Quick pushing device for wood bracket
By designing a rapid ejection device for wooden trays, and utilizing a reversible coiling structure and drive unit, the problems of complex structure and long time consumption of existing coil turning machines are solved, enabling rapid transportation and flexible conversion of copper coils, and improving production efficiency and safety.
Patent Information
- Application Number
- CN202423309525.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-31
- Publication Date
- 2025-12-09
- Estimated Expiration
- 2034-12-31
AI Technical Summary
Existing rewinding machines have complex structures and the rewinding process is time-consuming, resulting in low production efficiency of strip steel.
Design a rapid ejection device for a wooden tray, including a flip-out coil-jointing structure and two drive devices. Vertical and horizontal copper coils are supported by a first support plate and a second support plate, respectively. The wooden tray is driven by the second drive device to run along the second support plate. The first drive device flips the coil-jointing structure to realize the flexible conversion and transportation of vertical and horizontal copper coils.
The structure of the coil turning machine has been simplified, the efficiency of copper coil transportation has been improved, the operation is convenient, the turning direction meets the actual needs, and the production efficiency and safety have been enhanced.
Smart Images

Figure CN223645706U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of metallurgical mechanical equipment, and more particularly to a wood bracket quick pushing-out device. BACKGROUND
[0002] In a strip steel production plant, in order to facilitate packaging and transporting copper coils, it is necessary to turn the vertical copper coils into horizontal copper coils, and then use a crane to hoist the copper coils to a coil receiving and packaging device. However, the existing roll turning machine is generally used to turn the horizontal copper coils into vertical copper coils for transportation, and the turning process is relatively complex, which takes a long time for turning and receiving the copper coils, and is not conducive to improving the production efficiency of the plant. For example, the Chinese utility model patent with the publication number CN108569539A discloses a roll turning machine arranged parallel to a transport line, which is used to turn the horizontal copper coils into vertical copper coils, and in the turning process, the copper coils are driven by a walking beam and a walking mechanism, and the roll turning machine has a complex structure, which is not conducive to quickly transporting the copper coils.
[0003] Therefore, there is a lack of a device with a simple structure and high transportation efficiency in the prior art. CONTENT OF THE UTILITY MODEL
[0004] The present application aims to provide a wood bracket quick pushing-out device, which is applied to the technical field of metallurgical mechanical equipment and has the advantages of simple structure, convenient operation, turning direction meeting actual needs, and high transportation efficiency.
[0005] In a first aspect, a wood bracket quick pushing-out device includes at least a turnable coil receiving structure and a first driving device connected to the coil receiving structure.
[0006] The coil receiving structure includes at least a first supporting plate and a second supporting plate arranged perpendicularly to each other, the first supporting plate is used to receive vertical copper coils, and the second supporting plate is provided with a wood bracket connected slidingly to the second supporting plate, and the wood bracket is used to receive horizontal copper coils.
[0007] The wood bracket quick pushing-out device further includes a second driving device, which is used to drive the wood bracket to run along the second supporting plate to transport the horizontal copper coils.
[0008] This application proposes a rapid ejection device for wooden trays, which solves the problem of how to quickly eject wooden trays to improve the efficiency of copper coil transportation by setting up a flip-up coil-jointing structure and two driving devices. A first support plate and a second support plate are used to support vertical and horizontal copper coils, respectively. The wooden tray is slidably connected to the second support plate and is driven by the second driving device to move along the second support plate, thereby realizing the transportation of horizontal copper coils. The first driving device is responsible for flipping the coil-jointing structure, enabling the device to flexibly handle the conversion and transportation of vertical and horizontal copper coils. Therefore, this device has the advantages of simple structure, convenient operation, flipping direction that meets actual needs, and high transportation efficiency.
[0009] Furthermore, a saddle is provided on the first support plate, the saddle being used to support the vertical copper coil.
[0010] This application discloses a quick-release device for a wooden support, in which a saddle is provided on a first support plate to provide a specialized structure for more stable reception and support of vertical copper coils. By setting the saddle on the first support plate, the stability of the vertical copper coils can be ensured during flipping and transportation, thereby improving operational safety and efficiency.
[0011] Furthermore, it also includes a connecting structure, one end of which is fixed to the winding structure, and the other end is hinged to the first driving device. The first driving device drives the connecting structure to rotate around the hinged end, thereby causing the winding structure to rotate.
[0012] This application proposes a quick-release device for a wooden tray. The combination of the connecting structure and the first driving device enables the coil-jointing structure to be flipped, and this flipping mechanism simplifies the transportation and handling of copper coils. This design solves the problem of how to achieve the flipping of the coil-jointing structure, improving the operating efficiency and ease of use of the device.
[0013] Furthermore, the connecting structure is fixed at the connection between the first support plate and the second support plate.
[0014] This application discloses a quick-release device for a wooden bracket, in which a connecting structure is fixed at the connection between a first support plate and a second support plate. This technical feature ensures stable connection during operation by fixing the connecting structure, preventing instability from affecting the quick release of the wooden bracket. By fixing the connecting structure at the connection between the first and second support plates, the problem of fixing the connecting structure in the quick-release device is solved, ensuring the stability and reliability of the device during operation, thereby improving the device's working efficiency.
[0015] Furthermore, a linear guide rail is provided on the second support plate, which is arranged along the extension direction of the second support plate, so that the wooden bracket transports the horizontal copper coil along the linear guide rail.
[0016] Furthermore, a moving platform is provided on the linear guide rail, and the wooden bracket is connected to the moving platform. The moving platform is used to support the wooden bracket and transport the horizontal copper coil along the linear guide rail.
[0017] Furthermore, the second driving device is connected to the mobile platform and is used to drive the mobile platform to move, thereby driving the wooden bracket to transport the horizontal copper coil.
[0018] Furthermore, a limit block is provided at the end of the linear guide rail near the first support plate, and the limit block is used to limit the displacement of the moving platform.
[0019] Furthermore, the mobile platform is provided with a wedge-shaped groove, which is used to fix the wooden bracket.
[0020] Furthermore, the saddle includes at least a fixed part and a movable part, the fixed part and the movable part being spaced apart, the movable part being connected to a third driving device, the third driving device being used to drive the movable part to move closer to or away from the fixed part, so as to clamp or loosen the vertical copper coil.
[0021] Beneficial Effects: This application proposes a rapid ejection device for wooden trays, which solves the problem of how to quickly eject wooden trays to improve the efficiency of copper coil transportation by setting up a flip-out coil-jointing structure and two driving devices. A first support plate and a second support plate are used to support vertical and horizontal copper coils, respectively. The wooden tray is slidably connected to the second support plate and is driven by the second driving device to run along the second support plate, thereby realizing the transportation of horizontal copper coils. The first driving device is responsible for flipping the coil-jointing structure, enabling the device to flexibly handle the conversion and transportation of vertical and horizontal copper coils. Therefore, this device has the beneficial effects of simple structure, convenient operation, flipping direction that meets actual needs, and high transportation efficiency. Attached Figure Description
[0022] Figure 1 This is a schematic diagram of the structure of a quick-release device for a wooden bracket before it is flipped, as provided in this application.
[0023] Figure 2 This is a schematic diagram of the structure of a quick-release device for a wooden bracket provided in this application after it has been flipped over.
[0024] Figure 3 A schematic diagram of the structure of the mobile platform provided in this application.
[0025] Figure 4 A structural schematic diagram of the first support plate provided in this application.
[0026] In the diagram: 1. Coil splicing structure; 2. First drive device; 11. First support plate; 12. Second support plate; 3. Wooden bracket; 4. Copper coil; 5. Connecting structure; 52. Hinge end; 121. Linear guide rail; 122. Moving platform; 1221. Wedge groove; 1211. Limiting block; 111. Saddle; 112. Fixed part; 113. Moving part; 114. Third drive device; 6. Second drive device. Detailed Implementation
[0027] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of this application, and not all of the embodiments. The components of the embodiments of this application described and marked in the accompanying drawings can be arranged and designed in various different configurations. Therefore, the following detailed description of the embodiments of this application provided in the accompanying drawings is not intended to limit the scope of the claimed application, but merely to illustrate selected embodiments of this application. All other embodiments obtained by those skilled in the art based on the embodiments of this application without inventive effort are within the scope of protection of this application.
[0028] It should be noted that similar labels and letters in the following figures indicate similar items. Therefore, once an item is defined in one figure, it does not need to be further defined and explained in subsequent figures.
[0029] Currently, there is a lack of a simple device in the prior art that can improve the transport efficiency of a turning machine. To solve this problem, this application proposes a quick-release device for a wooden bracket.
[0030] In a first aspect, a quick-release device for a wooden bracket includes at least a reversible coiling structure 1 and a first drive device 2 connected to the coiling structure 1.
[0031] The coil-jointing structure 1 includes at least a first support plate 11 and a second support plate 12 arranged perpendicularly to each other. The first support plate 11 is used to support the vertical copper coil 4, and the second support plate 12 is provided with a wooden bracket 3 that is slidably connected to the second support plate 12. The wooden bracket 3 is used to support the horizontal copper coil 4.
[0032] It also includes a second drive unit 6, which drives the wooden bracket 3 to run along the second support plate 12 to transport the horizontal copper coil 4.
[0033] Existing coil turning machines suffer from complex structures and time-consuming processes when turning and transporting copper coils 4. This application solves the problem of how to quickly extend the wooden support frame 3 to improve the transport efficiency of copper coils 4 by setting up a reversible coil receiving structure 1 and two drive devices. The first support plate 11 and the second support plate 12 are used to support vertical and horizontal copper coils 4, respectively. The wooden support frame 3 is slidably connected to the second support plate 12 and is driven by the second drive device 6 to run along the second support plate 12, thereby realizing the transport of horizontal copper coils 4. The first drive device 2 is responsible for turning the coil receiving structure 1, so that the first support plate 11 and the second support plate 12 are simultaneously turned 90°, thereby enabling the device to flexibly handle the conversion and transport of vertical and horizontal copper coils 4.
[0034] In this application, the first support plate 11 is used to support the vertical copper coil 4, and the second support plate 12 is provided with a wooden bracket 3 for supporting the horizontal copper coil 4. The second drive device 6 is used to drive the wooden bracket 3 to run along the second support plate 12 to realize the transportation of the horizontal copper coil 4. The first drive device 2 is connected to the coil-receiving structure 1 and drives the coil-receiving structure 1 to rotate, thereby enabling the device to flexibly handle the conversion and transportation of vertical and horizontal copper coils 4.
[0035] In the specific implementation, please refer to Figure 1 , Figure 2 The first support plate 11 and the second support plate 12 are used to support the vertical and horizontal copper coils 4, respectively. The wooden bracket 3 is slidably connected to the second support plate 12 and is driven by the second drive device 6 to run along the second support plate 12, thereby realizing the transportation of the horizontal copper coil 4. The first drive device 2 is responsible for flipping the coil receiving structure 1, so that the device can flexibly handle the conversion and transportation of the vertical and horizontal copper coils 4.
[0036] This application significantly simplifies the structure of the coil turning machine and improves the transport efficiency of the copper coil 4 by setting a reversible coiling structure 1 and two drive devices. Compared with the prior art, the device of this application is not only simple in structure, but also can quickly realize the turning and transport of the copper coil 4, thereby improving production efficiency.
[0037] The rapid ejection device for the wooden tray 3 in this application solves the problem of how to quickly eject the wooden tray 3 to improve the transportation efficiency of the copper coil 4 by setting up a flip-up coiling structure 1 and two drive devices. The first support plate 11 and the second support plate 12 are used to support vertical and horizontal copper coils 4, respectively. The wooden tray 3 is slidably connected to the second support plate 12 and is driven by the second drive device 6 to run along the second support plate 12, thereby realizing the transportation of horizontal copper coils 4. The first drive device 2 is responsible for flipping the coiling structure 1, so that the device can flexibly handle the conversion and transportation of vertical and horizontal copper coils 4. Thus, this application not only simplifies the structure of the coil flipping machine, but also significantly improves the transportation efficiency of the copper coil 4.
[0038] Furthermore, a saddle 111 is provided on the first support plate 11, which is used to support the vertical copper coil 4.
[0039] The saddle 111 provides a specialized structure on the first support plate 11 to more stably support and hold the vertical copper coil 4. By setting the saddle 111 on the first support plate 11, the stability of the vertical copper coil 4 during flipping and transportation can be ensured, thereby improving the safety and efficiency of operation.
[0040] The design of the saddle 111 can be varied. For example, the saddle 111 can be configured as a single piece of recessed mounting structure, or it can be configured to include a fixed part 112 and a movable part 113. The movable part 113 is adjusted by a third drive device 114 to clamp or release the vertical copper coil 4. The adjustment of the movable part 113 can be achieved by hydraulic, pneumatic, or electric devices to accommodate copper coils 4 of different sizes and weights.
[0041] This application solves the problem of instability of vertical copper coil 4 during flipping and transportation in the prior art by setting a saddle 111 on the first support plate 11. Compared with the prior art, the solution of this application has a simple structure and can effectively improve the transportation efficiency and safety of copper coil 4.
[0042] Furthermore, it also includes a connecting structure 5, one end of which is fixed to the winding structure 1, and the other end is hinged to the first driving device 2. The first driving device 2 drives the connecting structure 5 to rotate around the hinged end 52, thereby causing the winding structure 1 to rotate.
[0043] This technical solution, through the combination of the connecting structure 5 and the first driving device 2, enables the coiling structure 1 to be flipped. This flipping mechanism simplifies the transportation and handling of the copper coil 4. This design solves the problem of how to achieve the flipping of the coiling structure 1, improving the operational efficiency and ease of use of the device.
[0044] Specifically, the connecting structure 5 can adopt a hinge or other suitable connection method, with one end fixed to the coiling structure 1 and the other end hinged to the first driving device 2. The first driving device 2 can be a common driving device such as a hydraulic cylinder or an electric push rod, which drives the connecting structure 5 to rotate around the hinge end 52, thereby realizing the rotation action of the coiling structure 1. As a result, the copper coil 4 can be more easily changed from vertical to horizontal or vice versa during transportation and processing.
[0045] As a preferred embodiment, the connecting structure 5 can be designed to withstand a large load to ensure stability and reliability during the flipping process. The first drive device 2 can select appropriate driving force and stroke according to specific needs to adapt to the flipping requirements of copper coils 4 of different specifications and weights.
[0046] Compared with existing technologies, this application achieves the flipping of the coiling structure 1 through a simple combination of the connecting structure 5 and the driving device, significantly simplifying the transportation and handling process of the copper coil 4, reducing flipping time, and improving production efficiency. This solution is simple in structure, easy to implement, and has high practical value.
[0047] Furthermore, the connecting structure 5 is fixed at the connection between the first support plate 11 and the second support plate 12.
[0048] By fixing the connecting structure 5 at the connection between the first support plate 11 and the second support plate 12, the connection of the device is ensured to be stable during operation, avoiding the impact of unstable connection on the rapid ejection of the wooden bracket 3. This solves the problem of fixing the connecting structure 5 in the rapid ejection device for the wooden bracket 3, ensuring the stability and reliability of the device during operation, and thus improving the working efficiency of the device.
[0049] Specifically, the connecting structure 5 can be fixed at the connection between the first support plate 11 and the second support plate 12 by means of welding, bolting, or other methods. This fixing method can be selected according to actual needs to ensure the stability and reliability of the connection. For example, welding provides higher strength and stability, while bolting facilitates disassembly and maintenance. As a preferred embodiment, reinforcing ribs or support structures can be provided at the connection to further enhance the stability of the connection.
[0050] Through the aforementioned technical means, this application demonstrates significant advantages in solving the problem of fixing the connecting structure 5 in the quick-release device for the wooden bracket 3. Compared with the prior art, this application ensures the stability and reliability of the device during operation by fixing the connecting structure 5, avoiding malfunctions and inefficiencies caused by unstable connections, and significantly improving the working efficiency and service life of the device.
[0051] Furthermore, a linear guide rail 121 is provided on the second support plate 12. The linear guide rail 121 is arranged along the extension direction of the second support plate 12 so that the wooden bracket 3 transports the horizontal copper coil 4 along the linear guide rail 121.
[0052] The linear guide rail 121 allows the wooden support 3 to move along a fixed path when transporting the horizontal copper coil 4, thereby improving the stability and efficiency of transportation. This method solves the problem of potential offset and instability of the wooden support 3 during transportation, ensuring the safe transport of the copper coil 4.
[0053] The linear guide rail 121 can be a standard industrial guide rail, made of high-strength steel or alloy to ensure its load-bearing capacity and durability. The length of the guide rail can be customized to meet specific transportation needs, ensuring smooth movement of the wooden bracket 3 during transport. Furthermore, the installation position and method of the guide rail can be adjusted according to the specific equipment structure to adapt to different working environments.
[0054] By setting a linear guide rail 121, the wooden bracket 3 can move along a fixed path when transporting the horizontal copper coil 4, significantly improving the stability and efficiency of transportation. Compared with the prior art, the technical solution of this application has a simpler structure, is easier to implement and maintain, and effectively solves the problems of possible offset and instability of the wooden bracket 3 during transportation, thereby ensuring the safe transportation of the copper coil 4.
[0055] Furthermore, a moving platform 122 is provided on the linear guide rail 121, and the wooden bracket 3 is connected to the moving platform 122. The moving platform 122 is used to support the wooden bracket 3 to transport the horizontal copper coil 4 along the linear guide rail 121.
[0056] The system incorporates a movable platform 122 mounted on a linear guide rail 121. The wooden support 3 is connected to the movable platform 122, which supports the wooden support 3 and transports the horizontal copper coil 4 along the linear guide rail 121. The movable platform 122 enhances the stability and efficiency of the wooden support 3 during transportation.
[0057] The mobile platform 122 can be implemented in various ways. For example, it can be driven by an electric motor, which moves the mobile platform 122 along the linear guide rail 121. Alternatively, it can be hydraulically driven, with the movement of the mobile platform 122 controlled by a hydraulic system. Furthermore, a limit device can be installed on the mobile platform 122 to ensure that its movement range on the linear guide rail 121 is controlled and to prevent it from exceeding a predetermined range. In addition, the connection method between the mobile platform 122 and the wooden bracket 3 can be diversified, such as using bolt connections or snap-fit connections, to ensure the stability and reliability of the connection.
[0058] The design of the moving platform 122 on the linear guide rail 121 makes the wooden bracket 3 more stable when transporting the horizontal copper coil 4, avoiding the shaking and instability problems that may occur in traditional transportation methods. Compared with the prior art, the solution of this application simplifies the structure of the transportation device, improves transportation efficiency, reduces complex operation steps in the coiling process, and effectively improves the production efficiency of the factory.
[0059] Furthermore, the second drive device 6 is connected to the mobile platform 122 and is used to drive the mobile platform 122 to move, thereby driving the wooden bracket 3 to transport the horizontal copper coil 4.
[0060] The system is connected to the mobile platform 122 via a second drive device 6, which drives the mobile platform 122 to move along the linear guide rail 121. The mobile platform 122 is connected to the wooden support 3; therefore, when the mobile platform 122 moves, the wooden support 3 also moves, thus realizing the transport of the horizontal copper coil 4. This technical solution solves the problems of complex structure and long turning time in existing coil-turning machines by simplifying the structure and improving transport efficiency.
[0061] The second drive unit 6 can employ common drive methods such as motors, hydraulic cylinders, or pneumatic cylinders. Specifically, the motor can be connected to the moving platform 122 via a transmission mechanism such as gears, chains, or belts, while the hydraulic cylinder or pneumatic cylinder can directly drive the moving platform 122 via a piston rod. The moving platform 122 can be designed with a structure featuring guide wheels or sliders to ensure smooth movement on the linear guide rail 121. Furthermore, the fixing mechanism on the moving platform 122 can employ wedge grooves 1221, buckles, or clamps to ensure that the wooden bracket 3 does not shift during transportation.
[0062] Furthermore, a limit block 1211 is provided at the end of the linear guide 121 near the first support plate 11. The limit block 1211 is used to limit the displacement of the moving platform 122.
[0063] One key technical feature of this application is that a limiting block 1211 is provided at the end of the linear guide rail 121 near the first support plate 11. The limiting block 1211 is used to restrict the displacement of the moving platform 122. This feature, by limiting the displacement of the moving platform 122, prevents excessive displacement of the moving platform 122 during the transport of the horizontal copper coil 4, thereby ensuring the stability and safety of the transport process. By providing the limiting block 1211 at the end of the linear guide rail 121, the displacement range of the moving platform 122 can be effectively controlled, avoiding transport instability caused by excessive displacement, thus improving the safety and efficiency of copper coil 4 transport.
[0064] The limiting block 1211 can be implemented in various ways. For example, the limiting block 1211 can be a mechanical structure fixed to the end of the linear guide rail 121, or an adjustable block fixed by bolts. Furthermore, the material of the limiting block 1211 can be selected from materials with high strength and wear resistance, such as steel or engineering plastics, to ensure its reliability during long-term use. In addition, the shape and size of the limiting block 1211 can be designed according to specific application requirements to adapt to different specifications of the moving platform 122 and the linear guide rail 121.
[0065] This application effectively solves the problem of excessive displacement of the moving platform 122 during the transportation of horizontal copper coil 4 by setting a limiting block 1211 at the end of the linear guide rail 121. Compared with the prior art, this application provides a simple and easy-to-implement solution, which significantly improves the stability and safety of the transportation process, reduces the risk of transportation accidents caused by excessive displacement of the moving platform 122, and thus improves the efficiency and reliability of copper coil 4 transportation.
[0066] Furthermore, the mobile platform 122 is provided with a wedge-shaped groove 1221, which is used to fix the wooden bracket 3.
[0067] Please refer to Figure 3 The wedge-shaped groove 1221 on the mobile platform 122 is used to fix the wooden bracket 3. As a fixing device, the wedge-shaped groove 1221 can effectively secure the wooden bracket 3, thereby maintaining its stability during the transport of the horizontal copper coil 4. Through this design, the wooden bracket 3 will not move or tilt during transport, improving the safety and efficiency of transportation.
[0068] The wedge-shaped groove 1221 can be implemented in various ways; for example, it can be designed as a V-shaped groove or a U-shaped groove to accommodate wooden brackets 3 of different shapes and sizes. The depth and width of the wedge-shaped groove 1221 can be adjusted according to the specifications of the wooden bracket 3 to ensure that the wooden bracket 3 can be firmly fixed in the groove. In addition, the material of the wedge-shaped groove 1221 can be selected as a wear-resistant and high-strength material to ensure its durability and reliability in long-term use.
[0069] By setting a wedge-shaped groove 1221 on the mobile platform 122, this application effectively solves the problem that the wooden bracket 3 is prone to movement or tilting during transportation in the prior art. Compared with the prior art, the technical solution of this application has the advantages of simple structure, convenient operation, and high stability, which significantly improves the safety and efficiency of copper coil 4 transportation.
[0070] Furthermore, the saddle 111 includes at least a fixed part 112 and a movable part 113, with the fixed part 112 and the movable part 113 spaced apart. The movable part 113 is connected to a third drive device 114, which is used to drive the movable part 113 to move closer to or away from the fixed part 112 to clamp or release the upright copper coil 4.
[0071] Please refer to Figure 4 The fixed part 112 and the movable part 113 are separated. The movable part 113 is driven by a third drive device 114 and can move closer to or away from the fixed part 112. In this way, the vertical copper coil 4 can be clamped or released. This technical solution solves the problem of how to clamp or release the vertical copper coil 4 by driving the movable part 113 closer to or away from the fixed part 112 through the third drive device 114.
[0072] The design of the movable part 113 and the fixed part 112 can be implemented in various ways. As one possible implementation, the movable part 113 can be connected to the fixed part 112 via a sliding mechanism, thereby ensuring the stability of the movable part 113 when it approaches or moves away from the fixed part 112. The third drive device 114 can be a hydraulic cylinder, an electric actuator, or other drive device capable of providing linear motion. Specifically, a hydraulic cylinder can provide a larger driving force, suitable for applications requiring a larger clamping force, while an electric actuator has the advantages of high control precision and fast response speed. Furthermore, the surfaces of the movable part 113 and the fixed part 112 can be designed with an anti-slip material to increase the clamping effect on the vertical copper coil 4.
[0073] This application achieves clamping or loosening of the upright copper coil 4 by setting a fixed part 112 and a movable part 113, and using a third driving device 114 to drive the movable part 113 to move closer to or away from the fixed part 112. Compared with the prior art, the solution of this application has a simple structure and is easy to operate, which can effectively improve the clamping and loosening efficiency of the copper coil 4, thereby improving the overall production efficiency.
[0074] The above description is merely an embodiment of this application and is not intended to limit the scope of protection of this application. Various modifications and variations can be made to this application by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this application should be included within the scope of protection of this application.
Claims
1. A quick-release device for a wooden bracket, characterized in that, It includes at least a reversible splicing structure (1) and a first drive device (2) connected to the splicing structure (1); The coil-jointing structure (1) includes at least a first support plate (11) and a second support plate (12) arranged perpendicularly to each other. The first support plate (11) is used to support the vertical copper coil (4). The second support plate (12) is provided with a wooden bracket (3) that is slidably connected to the second support plate (12). The wooden bracket (3) is used to support the horizontal copper coil (4). It also includes a second drive unit (6) for driving the wooden bracket (3) to run along the second support plate (12) to transport the horizontal copper coil (4).
2. The quick-release device for a wooden bracket according to claim 1, characterized in that, The first support plate (11) is provided with a saddle (111), which is used to support the vertical copper coil (4).
3. The quick-release device for a wooden bracket according to claim 2, characterized in that, It also includes a connecting structure (5), one end of which is fixed to the winding structure (1), and the other end is hinged to the first driving device (2). The first driving device (2) drives the connecting structure (5) to rotate around the hinge end (52), thereby causing the winding structure (1) to rotate.
4. The quick-release device for a wooden bracket according to claim 3, characterized in that, The connecting structure (5) is fixed at the connection between the first support plate (11) and the second support plate (12).
5. The quick-release device for a wooden bracket according to claim 1, characterized in that, A linear guide rail (121) is provided on the second support plate (12), and the linear guide rail (121) is provided along the extension direction of the second support plate (12) so that the wooden bracket (3) transports the horizontal copper coil (4) along the linear guide rail (121).
6. A quick-release device for a wooden bracket according to claim 5, characterized in that, A moving platform (122) is provided on the linear guide rail (121), and the wooden bracket (3) is connected to the moving platform (122). The moving platform (122) is used to support the wooden bracket (3) to transport the horizontal copper coil (4) along the linear guide rail (121).
7. A quick-release device for a wooden bracket according to claim 6, characterized in that, The second drive device (6) is connected to the mobile platform (122) and is used to drive the mobile platform (122) to move, thereby driving the wooden bracket (3) to transport the horizontal copper coil (4).
8. A quick-release device for a wooden bracket according to claim 7, characterized in that, The linear guide rail (121) is provided with a limit block (1211) at the end near the first support plate (11), and the limit block (1211) is used to limit the displacement of the moving platform (122).
9. A quick-release device for a wooden bracket according to claim 8, characterized in that, The mobile platform (122) is provided with a wedge-shaped groove (1221), which is used to fix the wooden bracket (3).
10. A quick-release device for a wooden bracket according to claim 2, characterized in that, The saddle (111) includes at least a fixed part (112) and a movable part (113), the fixed part (112) and the movable part (113) are spaced apart, the movable part (113) is connected to a third driving device (114), the third driving device (114) is used to drive the movable part (113) to move closer to or away from the fixed part (112) to clamp or loosen the vertical copper coil (4).
Citation Information
Patent Citations
Coil tilter arranged parallel to conveying line
CN108569539A