Transposition guide structure
By designing the electromagnetic wire, limiting frame, and moving component inside the housing, and combining the notch wrapping and movement of the transposition component, the problem that the transposition guide structure cannot restrict the copper flat wire in all directions is solved, and the tight arrangement and seamless transposition of the copper flat wire are realized.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- 沈阳昌盛电气设备科技有限公司
- Filing Date
- 2025-05-29
- Publication Date
- 2026-05-29
AI Technical Summary
The existing transposition guide structure cannot fully restrict the copper flat wire during the transposition process, which makes it easy for gaps to appear in the vertical direction of the copper flat wire after transposition.
The structure includes a shell, an electromagnetic wire, a limiting frame, a moving component, and a shifting component. The moving component pushes the electromagnetic wire to move vertically, and the shifting component uses its notch to wrap and move, achieving all-round restriction and avoiding gaps.
It achieves all-round restriction of copper flat wires during transposition, avoids gaps, and ensures tight arrangement of electromagnetic wires.
Smart Images

Figure CN224304432U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of electromagnetic wire production technology, specifically to a transposition guide structure. Background Technology
[0002] Transposed conductors refer to two rows of enameled copper flat wires with a certain number of wires in contact with each other on the wide side. The wires are transposed in the same direction on the top and bottom sides of the two rows of enameled wires as required. They are then wrapped with multiple layers of electrical insulating paper tape. A transposition guide structure is required during the transposition process.
[0003] However, existing transposition guide structures, when in use, involve passing two rows of copper flat wires through the guide structure and pushing the copper flat wire to be transposed. This causes one of the top and bottom wires of the two rows of copper flat wires to be transposed in a clockwise direction, thus moving this wire to the other row of copper flat wires. At the same time, the two rows of copper flat wires move vertically in opposite directions by the thickness of a single copper flat wire. However, a certain amount of space needs to be reserved during the transposition of the copper flat wires. In addition, the transposition guide structure only applies a lateral force to the copper flat wires, which provides little restriction on the copper flat wires. It cannot provide comprehensive restriction on the copper flat wires during the transposition process, resulting in gaps easily appearing after the transposition, as the vertical direction of the copper flat wires is not restricted. Summary of the Invention
[0004] The purpose of this invention is to solve the problem that existing transposition guide structures cannot fully restrict the copper flat wire during the transposition process, resulting in gaps easily appearing because the vertical direction of the copper flat wire is not restricted after transposition.
[0005] To achieve the above objectives, this utility model provides the following technical solution:
[0006] The transposition guide structure includes:
[0007] shell;
[0008] Two sets of electromagnetic wires, each set consisting of multiple sets of flat wires, are arranged side by side and penetrate the outer shell;
[0009] Two sets of limiting frames, which are connected together to limit the movement of the two sets of electromagnetic wires;
[0010] The first moving component is disposed inside the housing and located on one side of the two sets of electromagnetic wires, for pushing one set of electromagnetic wires to move vertically;
[0011] The second moving component is disposed inside the housing and located on the other side of the two sets of electromagnetic wires, for pushing the other set of electromagnetic wires to move vertically;
[0012] A transposition component is disposed in the middle of the interior of the housing and is used to adjust the position of a set of flat lines. The transposition component includes a transposition member, which has a notch at one end near the flat line, and the inner diameter of the notch is slightly larger than the outer diameter of the flat line, so that the notch can wrap around a set of flat lines.
[0013] Preferably, the transposition component further includes:
[0014] An extension component is disposed at the end of the transposition member away from the electromagnetic wire and is fixedly connected to the transposition member;
[0015] A connector is disposed at one end of the extension component and connected to the extension component; a first cylindrical pin is provided at the end of the connector away from the extension component.
[0016] A rotating component, one end of which is provided with a first sliding groove, so that the first cylindrical pin is placed in the first sliding groove, and the rotating component is slidably connected to the connecting component through the first sliding groove;
[0017] An electric motor, the output end of which is fixedly connected to the other end of the rotating component;
[0018] A slider is disposed at the end of the extension assembly away from the connector and is connected to the extension assembly;
[0019] A limiting plate is provided with a slide rail on one side, so that the sliding member is placed in the slide rail and the limiting plate is slidably connected to the sliding member through the slide rail.
[0020] Preferably, the extension component includes:
[0021] A sleeve, the outer side of which is fixedly connected to the end of the switching member away from the electromagnetic wire; the inner wall of the sleeve is slidably connected to the connecting member;
[0022] A movable ring is disposed inside the sleeve on the side away from the connector and is slidably connected to the sleeve;
[0023] An elastic element is disposed inside the sleeve and located between the moving ring and the connecting member;
[0024] A threaded rod passes through the center of the sliding member and is rotatably connected to the sliding member; the threaded rod is threadedly connected to the movable ring.
[0025] The handwheel has its axis fixedly connected to one end of the threaded rod near the sliding member.
[0026] Preferably, the first moving component includes:
[0027] The first movable plate is arranged parallel to the lower part of the electromagnetic wire;
[0028] The first electric push rod has its output end fixedly connected to the lower end face of the first moving plate.
[0029] Preferably, one side of the first movable plate and the side of the two sets of electromagnetic wires in contact with each other are in the same vertical plane.
[0030] Preferably, the second moving component includes:
[0031] The second movable plate is arranged parallel to the electromagnetic wire above it;
[0032] The output end of the second electric push rod is fixedly connected to the lower end face of the first moving plate.
[0033] Preferably, one side of the second movable plate is in the same vertical plane as the side of the two sets of electromagnetic wires that are in contact with each other.
[0034] Preferably, it further includes: a guide component; the guide component is disposed inside the housing and connected to the limiting frame, and is used to adjust the position of the limiting frame.
[0035] Preferably, the guiding component includes:
[0036] Two sets of connecting plates, one end of each set of connecting plates is fixedly connected to the side of the limiting frame away from the electromagnetic wire;
[0037] Two sets of connecting parts, each set of connecting parts consists of a square plate and a second cylindrical pin, the lower end face of the square plate is fixedly connected to one end of the second cylindrical pin; the upper end face of the square plate is fixedly connected to the other end of the connecting plate;
[0038] Two sets of slotted plates, each set of slotted plates having a second sliding groove on its surface, so that the second cylindrical pin is placed in the second sliding groove, and the slotted plate is slidably connected to the connecting part through the second sliding groove;
[0039] A horizontal plate is disposed between the two sets of grooved plates, and both ends of the horizontal plate are fixedly connected to the two sets of grooved plates.
[0040] The third electric push rod, the output end of which is fixedly connected to one side of the horizontal plate.
[0041] Preferably, the guide assembly further includes a limiting rod; the limiting rod passes through the two sets of connecting plates and is slidably connected to the connecting plates.
[0042] The beneficial effects of this utility model are as follows: by operating the switching component, the switching member first moves downward to wrap the misaligned flat wire, and then moves horizontally to push the misaligned flat wire horizontally, so that this group of flat wires moves above another group of electromagnetic wires. Then the switching member moves upward to separate the switching member from the flat wire, and then moves horizontally in the opposite direction to move the switching member back to its original position to switch the next group of flat wires. By using the switching member to completely wrap the flat wire, the copper flat wire is restricted in all directions during the switching process, avoiding gaps. Attached Figure Description
[0043] Figure 1 This is a schematic diagram of the structure of this utility model;
[0044] Figure 2 for Figure 1 A three-dimensional schematic diagram of the internal connection structure;
[0045] Figure 3 for Figure 2 A three-dimensional diagram of the central connecting structure viewed from below;
[0046] Figure 4 for Figure 3 Enlarged 3D schematic diagram of the central connecting structure;
[0047] Figure 5 for Figure 4 Exploded view of the central connecting structure;
[0048] Figure 6 for Figure 2 Enlarged 3D schematic diagram of the central connecting structure;
[0049] Figure 7 for Figure 6 A three-dimensional diagram of the connecting structure viewed from below.
[0050] In the diagram: 1. Outer shell, 2. Limiting frame, 3. First moving plate, 4. First electric push rod, 5. Second moving plate, 6. Second electric push rod, 7. Switching component, 8. Sleeve, 9. Connecting component, 10. Rotating component, 11. Motor, 12. Sliding component, 13. Limiting plate, 14. Elastic component, 15. Moving ring, 16. Threaded rod, 17. Handwheel, 18. Connecting plate, 19. Limiting rod, 20. Connecting part, 21. Groove plate, 22. Horizontal plate, 23. Third electric push rod, 24. Electromagnetic wire. Detailed Implementation
[0051] The present invention will be further described below with reference to the accompanying drawings:
[0052] This embodiment:
[0053] Please see Figure 1-7In this embodiment, the displacement guide structure includes: a shell 1, two sets of electromagnetic wires 24, two sets of limiting frames 2, a first moving component, a second moving component, and a displacement component.
[0054] In this embodiment, each set of electromagnetic wires 24 consists of multiple sets of flat wires, and the two sets of electromagnetic wires 24 are arranged side by side and penetrate the outer shell 1.
[0055] In this embodiment, the transposition is achieved by shifting the two sets of electromagnetic wires 24 side by side by the thickness of a flat wire, and moving the shifted flat wire from one set of electromagnetic wires 24 to another set of electromagnetic wires 24.
[0056] After the two sets of limiting frames 2 are connected, they limit the movement of the two sets of electromagnetic wires 24.
[0057] In this embodiment, the limiting frame 2 can limit the two sets of electromagnetic wires 24 arranged side by side, making the electromagnetic wires 24 more compact.
[0058] The first moving component is disposed inside the housing 1 and located on one side of the two sets of electromagnetic wires 24, for pushing one set of electromagnetic wires 24 to move vertically.
[0059] In this embodiment, the first moving component is used to push a set of electromagnetic wires 24 upward.
[0060] The second moving component is located inside the housing 1 and on the other side of the two sets of electromagnetic wires 24, and is used to push the other set of electromagnetic wires 24 to move vertically.
[0061] In this embodiment, the second moving component can push another set of electromagnetic wires 24 downward.
[0062] The shifting component is located in the middle of the interior of the housing 1 and is used to adjust the position of a set of flat lines. The shifting component includes a shifting member 7, which has a notch at one end near the flat line. The inner diameter of the notch is slightly larger than the outer diameter of the flat line, so that the notch can wrap around a set of flat lines.
[0063] In this embodiment, by operating the transposition component, the transposition member 7 first moves downward to wrap around the misaligned flat wire, and then moves horizontally to push the misaligned flat wire horizontally, so that this group of flat wires moves above another group of electromagnetic wires 24. Then, the transposition member 7 moves upward to separate from the flat wire, and then moves horizontally in the opposite direction to move the transposition member 7 back to its original position to transpose the next group of flat wires. By using the transposition member 7 to completely wrap the flat wire, the copper flat wire is restricted in all directions during the transposition process to avoid gaps.
[0064] like Figure 4 and Figure 5As shown, the repositioning assembly also includes: an extension assembly, a connector 9, a rotating component 10, a motor 11, a sliding component 12, and a limiting plate 13.
[0065] The extension component is located at the end of the transposition member 7 away from the electromagnetic wire 24 and is fixedly connected to the transposition member 7.
[0066] In this embodiment, by changing the length of the extension component, flat lines of different thicknesses can be interchanged; there is additional space for movement in the extension component.
[0067] The connector 9 is disposed at one end of the extension assembly and is connected to the extension assembly; a first cylindrical pin is provided at the end of the connector 9 away from the extension assembly; a first sliding groove is provided at one end of the rotating member 10, so that the first cylindrical pin is placed in the first sliding groove, and the rotating member 10 is slidably connected to the connector 9 through the first sliding groove.
[0068] In this embodiment, when the rotating member 10 rotates clockwise from its current position, it will push the first cylindrical pin to move horizontally first, then vertically downward, then horizontally in the opposite direction, and finally upward, forming a cycle.
[0069] The output end of the motor 11 is fixedly connected to the other end of the rotating part 10.
[0070] In this embodiment, the model of motor 11 is selected according to actual needs, as long as it meets the working conditions; the output end of motor 11 can drive the connector 9 to rotate.
[0071] The slider 12 is located at the end of the extension assembly away from the connector 9 and is connected to the extension assembly; a slide is provided on one side of the limiting plate 13 so that the slider 12 is placed in the slide and the limiting plate 13 is slidably connected to the slider 12 through the slide.
[0072] In this embodiment, when the slider 12 moves vertically, it moves along the slide rail; when the slider 12 moves horizontally, it pushes the limiting plate 13 to move synchronously; a crossbar is provided on one side of the limiting plate 13, which can restrict the limiting plate 13 to move only horizontally.
[0073] When a repositioning is required, motor 11 is started, and the output of motor 11 drives rotating component 10 to rotate. Rotating component 10 slides between the first slide groove and the first cylindrical pin, pushing connecting component 9 to move horizontally first, then vertically downward, then horizontally in the opposite direction, and finally upward, thus forming a cycle. Connecting component 9 drives sliding component 12 to move through extension component. When sliding component 12 moves vertically, it moves along the slide rail. When sliding component 12 moves horizontally, it pushes limiting plate 13 to move synchronously. On one side of limiting plate 13, a crossbar is provided, which can restrict limiting plate 13 to move only horizontally. At the same time, extension component drives repositioning component 7 to move. When repositioning component 7 moves downward, it wraps around the misaligned flat wire. After horizontal movement, it pushes the flat wire to reposition. When moving upward, it separates from the flat wire. After horizontal movement in the opposite direction, it returns to its original position. Repositioning component 7 completely wraps around the flat wire, thus restricting the copper flat wire in all directions during the repositioning process and avoiding gaps.
[0074] like Figure 5 As shown, the extension assembly includes: sleeve 8, moving ring 15, elastic element 14, threaded rod 16, and handwheel 17.
[0075] Specifically, the outer side of the sleeve 8 is fixedly connected to the end of the transposition member 7 away from the electromagnetic wire 24; the inner wall of the sleeve 8 is slidably connected to the connector 9.
[0076] In this embodiment, the connector 9 can slide along the inner wall of the sleeve 8. By changing the sliding distance, flat lines of different widths can be repositioned. A locking structure is provided at one end of the sleeve 8 near the connector 9, which restricts the position of the connector 9 and prevents the sleeve 8 from detaching from the connector 9.
[0077] The movable ring 15 is located inside the sleeve 8 on the side away from the connector 9, and is slidably connected to the sleeve 8.
[0078] In this embodiment, the movable ring 15 may slide along the inner wall of the sleeve 8.
[0079] The elastic element 14 is disposed inside the sleeve 8 and is located between the moving ring 15 and the connecting element 9.
[0080] In this embodiment, the elastic element 14 is a spring, which is compressed when the connecting member 9 moves toward the moving ring 15.
[0081] The threaded rod 16 passes through the center of the sliding member 12 and is rotatably connected to the sliding member 12; the threaded rod 16 is threadedly connected to the moving ring 15; the shaft of the handwheel 17 is fixedly connected to the end of the threaded rod 16 near the sliding member 12.
[0082] In this embodiment, the sliding member 12 can support the rotation of the threaded rod 16; the threaded rod 16 can be rotated by rotating the handwheel 17; the threaded rod 16 will cause the moving ring 15 to move horizontally.
[0083] When it is necessary to adjust the movement space of the connector 9, the user drives the threaded rod 16 to rotate by turning the handwheel 17; the threaded rod 16 causes the moving ring 15 to move horizontally; when the moving ring 15 moves towards the connector 9, it reduces the movement space of the connector 9 and compresses the elastic element 14, thereby increasing the movement distance of the sleeve 8 and the shifting element 7, so that a wider flat line can be shifted; conversely, a narrower flat line can be shifted.
[0084] like Figure 6 and Figure 7 As shown, the first moving component includes: a first moving plate 3 and a first electric push rod 4.
[0085] The first movable plate 3 is arranged parallel to the lower part of the electromagnetic wire 24; the output end of the first electric push rod 4 is fixedly connected to the lower end face of the first movable plate 3.
[0086] One side of the first movable plate 3 and the side of the two sets of electromagnetic wires 24 that are in contact with each other are in the same vertical plane.
[0087] In this embodiment, by adjusting the first electric push rod 4, the output end of the first electric push rod 4 will push the first moving plate 3 to move upward, and the first moving plate 3 will push the electromagnetic wires 24 located on the same side to move upward, so that the two sets of electromagnetic wires 24 are misaligned.
[0088] like Figure 6 and Figure 7 As shown, the second moving component includes: a second moving plate 5 and a second electric push rod 6.
[0089] Specifically, the second movable plate 5 is arranged parallel above the electromagnetic wire 24; the output end of the second electric push rod 6 is fixedly connected to the lower end face of the first movable plate 3.
[0090] One side of the second movable plate 5 is in the same vertical plane as the side of the two sets of electromagnetic wires 24 that are in contact with each other.
[0091] In this embodiment, by adjusting the second electric push rod 6, the output end of the second electric push rod 6 will push the second moving plate 5 to move downward, and the second moving plate 53 will push the electromagnetic wires 24 located on the same side to move downward, so that the two sets of electromagnetic wires 24 are misaligned.
[0092] Because the position of the limiting frame 2 cannot be adjusted, it is impossible to limit flat lines of different widths.
[0093] To address the aforementioned issues, this embodiment proposes an implementation method in which the repositioning guide structure further includes a guide component; the guide component is disposed inside the housing 1 and connected to the limiting frame 2, and is used to adjust the position of the limiting frame 2.
[0094] like Figure 6 and Figure 7 As shown, the guide assembly includes: two sets of connecting plates 18, two sets of connecting parts 20, two sets of groove plates 21, a cross plate 22, and a third electric push rod 23.
[0095] In this case, one end of each connecting plate 18 is fixedly connected to the side of the limiting frame 2 away from the electromagnetic wire 24.
[0096] In this embodiment, the connecting plate 18 can drive the limiting frame 2 to move.
[0097] Each set of connecting parts 20 consists of a square plate and a second cylindrical pin. The lower end face of the square plate is fixedly connected to one end of the second cylindrical pin. The upper end face of the square plate is fixedly connected to the other end of the connecting plate 18. A second sliding groove is provided on the surface of each set of slot plates 21, so that the second cylindrical pin is placed in the second sliding groove, and the slot plate 21 is slidably connected to the connecting part 20 through the second sliding groove.
[0098] In this embodiment, when the connecting plate 18 moves, the connecting part 20 moves along the outer wall of the limiting rod 19 by sliding between the second cylindrical pin and the second sliding groove.
[0099] The horizontal plate 22 is disposed between the two sets of slot plates 21, and both ends of the horizontal plate 22 are fixedly connected to the two sets of slot plates 21; the output end of the third electric push rod 23 is fixedly connected to one side of the horizontal plate 22.
[0100] In this embodiment, the model of the third electric push rod 23 is selected according to actual needs, as long as it meets the working conditions;
[0101] When it is necessary to adjust the distance between the two sets of limiting frames 2, the output end of the third electric push rod 23 is adjusted to push the horizontal plate 22 to move, and the horizontal plate 22 simultaneously drives the two sets of slot plates 21 to move; the slot plate 21 slides between the second cylindrical pin and the second sliding groove, causing the connecting part 20 to move along the outer wall of the limiting rod 19; the connecting part 20 drives the limiting frame 2 to move through the connecting plate 18, thereby changing the distance between the two sets of limiting frames 2, which can limit flat lines of different widths.
[0102] like Figure 6 and Figure 7 As shown, the guide assembly also includes a limiting rod 19; the limiting rod 19 passes through the two sets of connecting plates 18 and is slidably connected to the connecting plates 18.
[0103] Working principle:
[0104] When in use, the two sets of parallel electromagnetic wires 24 are passed through the outer shell 1 and the limiting frame 2 in sequence. At this time, by adjusting the first electric push rod 4, the output end of the first electric push rod 4 will push the first moving plate 3 to move upward, and the first moving plate 3 will push the electromagnetic wires 24 on the same side to move upward. At the same time, by adjusting the second electric push rod 6, the output end of the second electric push rod 6 will push the second moving plate 5 to move downward, and the second moving plate 53 will push the electromagnetic wires 24 on the same side to move downward, so that the two sets of electromagnetic wires 24 are misaligned.
[0105] When it is necessary to adjust the distance between the two sets of limiting frames 2, the output end of the third electric push rod 23 is adjusted to push the horizontal plate 22 to move, and the horizontal plate 22 simultaneously drives the two sets of slot plates 21 to move; the slot plate 21 slides between the second cylindrical pin and the second sliding groove, causing the connecting part 20 to move along the outer wall of the limiting rod 19; the connecting part 20 drives the limiting frame 2 to move through the connecting plate 18, thereby changing the distance between the two sets of limiting frames 2, which can limit flat lines of different widths.
[0106] When it is necessary to adjust the movement space of the connector 9, the user drives the threaded rod 16 to rotate by turning the handwheel 17; the threaded rod 16 causes the moving ring 15 to move horizontally; when the moving ring 15 moves towards the connector 9, it reduces the movement space of the connector 9 and compresses the elastic element 14, thereby increasing the movement distance of the sleeve 8 and the shifting element 7, so that a wider flat line can be shifted; conversely, a narrower flat line can be shifted.
[0107] When a repositioning is required, motor 11 is started, and the output of motor 11 drives rotating component 10 to rotate. Rotating component 10 slides between the first slide groove and the first cylindrical pin, pushing connecting component 9 to move horizontally first, then vertically downward, then horizontally in the opposite direction, and finally upward, thus forming a cycle. Connecting component 9 drives sliding component 12 to move through extension component. When sliding component 12 moves vertically, it moves along the slide rail. When sliding component 12 moves horizontally, it pushes limiting plate 13 to move synchronously. On one side of limiting plate 13, a crossbar is provided, which can restrict limiting plate 13 to move only horizontally. At the same time, extension component drives repositioning component 7 to move. When repositioning component 7 moves downward, it wraps around the misaligned flat wire. After horizontal movement, it pushes the flat wire to reposition. When moving upward, it separates from the flat wire. After horizontal movement in the opposite direction, it returns to its original position. Repositioning component 7 completely wraps around the flat wire, thus restricting the copper flat wire in all directions during the repositioning process and avoiding gaps, completing the use of this device.
[0108] Although the present invention has been illustrated and described with reference to preferred embodiments, those skilled in the art should understand that various changes in form and detail are possible within the scope of the claims.
Claims
1. A displacement guide structure, characterized in that: include: Outer shell (1); Two sets of electromagnetic wires (24), each set of electromagnetic wires (24) consists of multiple sets of flat wires, the two sets of electromagnetic wires (24) are arranged side by side and penetrate the outer shell (1); Two sets of limiting frames (2) are connected to limit the two sets of electromagnetic wires (24); The first moving component is disposed inside the housing (1) and located on one side of the two sets of electromagnetic wires (24), for pushing one set of electromagnetic wires (24) to move vertically; The second moving component is disposed inside the housing (1) and located on the other side of the two sets of electromagnetic wires (24), for pushing the other set of electromagnetic wires (24) to move vertically; The shifting component is located in the middle of the interior of the outer shell (1) and is used to adjust the position of a set of flat lines. The shifting component includes a shifting member (7), which has a notch at one end near the flat line, and the inner diameter of the notch is slightly larger than the outer diameter of the flat line, so that the notch can wrap around a set of flat lines.
2. The transposition guide structure according to claim 1, characterized in that: The transposition component further includes: An extension component is disposed at one end of the transposition member (7) away from the electromagnetic wire (24) and is fixedly connected to the transposition member (7); A connector (9) is disposed at one end of the extension component and connected to the extension component; a first cylindrical pin is provided at the end of the connector (9) away from the extension component. Rotating component (10), one end of which is provided with a first sliding groove, so that the first cylindrical pin is placed in the first sliding groove, and the rotating component (10) is slidably connected to the connecting component (9) through the first sliding groove; The motor (11) is fixedly connected to the other end of the rotating part (10); A slider (12) is disposed at the end of the extension assembly away from the connector (9) and is connected to the extension assembly; A limiting plate (13) has a slide rail on one side, so that the sliding member (12) is placed in the slide rail, and the limiting plate (13) is slidably connected to the sliding member (12) through the slide rail.
3. The transposition guide structure according to claim 2, characterized in that: The extension component includes: Sleeve (8), the outer side of which is fixedly connected to the end of the switching member (7) away from the electromagnetic wire (24); the inner wall of the sleeve (8) is slidably connected to the connecting member (9); A movable ring (15) is disposed inside the sleeve (8) on the side away from the connector (9) and is slidably connected to the sleeve (8); An elastic element (14) is disposed inside the sleeve (8) and located between the moving ring (15) and the connecting element (9); A threaded rod (16) passes through the center of the sliding member (12) and is rotatably connected to the sliding member (12); the threaded rod (16) is threadedly connected to the moving ring (15); The handwheel (17) is fixedly connected to the end of the threaded rod (16) near the sliding member (12).
4. The transposition guide structure according to claim 1, characterized in that: The first moving component includes: The first movable plate (3) is arranged parallel to the lower part of the electromagnetic wire (24); The first electric push rod (4) has its output end fixedly connected to the lower end face of the first moving plate (3).
5. The transposition guide structure according to claim 4, characterized in that: One side of the first movable plate (3) is in contact with the side of the two sets of electromagnetic wires (24) in the same vertical plane.
6. The transposition guide structure according to claim 4, characterized in that: The second moving component includes: The second movable plate (5) is arranged parallel above the electromagnetic wire (24); The output end of the second electric push rod (6) is fixedly connected to the lower end face of the first moving plate (3).
7. The transposition guide structure according to claim 6, characterized in that: One side of the second movable plate (5) is in the same vertical plane as the side of the two sets of electromagnetic wires (24) that are in contact with each other.
8. The transposition guide structure according to claim 1, characterized in that: Also includes: Guide component; the guide component is disposed inside the housing (1) and connected to the limiting frame (2) for adjusting the position of the limiting frame (2).
9. The transposition guide structure according to claim 8, characterized in that: The guiding component includes: Two sets of connecting plates (18), one end of each set of connecting plates (18) is fixedly connected to the side of the limiting frame (2) away from the electromagnetic wire (24); Two sets of connecting parts (20), each set of connecting parts (20) consists of a square plate and a second cylindrical pin, the lower end face of the square plate is fixedly connected to one end of the second cylindrical pin; the upper end face of the square plate is fixedly connected to the other end of the connecting plate (18); Two sets of slotted plates (21), each set of slotted plates (21) has a second sliding groove on its surface, so that the second cylindrical pin is placed in the second sliding groove, and the slotted plate (21) is slidably connected to the connecting part (20) through the second sliding groove; A horizontal plate (22) is disposed between the two sets of grooved plates (21), and both ends of the horizontal plate (22) are fixedly connected to the two sets of grooved plates (21); The third electric push rod (23) is fixedly connected to one side of the horizontal plate (22) at its output end.
10. The transposition guide structure according to claim 9, characterized in that: The guide assembly further includes a limiting rod (19); the limiting rod (19) passes through the two sets of connecting plates (18) and is slidably connected to the connecting plates (18).