Magnetic ring winding equipment
Through the combination of wire, wire pushing and winding mechanism, the automatic winding of magnetic ring winding equipment is realized, which solves the problems of frequent mold replacement and high cost in traditional equipment, improves production efficiency and reduces costs.
Patent Information
- Application Number
- CN202511074767.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-01
- Publication Date
- 2025-09-23
AI Technical Summary
Traditional magnetic winding equipment requires high-precision adjustment and frequent mold changes, resulting in low production efficiency and high costs.
The magnetic ring winding equipment combines a conductor, a wire pushing mechanism and a winding mechanism. The conductor mechanism guides the wire, the wire pushing mechanism pushes the wire to move, and the winding mechanism spirally winds the wire onto the magnetic core, thus achieving automatic winding and avoiding the use of molds.
It reduces production costs, improves production efficiency, reduces the frequency of mold replacement, and improves operating efficiency.
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Figure CN120690591A_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of wiring devices, and in particular to a magnetic ring winding device. Background Art
[0002] Traditionally, coil winding for a circular magnetic ring requires a mold to be created. Once the mold is created, the core material can be wound onto the circular magnetic ring. During the winding process, the wire is first introduced. Under the influence of friction, the wire passes through the gap between the mold cavity and the circular magnetic core, and finally wraps around the magnetic ring, completing the winding process.
[0003] However, in the early stages of production, high-precision adjustments to the mold and winding equipment are usually required. However, after a period of use, friction from the wire can cause the mold to wear, leading to undesirable conditions such as movement deviation. This can also cause the wire's position within the magnetic ring to change, affecting the equipment and impacting production efficiency. Therefore, molds need to be frequently replaced, but each replacement of mold parts incurs a certain expense. As the frequency of replacement increases, the cost of replacing mold parts increases significantly. Furthermore, the varying skills of the commissioning personnel makes it difficult to control the duration of each repair, significantly impacting production efficiency and costs. Summary of the Invention
[0004] Based on this, it is necessary to provide a magnetic ring winding device to address the problems that the current magnetic ring winding device requires a separate mold in the early stage, and the mold needs to be frequently replaced in the later stage, as well as the high maintenance cost.
[0005] In a first aspect, the present application provides a magnetic ring winding device for winding a wire around a magnetic core of a workpiece to be wound, the magnetic ring winding device comprising:
[0006] a guide wire mechanism, the guide wire mechanism being used to guide the wire so that the wire extends along a first direction;
[0007] a wire pushing mechanism, configured to push the wire in the conductor mechanism to move along the first direction;
[0008] A winding mechanism is used to receive the wire led out of the conductor mechanism, and the winding mechanism is used to bend the wire so that the wire is spirally wound onto the magnetic core.
[0009] In one embodiment, the winding mechanism includes a first guide and a second guide, the first guide is used to receive and guide the wire to move along a set path, and the second guide is used to receive the wire led out from the first guide and guide the wire to be spirally wound onto the magnetic core.
[0010] In one embodiment, the first guide member includes a first fixing portion and a first guide portion that are fixedly connected, the first guide portion is provided with a guide groove, the entrance of the guide groove corresponds to the output end of the wire mechanism, the wire can move along the first direction in the guide groove, and transition to the second guide member through the outlet of the guide groove.
[0011] In one embodiment, the second guide member includes a second fixing portion and a second guide portion fixedly connected, the second guide portion is provided with a first guide surface and a second guide surface, the first guide member is arranged on both sides of the second guide member, and the first guide surface corresponds to the first guide member arranged on one side of the second guide member, and the second guide surface corresponds to the first guide member arranged on the other side of the second guide member.
[0012] In one embodiment, the first guide surface and the second guide surface are inclined toward the bottom of the corresponding guide groove, so that the bottom of the guide groove abuts against the corresponding first guide surface or the second guide surface.
[0013] In one embodiment, the second guide member further includes an insertion portion, which extends along the length direction of the second guide member and is used to be inserted between two adjacent magnetic cores to guide the wires to be wound onto the corresponding magnetic cores respectively.
[0014] In one embodiment, the winding mechanism further includes a first driving member and a second driving member, wherein the first driving member is connected to the first fixed portion, and the first driving member is used to drive the first fixed portion to move along the second direction, and the second driving member is connected to the second fixed portion, and the second fixed portion can move along the third direction under the drive of the second driving member.
[0015] In one embodiment, the wire pushing mechanism includes a driving assembly and a pushing block, wherein the pushing block is connected to the driving assembly, and the driving assembly is used to drive the pushing block to move along the first direction so that the pushing block pushes the wire to move along the first direction.
[0016] In one embodiment, the driving assembly includes a first power member, a transmission module, a guide rail and a slider, the slider is slidably connected to the guide rail, the push block and the transmission module are both arranged on the slider, the first power member is transmission-connected to the transmission module, and under the drive of the first power member, the transmission module can move back and forth along the first direction, and drive the slider and the push block arranged on the slider to move synchronously.
[0017] In one embodiment, the wire guiding mechanism includes a second power member, a limiting member and a pressing member, the limiting member and the pressing member together constitute a material channel for accommodating the wire, and the pressing member is connected to the second power member, and the second power member is used to drive the pressing member to move along the second direction to adjust the width of the material channel.
[0018] In the above-mentioned magnetic ring winding equipment, before processing, the workpiece to be wound is clamped and positioned on the winding mechanism, and then the wire is placed in the wire mechanism. The wire mechanism can limit the inserted wire to ensure that the wire can only move along the first direction, and the wire pushing mechanism can push the wire placed in the wire mechanism to push the wire in the wire mechanism into the winding mechanism. After the wire is pushed into the winding mechanism, the winding mechanism can guide the entering wire so that the wire can be spirally wound onto the magnetic core. Therefore, this solution can realize automatic winding of the wire onto the magnetic core of the workpiece to be wound, and the winding operation can be completed through the mutual cooperation between the winding mechanism, the wire mechanism and the wire pushing mechanism without the need for additional molds, which greatly reduces production costs and avoids the need for frequent replacement of molds in the existing technology, thereby improving operating efficiency. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Figure 1 This is a structural diagram of a magnetic ring winding device according to an embodiment of the present application.
[0020] Figure 2 This is a structural schematic diagram of the wire pushing mechanism of the magnetic ring winding device according to one embodiment of the present application.
[0021] Figure 3 This is a schematic structural diagram of a driving component of a magnetic ring winding device according to an embodiment of the present application.
[0022] Figure 4 This is a schematic diagram of the conductor structure of a magnetic ring winding device according to an embodiment of the present application.
[0023] Figure 5 This is a structural schematic diagram of the winding mechanism of the magnetic ring winding device according to one embodiment of the present application.
[0024] Figure 6 This is a schematic diagram of the assembly of the first guide member, the second guide member, and the magnetic core of the magnetic ring winding device according to one embodiment of the present application.
[0025] Figure 7 This is a structural diagram of the first guide member of the magnetic ring winding device according to one embodiment of the present application.
[0026] Figure 8 This is a structural diagram of the second guide member of the magnetic ring winding device according to one embodiment of the present application.
[0027] Figure 9This is a schematic diagram of the assembly of the first guide portion and the second guide portion of the magnetic ring winding device according to one embodiment of the present application.
[0028] Description of reference numerals:
[0029] 10. Wire pushing mechanism; 11. Driving assembly; 111. First power member; 112. Transmission module; 1121. Gear; 1122. Rack; 113. Guide rail; 114. Slider; 12. Push block; X1. First direction;
[0030] 20. Guide wire mechanism; 21. Second power member; 22. Position limiting member; 23. Pressing member; 24. Material channel; X2. Second direction;
[0031] 30. Winding mechanism; 31. First guide member; 311. First fixing portion; 312. First guide portion; 3121. Guide groove; 32. Second guide member; 321. Second fixing portion; 322. Second guide portion; 3221. First guide surface; 3222. Second guide surface; 323. Insertion portion; 33. First driving member; 34. Second driving member; X3. Third direction;
[0032] 40. Wire;
[0033] 50. Workpiece to be wound; 51. Magnetic core. DETAILED DESCRIPTION
[0034] To make the above-mentioned objects, features, and advantages of the present application more clearly understood, the specific embodiments of the present application are described in detail below with reference to the accompanying drawings. The following description sets forth many specific details to facilitate a full understanding of the present application. However, the present application can be implemented in many other ways than those described herein, and those skilled in the art can make similar improvements without violating the scope of the present application. Therefore, the present application is not limited to the specific embodiments disclosed below.
[0035] In the description of this application, it should be understood that if the terms "center", "longitudinal", "lateral", "length", "width", "thickness", "up", "down", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inside", "outside", "clockwise", "counterclockwise", "axial", "radial", "circumferential", etc. appear, the orientation or position relationship indicated by these terms is based on the orientation or position relationship shown in the accompanying drawings, which is only for the convenience of describing this application and simplifying the description, and does not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be understood as a limitation on this application.
[0036] In addition, if the terms "first" or "second" appear, these terms are used for descriptive purposes only and should not be understood to indicate or imply relative importance or implicitly specify the number of technical features indicated. Therefore, a feature specified as "first" or "second" may explicitly or implicitly include at least one of such features. In the description of this application, if the term "plurality" appears, "plurality" means at least two, for example, two, three, etc., unless otherwise specifically defined.
[0037] To make the above-mentioned objects, features, and advantages of the present application more clearly understood, the specific embodiments of the present application are described in detail below with reference to the accompanying drawings. The following description sets forth many specific details to facilitate a full understanding of the present application. However, the present application can be implemented in many other ways than those described herein, and those skilled in the art can make similar improvements without violating the scope of the present application. Therefore, the present application is not limited to the specific embodiments disclosed below.
[0038] like Figure 1 As shown, an embodiment of the present application provides a magnetic ring winding device, which is used to wind a wire 40 on a workpiece 50 to be wound. In this embodiment, the workpiece 50 to be wound has two magnetic cores 51, and the wire 40 can be wound on each magnetic core 51 respectively through the magnetic ring winding device. Of course, in the actual production process, the magnetic ring winding device can only perform the winding operation on one magnetic core 51, and the magnetic ring winding device can also be adaptively adjusted so that the magnetic ring winding device can perform the winding operation on three or more magnetic cores 51.
[0039] Specifically, the magnetic ring winding device includes a wire pushing mechanism 10, a wire guide mechanism 20 and a winding mechanism 30, wherein the wire pushing mechanism 10 is extended along a first direction X1, and the wire pushing mechanism 10 can output linear power, and then when the wire 40 is correspondingly arranged at its output end, the wire pushing mechanism 10 can push the wire 40 to move linearly along the first direction X1. In addition, before performing the wire pushing operation, the wire 40 is first placed in the wire guide mechanism 20, and the wire guide mechanism 20 can limit the position of the wire 40 to avoid radial displacement of the wire 40 when the wire pushing mechanism 10 pushes the wire 40 to move, thereby ensuring the stable position of the wire 40 when it is output, and ensuring that the winding mechanism 30 can accurately receive the wire 40 drawn out from the wire guide mechanism 20.
[0040] More specifically, when installing the wire mechanism 20, the wire 40 entrance of the wire mechanism 20 needs to correspond to the thrust output end of the wire pushing mechanism 10, so that the wire pushing mechanism 10 can apply a stable thrust to the wire 40 set in the wire mechanism 20, and enable the wire 40 to move along the first direction X1 in the wire mechanism 20 under the thrust of the wire pushing mechanism 10.
[0041] Furthermore, the winding mechanism 30 is arranged at the exit of the wire mechanism 20 to receive the wire 40 led out from the wire mechanism 20. When the wire 40 enters the winding mechanism 30, the winding mechanism 30 can bend the wire 40 to drive the wire 40 to rotate around the magnetic core 51, so that the wire 40 can be spirally wound onto the magnetic core 51. After the wire 40 is wound on the corresponding magnetic core 51, a finished wound workpiece can be obtained.
[0042] Therefore, the magnetic ring winding equipment clamps and positions the workpiece 50 to be wound on the winding mechanism 30 before processing, and then places the wire 40 into the wire mechanism 20. The wire mechanism 20 can limit the inserted wire 40 to ensure that the wire 40 can only move along the first direction X1. The wire pushing mechanism 10 can push the wire 40 placed in the wire mechanism 20 to push the wire 40 in the wire mechanism 20 into the winding mechanism 30. After the pushed wire 40 is placed in the winding mechanism 30, the winding mechanism 30 can guide the entering wire 40 so that the wire 40 can be smoothly spirally wound onto the magnetic core 51. This solution can automatically wind the wire 40 onto the magnetic core 51 of the workpiece 50 to be wound, and the winding operation can be completed through the mutual cooperation between the winding mechanism 30, the wire guide mechanism 20 and the wire pushing mechanism 10 without the need for additional molds, which greatly reduces production costs. At the same time, there is no need to frequently replace the mold as in the prior art, thereby improving operating efficiency.
[0043] like Figure 2 and Figure 3 As shown, in this embodiment, the wire pushing mechanism 10 can be provided with two groups, and each group of wire pushing mechanisms 10 includes a driving component 11 and a pushing block 12. The pushing block 12 is connected to the driving component 11, and the pushing block 12 is provided at the output end of the driving component 11, so that when the output end of the driving component 11 moves, the pushing block 12 can correspond to the wire 40 inserted into the wire mechanism 20 to move closer to or further away from it. When the pushing block 12 approaches the wire 40 until it rests against the wire 40, with the continuous action of the driving component 11, the pushing block 12 can push the wire 40 to move along the first direction X1; when the pushing block 12 is separated from the wire 40, the pushing block 12 no longer applies force to the wire 40.
[0044] Specifically, the driving assembly 11 includes a first power member 111, a transmission module 112, a guide rail 113 and a slider 114, wherein the transmission module 112 can adopt a combination of a gear 1121 and a rack 1122. The output end of the first power member 111 is connected to the gear 1121. When the first power member 111 rotates, it can drive the gear 1121 to rotate synchronously, and the gear 1121 and the rack 1122 are engaged. Therefore, when the first power member 111 drives the gear 1121 to rotate, the rack 1122 moves linearly along the first direction X1 under the action of the gear 1121. Furthermore, since the rack 1122 is mounted on the guide rail 113 via the slider 114, and the push block 12 is similarly mounted on the guide rail 113 via the slider 114, when the rack 1122 moves in the first direction X1, it can drive the slider 114 to move linearly along the guide rail 113. Simultaneously, the slider 114 moves, and simultaneously displaces the push block 12 mounted thereon, thereby achieving linear movement of the push block 12 in the first direction X1. It should be noted that, in this embodiment, the transmission module 112 utilizes the assembly of the gear 1121 and the rack 1122 to achieve power transmission. Of course, this can also be achieved directly using a cylinder, a screw rod, or the like.
[0045] In addition, to ensure that the push block 12 can contact the wire 40 inserted into the wire guide mechanism 20, the push block 12 is disposed at the end of the slider 114 close to the wire guide mechanism 20. Furthermore, since the wire 40 wound around the magnetic core 51 may have different diameters, a protrusion is provided at the portion of the push block 12 that contacts the wire 40 to maximize adaptability to wires of varying diameters and ensure a stable propulsion of the wire 40. This protrusion increases the contact area between the push block 12 and the wire 40, thereby ensuring that the push block 12 generates a stable force when pushing the wire 40.
[0046] like Figure 4 As shown, two wire guide mechanisms 20 may be provided, each of which includes a second power member 21, a stopper 22, and a pressure member 23. The stopper 22 extends vertically from a bottom platform, and the pressure member 23 is disposed on the platform, and the thickness of the pressure member 23 is consistent with that of the stopper 22. The pressure member 23 and the stopper 22 together form a material channel 24, in which the wire 40 can be disposed. In addition, to accommodate wires 40 of different diameters, the pressure member 23 is connected to the second power member 21. The second power member 21 is transmission-connected to the pressure member 23, and the second power member 21 is capable of moving along a second direction X2. Therefore, when the second power member 21 moves along the second direction X2, it can drive the pressure member 23 to move synchronously, thereby adjusting the distance between the pressure member 23 and the stopper 22, thereby achieving adjustment of the width of the material channel to accommodate wires 40 of different diameters.
[0047] like Figure 5 As shown, the winding mechanism 30 includes a first guide 31 and a second guide 32. The first guide 31 is used to receive and guide the wire 40 to move along a set path, and the second guide 32 is used to receive the wire 40 led out through the first guide 31. The wire 40 can rotate around the corresponding magnetic core 51 under the guidance of the second guide 32. Then, through the cooperation of the first guide 31 and the second guide 32, the wire 40 can be spirally wound around the magnetic core 51 to complete the wiring operation for the magnetic core 51.
[0048] like Figure 6 and Figure 9 As shown, two first guide members 31 can be provided, with the two first guide members 31 corresponding to the two magnetic cores 51, and the two first guide members 31 are respectively provided on both sides of the second guide member 32, and the first guide members 31 on both sides are symmetrically arranged. In addition, each first guide member 31 includes a first fixing portion 311 and a first guide portion 312. The first guide portion 312 is provided with a guide groove 3121. The entrance of the guide groove 3121 corresponds to the output end of the wire guide mechanism 20, so that the wire 40 can move along the path defined by the guide groove 3121. The exit of the guide groove 3121 is connected to the second guide member 32, so that the wire 40 can smoothly transition to the second guide member 32 after being led out of the guide groove 3121 and continue to move along the direction defined by the second guide member 32.
[0049] like Figure 7 As shown, the first guide portion 312 is a protruding structure extending along the length of the first fixing portion 311. A guide slot 3121 is provided on the side of the first guide portion 312 and has an arc. The arc of the guide slot 3121 is set to at least 90 degrees. Therefore, when the wire 40 enters the guide slot 3121, it is guided by the guide slot 3121 as it moves within the guide slot 3121 and is thereby bent. The bent wire 40 also has a bending angle of no less than 90 degrees. Furthermore, the arc of the guide slot 3121 is set so that the wire 40, after being guided out of the guide slot 3121, can rotate along the central axis of the magnetic core 51, thereby ensuring that the wire 40 can be smoothly wrapped around the magnetic core 51.
[0050] like Figure 8As shown, the second guide member 32 includes a second fixing portion 321 and a second guide portion 322. The second guide portion 322 includes a first guide surface 3221 and a second guide surface 3222. The first guide surface 3221 and the second guide surface 3222 correspond to the first guide members 31 on either side, respectively, for receiving the wire 40 drawn out from the first guide members 31 on either side. Furthermore, the first guide surface 3221 and the second guide surface 3222 are both inclined toward the bottom of the corresponding guide groove 3121 until there is no height difference between the first guide surface 3221 and the second guide surface 3222 and the bottom of the corresponding guide groove 3121. That is, the first guide surface 3221 or the second guide surface 3222 can contact the bottom of the guide groove 3121, so that the wire 40 can be smoothly drawn out of the guide groove 3121 onto the first guide surface 3221 or the second guide surface 3222. In addition, after the wire 40 is led out to the first guide surface 3221 or the second guide surface 3222, since the first guide surface 3221 and the second guide surface 3222 have a certain slope, and the wire 40 is bent after passing through the guide groove 3121, therefore, when the wire 40 in the bent state moves on the first guide surface 3221 or the second guide surface 3222, it will gradually climb a certain height along the surface of the first guide surface 3221 or the second guide surface 3222. The climbing height is the vertical distance from the bottom of the guide groove 3121 to the plane where the top of the first guide surface 3221 or the second guide surface 3222 is located, and the wire 40 can rotate about the central axis of the magnetic core 51 until the wire 40 is spirally wound on the magnetic core 51, and the pitch formed is the vertical height from the bottom of the guide groove 3121 to the top of the first guide surface 3221 or the second guide surface 3222.
[0051] Specifically, the second guide member 32 further includes an insertion portion 323, which extends along the length of the second guide member 32. The first guide surface 3221 and the second guide surface 3222 are symmetrically arranged on either side of the insertion portion 323. The insertion portion 323 can be inserted between adjacent magnetic cores 51, that is, the first guide surface 3221 and the second guide surface 3222 can be inserted between two adjacent magnetic cores 51, so that after the wire 40 is introduced onto the first guide surface 3221 or the second guide surface 3222, the wire 40 can be guided by the first guide surface 3221 or the second guide surface 3222 to rotate around the central axis of the magnetic core 51, thereby ensuring that the wire 40 can be spirally wound around the magnetic core 51.
[0052] like Figure 5As shown, the winding mechanism 30 further includes a first driving member 33 and a second driving member 34, wherein the first driving member 33 is connected to the first guide member 31. Specifically, the output end of the first driving member 33 is connected to the first fixing portion 311 of the first guide member 31, and the first driving member 33 can drive the first fixing portion 311 to move along the second direction X2. The second driving member 34 is transmission-connected to the second fixing portion 321, and the second fixing portion 321 can move along the third direction X3 under the control of the second driving member 34. The second direction X2 is perpendicular to the first direction X1, and the third direction X3 is a vertical direction.
[0053] Therefore, the orientation of the first guide member 31 is adjusted by the first driving member 33 so that the first guide member 31 can adapt to the magnetic cores 51 with different intervals, ensuring that the wire 40 can be wound onto the magnetic core 51 under the guidance of the first guide member 31. In addition, the height of the second guide member 32 is controlled by the second driving member 34 so that after the wire 40 is led out from the first guide member 31, it will not fall on the bottom of the first guide surface 3221 or the second guide surface 3222 opened on the first guide member 31, but may fall into the middle of the first guide surface 3221 or the second guide surface 3222. Then, after the wire 40 rotates along the first guide surface 3221 or the second guide surface 3222 and is wound on the magnetic core 51, the pitch formed is the vertical distance between the contact point of the wire 40 and the first guide surface 3221 or the second guide surface 3222 to the top of the first guide surface 3221 or the second guide surface 3222. Then, by setting the second driving member 34, the pitch of the wire 40 spirally wound on the magnetic core 51 can be adjusted.
[0054] In this application, unless otherwise specified or limited, the terms "mounted," "connected," "connected," "fixed," etc., should be interpreted broadly. For example, these terms may refer to fixed connections, removable connections, or integration; mechanical connections or electrical connections; direct connections or indirect connections through an intermediary; and internal communication between two components or interaction between two components, unless otherwise specified. Those skilled in the art will understand the specific meanings of these terms in this application based on the specific circumstances.
[0055] It should be noted that if an element is referred to as being "fixed to" or "disposed on" another element, it may be directly on the other element or there may be an intermediate element. If an element is considered to be "connected to" another element, it may be directly connected to the other element or there may be an intermediate element. If any, the terms "vertical", "horizontal", "upper", "lower", "left", "right" and similar expressions used in this application are for illustrative purposes only and do not represent the only embodiment.
[0056] The above-described embodiments merely represent several implementation methods of the present application. While the descriptions are relatively specific and detailed, they should not be construed as limiting the scope of the patent application. It should be noted that a person of ordinary skill in the art may make various modifications and improvements without departing from the spirit of the present application, and these modifications and improvements fall within the scope of protection of the present application. Therefore, the scope of protection of the present patent application shall be determined by the appended claims.
Claims
1. A magnetic ring winding device for winding a wire around a magnetic core of a workpiece to be wound, characterized in that: The magnetic ring winding equipment includes: a guide wire mechanism, the guide wire mechanism being used to guide the wire so that the wire extends along a first direction; a wire pushing mechanism, configured to push the wire in the conductor mechanism to move along the first direction; A winding mechanism is used to receive the wire led out of the conductor mechanism, and the winding mechanism is used to bend the wire so that the wire is spirally wound onto the magnetic core.
2. The magnetic ring winding device according to claim 1, characterized in that: The winding mechanism includes a first guide and a second guide. The first guide is used to receive and guide the wire to move along a set path. The second guide is used to receive the wire led out from the first guide and guide the wire to be spirally wound onto the magnetic core.
3. The magnetic ring winding device according to claim 2, characterized in that: The first guide member includes a first fixing portion and a first guide portion that are fixedly connected. The first guide portion is provided with a guide groove, the entrance of the guide groove corresponds to the output end of the wire mechanism, the wire can move along the first direction in the guide groove and transition to the second guide member through the outlet of the guide groove.
4. The magnetic ring winding device according to claim 3, characterized in that: The second guide member includes a second fixing portion and a second guide portion fixedly connected, the second guide portion is provided with a first guide surface and a second guide surface, the first guide member is arranged on both sides of the second guide member, and the first guide surface corresponds to the first guide member arranged on one side of the second guide member, and the second guide surface corresponds to the first guide member arranged on the other side of the second guide member.
5. The magnetic ring winding device according to claim 4, characterized in that: The first guide surface and the second guide surface are inclined toward the bottom of the corresponding guide groove, so that the bottom of the guide groove abuts against the corresponding first guide surface or the second guide surface.
6. The magnetic ring winding device according to claim 4, characterized in that: The second guide member further includes an insertion portion extending along a length direction of the second guide member. The insertion portion is used to be inserted between two adjacent magnetic cores to guide the wires to be wound onto the corresponding magnetic cores respectively.
7. The magnetic ring winding device according to claim 4, characterized in that: The winding mechanism also includes a first driving member and a second driving member, the first driving member is connected to the first fixed part, and the first driving member is used to drive the first fixed part to move along the second direction, the second driving member is connected to the second fixed part, and the second fixed part can move along the third direction under the drive of the second driving member.
8. The magnetic ring winding device according to claim 1, characterized in that: The wire pushing mechanism includes a driving assembly and a pushing block, wherein the pushing block is connected to the driving assembly, and the driving assembly is used to drive the pushing block to move along the first direction so that the pushing block pushes the wire to move along the first direction.
9. The magnetic ring winding device according to claim 8, characterized in that: The driving assembly includes a first power member, a transmission module, a guide rail and a slider. The slider is slidably connected to the guide rail. The push block and the transmission module are both arranged on the slider. The first power member is transmission-connected to the transmission module. Under the drive of the first power member, the transmission module can move back and forth along the first direction and drive the slider and the push block arranged on the slider to move synchronously.
10. The magnetic ring winding device according to claim 1, characterized in that: The wire guiding mechanism includes a second power member, a limiting member and a pressing member. The limiting member and the pressing member together constitute a material channel for accommodating the wire material, and the pressing member is connected to the second power member. The second power member is used to drive the pressing member to move along the second direction to adjust the width of the material channel.