs to be used, control the rotating plate 8 to rotate downward to reset, and control the relevant components of the auxiliary wire-pulling mechanism to also rotate and reset. Then, place the multiple connecting wires and network cables that need to be plugged into the multiple connection ports 11 and network port 10 on the back of the receiver body 1 in the corresponding rubber sleeves 24 on the top of the rectangular plate 9 in sequence, ensuring that the connection ends of the multiple connecting wires and network cables are close to the receiver body 1. Then, control the telescopic ends of the two first electric telescopic rods 20 to contract together, driving the mounting seat 21, the rotating plate 8, and the rectangular plate 9 to move together in the direction close to the receiver body 1. Since the positions of the multiple rubber sleeves 24 correspond to the positions of the multiple connection ports 11 and network port 10, the connection ends of the multiple connecting wires and network cables placed in the multiple rubber sleeves 24 can move in the direction close to the corresponding connection ports 11 and network port 10 as the telescopic ends of the two first electric telescopic rods 20 contract, until the multiple connection ends are inserted into the corresponding connection ports 11 and network port 10, thus realizing the simultaneous connection of the multiple connecting wires and network cables to the receiver body 1, improving the connection efficiency of the multiple connecting wires and network cables to the receiver body 1, and facilitating the receiver body 1 to be put into use faster.
[0043] During the use of the receiver body 1, the vibrations generated by its own operation or the operation of other nearby devices can be buffered and released by the cooperation between the multiple damping rods 13 and the shock-absorbing springs 12, avoiding the problem that the service life of the receiver body 1 is reduced and the failure rate increases due to the influence of these vibrations on the receiver body 1 for a long time.
[0044] Since the multiple connection ends are still located inside the multiple rubber sleeves 24 after being connected to the receiver body 1, the multiple connecting wires are arranged in a relatively neat state on the back of the receiver body 1, avoiding the problem that the multiple connecting wires and network cables are messy or even entangled during the use of the receiver body 1, resulting in failures during the subsequent use of the receiver body 1 and the staff being unable to quickly determine the functions of different connecting wires, thus reducing the maintenance efficiency of the receiver body 1.
[0045] When the second power cord 25 is disconnected from the second power supply 11, the second power cord 25 is disconnected from the second power supply 11, and the power cord 25 is disconnected from the second power supply 11. When the second power cord 25 is disconnected, the second power cord 25 is disconnected from the second power supply 11, and the second power cord 25 is disconnected from the second power supply 11. When the second power cord 25 is disconnected, the second power cord 25 is disconnected from the second power supply 11, and the second power cord 25 is disconnected.
[0046] If it is necessary to release the connection between the network cable and the receiver body 1, the above steps can be repeated so that the two clamps 25 are located directly below the corresponding network cable connection ends. As the telescopic end of the third electric telescopic rod 28 extends upward, the two clamps 25 are driven to move upward to both sides of the network cable connection end. The telescopic end of the third electric telescopic rod 28 can be continued to be controlled to extend upward, driving the mounting plate 29 to squeeze the spring piece at the bottom of the network cable connection end so that it can contact the limit fixation between the network port 10. As the telescopic ends of the two first electric telescopic rods 20 extend together, the two clamps 25 can be driven to automatically release the connection between the network cable connection end and the network port 10, thereby realizing automatic unplugging of the network cable connection end, which is convenient for the use of the auxiliary wire pulling mechanism.
[0047] When one or more of the connection ports 11 are threadedly connected to the corresponding connection ends, when the rectangular plate 9 and the plurality of rubber sleeves 24 are driven by the two first electric telescopic rods 20 to move towards the receiving instrument body 1, the corresponding connection ends cannot be synchronously driven to be connected to the connection ports 11. At this time, workers need to assist in rotating the connection ends so that they can be threadedly connected to the corresponding connection ports 11; and when the connection ends threadedly connected to the connection ports 11 need to be disassembled subsequently, the third slider 26 can be controlled to move and adjust inside the corresponding third chute 23, driving the mounting plate 29 to move below one of the connection ports 11. The two clamping plates 25 are controlled to rotate downward away from each other into a horizontal state, and the double-headed screw 30 is controlled to drive the two moving seats 31 and the rotated and adjusted clamping plates 25 to move towards each other until the two moving seats 31 and the clamping plates 25 move to a state of abutment. Since rubber layers are provided on the outer walls of the two clamping plates 25, the telescopic end of the third electric telescopic rod 28 can be controlled to extend upward, driving the two horizontally rotated clamping plates 25 to move upward and abut against the outer wall of the corresponding connection end. As the third slider 26 drives the two clamping plates 25 to move towards one end, the two clamping plates 25 rub against the outer wall of the connection end. After repeatedly driving the two clamping plates 25 to rub against the outer wall of the connection end by the third slider 26 for multiple times, the connection end can be driven to rotate and unscrew inside the corresponding connection port 11, achieving the effect of disassembling the connection end threadedly connected to the connection port 11, and further improving the applicability of the auxiliary wire-pulling mechanism during actual use.
[0048] During the use of the receiving instrument body 1, at this time the auxiliary wire-pulling mechanism does not need to be used. The third slider 26 can be controlled to move inside the third chute 23 towards the direction close to the antenna 7 until the third slider 26 drives the plurality of components on its top to move to the end of the third chute 23. Then, the rotating block 27 is controlled to rotate and adjust on the top of the third slider 26 towards the direction close to the antenna 7, and the telescopic end of the third electric telescopic rod 28 is controlled to extend, driving the two clamping plates 25 to approach the rotating part of the antenna 7. By retracting the telescopic ends of the two first electric telescopic rods 20 by a certain distance, the two clamping plates 25 are driven to move to both sides of the rotating part of the antenna 7. At this time, the rotating part of the antenna 7 can be clamped and fixed by the two clamping plates 25. As the rotating block 27 rotates and adjusts on the top of the third slider 26, the rotating part of the antenna 7 clamped and fixed by the two clamping plates 25 can be driven to rotate synchronously, so as to achieve the effect of assisting the antenna 7 to rotate and adjust.
[0049] During the use of the receiver body 1, dust is likely to accumulate at its top heat dissipation port 2. When it is found that dust has accumulated at the heat dissipation port 2, the two second sliders 17 can be controlled to move downward inside the corresponding second chutes 15, driving the moving plate 5 and the two cleaning brushes 16 at its bottom to abut against the top of the receiver body 1. As the two first sliders 14 move back and forth inside the corresponding first chutes 3, the two cleaning brushes 16 are driven accordingly to automatically clean the heat dissipation port 2, preventing dust from clogging the heat dissipation port 2.
[0050] After cleaning the dust at the heat dissipation port 2, the externally preset blower is controlled to start, so that the air outlet 18 blows air towards the receiver body 1, and in cooperation with the two first sliders 14 driving them to move back and forth on the top of the receiver body 1, the effect of assisting in air-cooling the receiver body 1 is achieved, ensuring that the receiver body 1 is not affected by high temperature during use.
[0051] The above-described preferred embodiments of the present invention disclosed are only used to help illustrate the present invention. The preferred embodiments do not describe all the details in detail, nor do they limit the invention to the specific embodiments described. Obviously, many modifications and variations can be made according to the content of this specification. These embodiments are selected and specifically described in this specification to better explain the principles and practical applications of the present invention, so that those skilled in the art can understand and utilize the present invention well. The present invention is only limited by the claims and their full scope and equivalents.
Claims
1. A signal receiver for an automated device, comprising a receiver body (1), characterized in that, A heat dissipation port (2) is provided at the top of the receiver body (1). A plurality of connection ports (11), two network ports (10), and an antenna (7) are provided on the back of the receiver body (1). A cleaning mechanism for automatically cleaning the heat dissipation port (2) is provided at the top of the receiver body (1). The bottom of the receiver body (1) is connected to a frame body (6) through a shock absorption mechanism provided. A rotating plate (8) is provided on the back of the device body. An auxiliary wire unplugging mechanism for assisting in disconnecting the external connection wires from the plurality of connection ports (11) and the network ports (10) is provided at the top of the rotating plate (8).
2. The signal receiver of an automated device according to claim 1, characterized in that, The heat dissipation mechanism includes first chutes (3) opened on the outer walls of both sides of the receiver body (1). First sliders (14) are installed inside both of the first chutes (3). One end of each of the two first sliders (14) away from the first chute (3) is installed with a moving rod (4).
3. The signal receiver of an automated device according to claim 2, characterized in that, Second chutes (15) are opened on the outer walls of the sides of the two moving rods (4) close to each other. Second sliders (17) are installed inside both of the second chutes (15). One end of the two second sliders (17) away from the second chute (15) is jointly installed with a moving plate (5).
4. The signal receiver of an automated device according to claim 3, characterized in that, Two cleaning brushes (16) are installed at the bottom of the moving plate (5). An air outlet (18) is provided at the middle position of the bottom of the moving plate (5).
5. The signal receiver of an automated device according to claim 1, characterized in that, The shock absorption mechanism includes a plurality of damping rods (13). The tops of the plurality of damping rods (13) are connected to the bottom of the receiver body (1). A plurality of circular grooves (19) are opened inside the frame body (6). The bottoms of the plurality of damping rods (13) are installed inside the corresponding circular grooves (19). Shock absorption springs (12) are sleeved on the outer walls of the plurality of damping rods (13).
6. The signal receiver of an automated device according to claim 1, characterized in that, Two first electric telescopic rods (20) are installed on one inner wall of the frame body (6). A mounting seat (21) is jointly installed at the telescopic ends of the two first electric telescopic rods (20). One end of the rotating plate (8) is rotatably connected to the mounting seat (21).
7. The signal receiver of an automated device according to claim 1, characterized in that, Second electric telescopic rods (22) are installed on the outer walls of both sides of the rotating plate (8). A rectangular plate (9) is jointly installed at the telescopic ends of the two second electric telescopic rods (22). A plurality of rubber sleeves (24) for placing connection wires are installed at the top of the rectangular plate (9).
8. The signal receiver of an automated device according to claim 1, characterized in that, The auxiliary wire unplugging mechanism includes a third chute (23) opened at the top of the rotating plate (8). A third slider (26) is installed inside the third chute (23). A rotating block (27) is rotatably installed at the top of the third slider (26).
9. The signal receiver of an automated device according to claim 8, characterized in that, One end of the rotating block (27) away from the rotating part is installed with a third electric telescopic rod (28). The telescopic end of the third electric telescopic rod (28) is installed with a mounting plate (29). A double-headed screw rod (30) is rotatably installed inside the mounting plate (29).
10. The signal receiver of an automated device according to claim 9, characterized in that, Two moving seats (31) are threadedly installed on the outer wall of the double-headed screw rod (30). Clamping plates (25) are rotatably installed at the tops of the two moving seats (31).