Industrial remote controller with 4G transmission monitoring data
By designing an industrial remote control with 4G transmission monitoring data, and adopting a structure including a neck strap, shoulder strap, support plate, and cushioning pad, the problem of concentrated pressure when carrying the industrial remote control is solved, thereby improving comfort and ease of operation.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-15
- Publication Date
- 2026-03-03
AI Technical Summary
Existing industrial remote controls are large and heavy, which puts a lot of strain on workers' necks and limits their hand dexterity, resulting in poor comfort.
An industrial remote control with 4G transmission monitoring data was designed. It adopts a structure with a neck strap, shoulder strap, support plate and cushioning pad. The pressure is distributed by carrying it on both shoulders. With the help of adjustment buckles and adjustment frame, the length and position can be adjusted. When in use, the main body of the remote control is away from the abdomen, which makes it easy to operate. Lightweight materials are used to reduce the load.
The design, featuring a double-shoulder back and cushioning, reduces localized pressure, improves comfort and ease of operation, adapts to the needs of workers of different body types, and reduces weight and stress.
Smart Images

Figure CN223958466U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of industrial remote control technology, specifically an industrial remote control with 4G transmission monitoring data. Background Technology
[0002] An industrial remote control is a wireless remote control device designed specifically for industrial scenarios. It is used to control heavy machinery, automated equipment, or complex industrial systems from a distance. Unlike ordinary remote controls, it places greater emphasis on reliability, safety, and anti-interference capabilities, making it particularly suitable for high-risk, complex, or precise operating environments.
[0003] To facilitate portability, some existing industrial remote controls are typically equipped with buckles and shoulder straps. When carrying them, the shoulder straps are placed on the shoulders for easy carrying, and when needed, the shoulder straps are placed around the neck, using the body to support the remote control for easy operation with both hands. However, industrial remote controls are usually large and heavy, and carrying them for extended periods puts a lot of strain on the worker's neck. Furthermore, the remote control is subject to gravity, constantly experiencing a downward force, causing its outer surface to press against the worker's chest and abdomen. This results in two problems: firstly, the hard outer shell of the remote control makes it uncomfortable; and secondly, because the surface of the remote control is obstructed by the worker's body, the worker's hands must pass through the side support of the remote control, limiting hand dexterity. Utility Model Content
[0004] Therefore, the purpose of this utility model is to provide an industrial remote controller with 4G transmission monitoring data to solve the technical problems mentioned in the background art.
[0005] To achieve the above objectives, this utility model provides the following technical solution: an industrial remote controller with 4G transmission monitoring data, comprising a remote controller body, brackets fixed on both sides of the remote controller body, and a neck strap and two shoulder straps connected to the top of the brackets. The neck strap has two first adjustment buckles and a first buffer pad on its exterior, and the two shoulder straps have four second adjustment buckles and two second buffer pads on their exteriors. A base frame is connected to the bottom of the remote controller body, and ratchet frames are connected to both sides of the base frame via springs and dampers. An adjustment frame penetrates the outer surface of the base frame, and multiple ratchet grooves are formed on both sides of the adjustment frame. A lead screw penetrates the top of the adjustment frame, and a support plate is connected to the outer surface of the lead screw. A third buffer pad is connected to the outer surface of the support plate.
[0006] By adopting the above technical solution, when carrying the remote control, the operator can use two shoulder straps to carry it on their back. Compared with the traditional single-shoulder carrying, the double-shoulder carrying distributes the pressure and avoids uneven shoulders. When using the remote control, the operator places it in front of their body, with their arms through the two shoulder straps and their head through the neck strap. The weight of the remote control is distributed to three areas of the operator's body through the neck strap and the two shoulder straps. Combined with the first and second cushioning pads, this reduces localized pressure and improves comfort. Simultaneously, the support plate holds the remote control away from the operator's abdomen, facilitating operation. A third cushioning pad connects the operator's abdomen to the support plate, reducing pressure and improving comfort, preventing discomfort caused by an overly rigid structure. If the shoulder straps or neck strap are uncomfortable, the operator can adjust them using the first and second adjustment buckles. The buckle allows for adjustment of the neck strap and shoulder strap lengths on both sides. When the support plate is not in the correct position, the operator can pull the adjustment bracket outwards to increase the distance between the remote control body and the operator's abdomen. Simultaneously, a spring applies pressure to the ratchet bracket, causing it to engage in the ratchet groove and limit the adjustment bracket, preventing it from retracting back into the base frame. Conversely, the operator can press the side of the ratchet bracket to move it away from the ratchet groove, and then push the adjustment bracket to retract it into the base frame, thus reducing the distance between the remote control body and the operator's abdomen. Furthermore, the operator can move the support bracket and the third buffer pad up or down by rotating the screw, allowing for adjustment of the third buffer pad's position. Additionally, the metal components such as the remote control body's casing, base frame, adjustment bracket, ratchet bracket, damper casing, and support plate can be made of lightweight materials such as aluminum alloy to reduce the load and thus decrease pressure.
[0007] Furthermore, the neck strap and shoulder strap are both made of nylon material, and the outer layers of the first and second cushioning pads are made of half nylon and half breathable mesh material sewn together, while the inner layers of the first and second cushioning pads are made of memory foam material.
[0008] By adopting the above technical solution, the weight of the remote control body is distributed to three areas of the worker's body through the neck strap and two shoulder straps. With the addition of the first and second cushioning pads, local pressure can be reduced and comfort improved.
[0009] Furthermore, the adjustment frame is slidably connected to the base frame, and the adjustment frame is L-shaped.
[0010] By adopting the above technical solution, when the support plate is not in the correct position, the staff can pull out the adjustment bracket towards the outer surface, thereby increasing the distance between the remote control body and the staff's abdomen.
[0011] Furthermore, the ratchet frame is detachably connected to the ratchet groove, and the ratchet frame is slidably connected to the base frame.
[0012] By adopting the above technical solution, the spring applies pressure to the ratchet frame, causing the ratchet frame to enter the ratchet groove and limit the adjustment frame, thus preventing the adjustment frame from retracting into the base frame.
[0013] Furthermore, the support plate is threadedly connected to the lead screw, and the support plate is slidably connected to the adjustment frame.
[0014] By adopting the above technical solution, the operator can move the support frame and the third buffer pad up or down by rotating the lead screw, so as to adjust the position of the third buffer pad.
[0015] Furthermore, the outer surfaces of both the support plate and the third buffer pad are arc-shaped.
[0016] By adopting the above technical solution, the arc-shaped structure can fit the abdomen of the staff, thereby evenly distributing the pressure of the remote control body to the abdominal area, reducing pressure and discomfort.
[0017] Furthermore, the outer layer of the third cushioning pad is made of breathable mesh material, and the inner layer of the third cushioning pad is made of memory foam material.
[0018] By adopting the above technical solutions, the memory foam material has good softness, which can reduce pressure, and when combined with the breathable mesh, it has good breathability, avoiding stuffiness and increased sweat production.
[0019] Furthermore, the top of the remote control body is equipped with a joystick, an emergency stop button, a control knob, and a display screen, and the back of the remote control body is equipped with a wireless remote control antenna and a 4G transmission antenna on both sides.
[0020] By adopting the above technical solution, staff can control remote devices using a joystick, emergency stop button, and control knob in conjunction with a wireless remote control antenna. The 4G transmission antenna receives monitoring signals from sensors in the remote devices, and the monitoring data is displayed on a screen for staff to view.
[0021] Furthermore, both sides of the display screen are connected to a first damping hinge, and the display screen is rotatably connected to the remote control body through the first damping hinge.
[0022] By adopting the above technical solution, if the angle of the display screen is not convenient for staff to view, staff can rotate the display screen to adjust its angle, and limit it through the first damping pivot.
[0023] Furthermore, the remote control body has a storage slot on its back, and the outer surface and back of the wireless remote control antenna and the 4G transmission antenna are both connected to a second damping pivot, and the wireless remote control antenna and the 4G transmission antenna are rotatably connected to the storage slot through the second damping pivot.
[0024] By adopting the above technical solution, when in use, the staff can rotate the wireless remote control antenna and the 4G transmission antenna upwards. At this time, the second damping shaft limits the movement, so that the wireless remote control antenna and the 4G transmission antenna can receive and transmit remote control signals and monitoring data from remote devices. After no operation is needed, the staff can rotate the wireless remote control antenna and the 4G transmission antenna downwards and put them into the storage slot to avoid the wireless remote control antenna and the 4G transmission antenna from being bumped and broken.
[0025] In summary, the present invention has the following main advantages:
[0026] 1. This utility model, through the design of a neck strap, shoulder straps, a first adjustment buckle, and a first cushioning pad, allows the operator to carry the remote control unit on their back using the two shoulder straps when needed. Compared to traditional single-shoulder carrying, double-shoulder carrying distributes pressure and avoids uneven shoulders. When in use, the operator places the remote control unit in front of their body, with their arms passing through the two shoulder straps and their head passing through the neck strap. The weight of the remote control unit is distributed to three areas of the operator's body via the neck strap and the two shoulder straps. Combined with the first and second cushioning pads, this reduces localized pressure and improves comfort. Furthermore, the lengths of the neck strap and shoulder straps can be adjusted using the first and second adjustment buckles to accommodate operators of different body types. This distributed pressure reduces localized pressure and enhances comfort.
[0027] 2. This utility model, through the setting of a support plate and a third buffer pad, supports the remote control body by supporting the remote control body, keeping the remote control body away from the chest and abdomen of the operator, thereby facilitating the operator's operation. The third buffer pad connects the operator's chest and abdomen to the support plate, reducing pressure and improving comfort, avoiding discomfort caused by an overly rigid structure; it is convenient to use, eliminating the need for the operator to pass their hands through the sides of the bracket to operate the industrial remote control.
[0028] 3. This utility model, through the arrangement of a support frame, an adjustment frame, a ratchet groove, a ratchet frame, a spring, a damper, and a lead screw, allows the adjustment frame to be pulled outwards, thereby increasing the distance between the remote control body and the operator's abdomen. Simultaneously, the spring applies pressure to the ratchet frame, causing it to enter the ratchet groove and limit its movement, preventing it from retracting back into the base frame. Conversely, the operator presses the side of the ratchet frame to move it away from the ratchet groove, and then pushes the adjustment frame back into the base frame, thus reducing the distance between the remote control body and the operator's abdomen. Furthermore, rotating the lead screw allows the support frame and the third buffer pad to move up or down, facilitating adjustment of the third buffer pad's position to accommodate operators of different body types. This also allows for convenient adjustment of the support plate and the third buffer pad's position to fit operators of varying body types. Attached Figure Description
[0029] Figure 1 This is a schematic diagram of the structure of this utility model;
[0030] Figure 2 This is a schematic diagram of the back structure of the remote control body of this utility model;
[0031] Figure 3 This is a schematic diagram of the support structure of this utility model;
[0032] Figure 4 This is a schematic diagram of the base frame structure of this utility model;
[0033] Figure 5 This is a top-section schematic diagram of the base frame structure of this utility model;
[0034] Figure 6 This is a schematic diagram of the exploded structure of the base frame of this utility model.
[0035] In the diagram: 1. Remote control body; 2. Joystick; 3. Emergency stop button; 4. Control knob; 5. Display screen; 6. Wireless remote control antenna; 7. 4G transmission antenna; 8. First damping pivot; 9. Storage slot; 10. Second damping pivot; 11. Bracket; 12. Neck strap; 13. First adjustment buckle; 14. First cushioning pad; 15. Shoulder strap; 16. Second adjustment buckle; 17. Second cushioning pad; 18. Base frame; 19. Adjustment frame; 20. Racket groove; 21. Racket frame; 22. Spring; 23. Damper; 24. Lead screw; 25. Support plate; 26. Third cushioning pad. Detailed Implementation
[0036] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain the present invention, and should not be construed as limiting the present invention.
[0037] The embodiments of this utility model will be described below based on its overall structure.
[0038] Example 1:
[0039] An industrial remote control with 4G transmission monitoring data, such as Figure 1 , Figure 3 , Figure 4 , Figure 5 and Figure 6As shown, the device includes a remote control body 1, with brackets 11 fixed to both sides. A neck strap 12 and two shoulder straps 15 are connected to the top of each bracket 11. Both the neck strap 12 and shoulder straps 15 are made of nylon. The neck strap 12 has two first adjustment buckles 13 and a first cushioning pad 14 on its exterior. The two shoulder straps 15 have four second adjustment buckles 16 and two second cushioning pads 17 on their exteriors. The outer layers of the first and second cushioning pads 14 and 17 are made of half nylon and half breathable mesh sewn together, while the inner layers are made of memory foam. A base frame 18 is connected to the bottom of the remote control body 1. Both sides of the base frame 18 are connected to ratchet frames 21 via springs 22 and dampers 23. An adjustment frame 19 runs through the surface of the device, and is slidably connected to the base frame 18. The adjustment frame 19 is L-shaped, and multiple ratchet grooves 20 are provided on both sides of the adjustment frame 19. The ratchet frame 21 is detachably connected to the ratchet grooves 20, and is slidably connected to the base frame 18. A lead screw 24 runs through the top of the adjustment frame 19, and a support plate 25 is connected to the outer surface of the lead screw 24. The support plate 25 is threadedly connected to the lead screw 24, and is slidably connected to the adjustment frame 19. A third buffer pad 26 is connected to the outer surface of the support plate 25. Both the outer surfaces of the support plate 25 and the third buffer pad 26 are arc-shaped. The outer layer of the third buffer pad 26 is made of breathable mesh material, and the inner layer is made of memory foam material. When needed, the operator places the remote control body 1 on their body. The remote control body 1 is positioned in front of the user, with the arms passing through two shoulder straps 15 and the head passing through a neck strap 12. The weight of the remote control body 1 is distributed across three areas of the user's body via the neck strap 12 and the two shoulder straps 15. Combined with the first and second cushioning pads 14, this reduces localized pressure and improves comfort. Simultaneously, the support plate 25 holds the remote control body 1 away from the user's abdomen, facilitating operation. A third cushioning pad 26 connects the user's abdomen to the support plate 25, further reducing pressure and improving comfort, preventing discomfort caused by an overly rigid structure. When the shoulder straps 15 and neck strap 12 are uncomfortable, the user can adjust them using the first and second adjustment buckles 13 and 16. The lengths on both sides; when the support plate 25 is not in the correct position, the operator pulls out the adjustment bracket 19 towards the outer surface, thereby increasing the distance between the remote control body 1 and the operator's abdomen. At the same time, the spring 22 applies pressure to the ratchet bracket 21, causing the ratchet bracket 21 to enter the ratchet groove 20 and limit the adjustment bracket 19, preventing the adjustment bracket 19 from retracting into the base frame 18. Conversely, the operator presses the side of the ratchet bracket 21 to move the ratchet bracket 21 away from the ratchet groove 20, and then pushes the adjustment bracket 19 to retract into the base frame 18, so as to reduce the distance between the remote control body 1 and the operator's abdomen. Furthermore, by rotating the screw 24, the support frame and the third buffer pad 26 can be moved up or down, so as to adjust the position of the third buffer pad 26.Meanwhile, the outer shell of the remote control body 1, the base 18, the adjustment bracket 19, the ratchet bracket 21, the outer shell of the damper 23, and the support plate 25, as well as other metal parts, can be made of lightweight materials such as aluminum alloy to reduce the load and thus reduce pressure.
[0040] See Figure 1 and Figure 2 In the above embodiment, the top of the remote control body 1 is equipped with a joystick 2, an emergency stop button 3, a control knob 4, and a display screen 5. The back of the remote control body 1 is equipped with a wireless remote control antenna 6 and a 4G transmission antenna 7 on both sides. The operator can control the remote device by using the joystick 2, the emergency stop button 3, and the control knob 4 in conjunction with the wireless remote control antenna 6. The 4G transmission antenna 7 receives the monitoring signals from the sensors in the remote device, and the monitoring data is displayed to the operator through the display screen 5.
[0041] Example 2:
[0042] Based on the above embodiment one, the following settings are now implemented to facilitate the viewing of monitoring data.
[0043] See Figure 1 and Figure 2 In the above embodiment, the display screen 5 is connected to the first damping pivot 8 on both sides. The display screen 5 is rotatably connected to the remote control body 1 through the first damping pivot 8. If the angle of the display screen 5 is not convenient for the staff to view, the staff can rotate the display screen 5 to adjust its angle and limit it through the first damping pivot 8.
[0044] Example 3:
[0045] Based on the above embodiment one, in order to facilitate the protection of the wireless remote control antenna 6 and the 4G transmission antenna 7, the following settings are now implemented.
[0046] See Figure 1 and Figure 2 In the above embodiment, the back of the remote control body 1 is provided with a storage slot 9. The outer surface and back of the wireless remote control antenna 6 and the 4G transmission antenna 7 are both connected to a second damping pivot 10. The wireless remote control antenna 6 and the 4G transmission antenna 7 are rotatably connected to the storage slot 9 through the second damping pivot 10. When in use, the operator rotates the wireless remote control antenna 6 and the 4G transmission antenna 7 upward. At this time, the second damping pivot 10 limits the rotation, so as to facilitate the transmission and reception of remote control signals and monitoring data of remote devices through the wireless remote control antenna 6 and the 4G transmission antenna 7. After operation is no longer needed, the operator can rotate the wireless remote control antenna 6 and the 4G transmission antenna 7 downward and put them into the storage slot 9 to avoid the wireless remote control antenna 6 and the 4G transmission antenna 7 from being bumped and broken.
[0047] The implementation principle of this utility model is as follows: First, when it is necessary to carry it, the staff can carry the remote control body 1 on their back through two shoulder straps 15. Compared with the traditional single-shoulder carrying, double-shoulder carrying distributes the pressure and avoids uneven shoulders.
[0048] When needed, the operator places the remote control body 1 in front of their body, with their arms passing through the two shoulder straps 15 and their head passing through the neck strap 12. The weight of the remote control body 1 is distributed to three areas of the operator's body through the neck strap 12 and the two shoulder straps 15. With the addition of the first buffer pad 14 and the second buffer pad 17, local pressure can be reduced and comfort improved. At the same time, the support plate 25 supports the remote control body 1, keeping it away from the operator's abdomen, thus facilitating operation. The third buffer pad 26 connects the operator's abdomen to the support plate 25, reducing pressure and improving comfort, and preventing discomfort caused by an overly rigid structure.
[0049] When the shoulder strap 15 and neck strap 12 are not in the correct position, the operator can adjust the length of both sides of the neck strap 12 and shoulder strap 15 using the first adjustment buckle 13 and the second adjustment buckle 16. When the support plate 25 is not in the correct position, the operator can pull out the adjustment bracket 19 towards the outward surface to increase the distance between the remote control body 1 and the operator's abdomen. At the same time, the spring 22 applies pressure to the ratchet bracket 21, causing the ratchet bracket 21 to enter the ratchet groove 20 and limit the adjustment bracket 19, preventing the adjustment bracket 19 from retracting into the base frame 18. Conversely, the operator can press the side of the ratchet bracket 21 to adjust the ratchet bracket. 21 moves away from the ratchet groove 20, and then the operator pushes the adjustment frame 19 to retract it into the base frame 18, so as to reduce the distance between the remote control body 1 and the operator's abdomen; and the operator can move the support frame and the third buffer pad 26 up or down by rotating the screw 24, so as to adjust the position of the third buffer pad 26; at the same time, the metal parts such as the shell of the remote control body 1, the base frame 18, the adjustment frame 19, the ratchet frame 21, the shell of the damper 23 and the support plate 25 can be made of lightweight materials such as aluminum alloy to reduce the load and thus reduce pressure;
[0050] In use, the operator rotates the wireless remote control antenna 6 and the 4G transmission antenna 7 upwards. At this time, the second damping shaft 10 limits the rotation, facilitating the transmission and reception of remote control signals and monitoring data from the remote device via the wireless remote control antenna 6 and the 4G transmission antenna 7. The operator can control the remote device using the joystick 2, the emergency stop button 3, and the control knob 4 in conjunction with the wireless remote control antenna 6. The 4G transmission antenna 7 receives monitoring signals from the sensors in the remote device, and the monitoring data is displayed on the screen 5 for the operator to view. If the angle of the screen 5 is inconvenient for the operator to view, the operator can rotate the screen 5 to adjust its angle, which is limited by the first damping shaft 8. After operation is no longer needed, the operator can rotate the wireless remote control antenna 6 and the 4G transmission antenna 7 downwards and place them into the storage slot 9 to prevent the wireless remote control antenna 6 and the 4G transmission antenna 7 from being bumped and broken.
[0051] Although embodiments of the present invention have been shown and described, these specific embodiments are merely explanations of the present invention and are not intended to limit the invention. The specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples. After reading this specification, those skilled in the art may make modifications, substitutions, and variations to the embodiments as needed without departing from the principles and spirit of the present invention, provided that such modifications, substitutions, and variations are within the scope of the claims of the present invention and are protected by patent law.
Claims
1. An industrial remote controller with 4G transmission monitoring data, comprising a remote controller body (1), characterized in that: The remote control body (1) is fixed with brackets (11) on both sides, and the top of the brackets (11) is connected to a neck strap (12) and two shoulder straps (15). The neck strap (12) is provided with two first adjustment buckles (13) and a first buffer pad (14) on the outside, and the two shoulder straps (15) are provided with four second adjustment buckles (16) and two second buffer pads (17) on the outside. The bottom of the remote control body (1) is connected to a base frame (18), and the inside of the base frame (18) is connected to a ratchet frame (21) on both sides by springs (22) and dampers (23). The outer surface of the base frame (18) is penetrated by an adjustment frame (19), and multiple ratchet grooves (20) are opened on both sides of the adjustment frame (19). The top of the adjustment frame (19) is penetrated by a lead screw (24), and the outer surface of the lead screw (24) is connected to a support plate (25). The outer surface of the support plate (25) is connected to a third buffer pad (26).
2. The industrial remote controller with 4G transmission monitoring data as described in claim 1, characterized in that: The neck strap (12) and shoulder strap (15) are both made of nylon material, and the outer layer of the first cushioning pad (14) and the second cushioning pad (17) is made of half nylon material and half breathable mesh material sewn together. The inner layer of the first cushioning pad (14) and the second cushioning pad (17) is made of memory foam material.
3. The industrial remote controller with 4G transmission monitoring data according to claim 1, characterized in that: The adjustment frame (19) is slidably connected to the base frame (18), and the adjustment frame (19) is L-shaped.
4. The industrial remote controller with 4G transmission monitoring data according to claim 3, characterized in that: The ratchet frame (21) is detachably connected to the ratchet groove (20), and the ratchet frame (21) is slidably connected to the base frame (18).
5. The industrial remote controller with 4G transmission monitoring data according to claim 3, characterized in that: The support plate (25) is threadedly connected to the lead screw (24), and the support plate (25) is slidably connected to the adjusting frame (19).
6. The industrial remote controller with 4G transmission monitoring data according to claim 5, characterized in that: The outer surfaces of the support plate (25) and the third buffer pad (26) are both arc-shaped.
7. The industrial remote controller with 4G transmission monitoring data according to claim 6, characterized in that: The outer layer of the third buffer pad (26) is made of breathable mesh material, and the inner layer of the third buffer pad (26) is made of memory foam material.
8. The industrial remote controller with 4G transmission monitoring data according to claim 1, characterized in that: The top of the remote control body (1) is equipped with a joystick (2), an emergency stop button (3), a control knob (4) and a display screen (5). The back of the remote control body (1) is equipped with a wireless remote control antenna (6) and a 4G transmission antenna (7).
9. The industrial remote controller with 4G transmission monitoring data according to claim 8, characterized in that: The display screen (5) is connected to a first damping shaft (8) on both sides, and the display screen (5) is rotatably connected to the remote control body (1) through the first damping shaft (8).
10. The industrial remote controller with 4G transmission monitoring data according to claim 8, characterized in that: The remote control body (1) has a storage slot (9) on its back. The outer surface and back of the wireless remote control antenna (6) and the 4G transmission antenna (7) are connected to a second damping pivot (10). The wireless remote control antenna (6) and the 4G transmission antenna (7) are rotatably connected to the storage slot (9) through the second damping pivot (10).