Automatic winding processing equipment for inductor manufacturing
By combining guide rails, sliders, synchronizing rods, and clamping components, along with compensation structures and transmission components, the specification compatibility problem of inductor winding equipment is solved, achieving flexible adaptive clamping and tension adjustment, and improving winding uniformity and inductance parameter stability.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- BEIJING SAHENG CONSTRUCTION ENGINEERING CO LTD
- Filing Date
- 2026-02-02
- Publication Date
- 2026-04-17
AI Technical Summary
Existing automated inductor winding processing equipment suffers from insufficient specification adaptability, leading to difficulties in wire threading, coil breakage, and affecting winding uniformity and inductance parameter stability, making it difficult to meet diverse processing needs.
By employing guide rails, sliders, synchronizing rods, and clamping components, combined with compensation structures and transmission components, flexible adaptive clamping and tension adjustment of the coil are achieved. Guide grooves and elastic structures ensure clamping stability and winding uniformity.
It enables flexible adaptation to coils of different specifications, avoids coil breakage, ensures winding uniformity and inductance parameter stability, and improves the equipment's adaptability to diverse processing.
Smart Images

Figure CN121885394A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the technical field of inductor processing, and in particular to an automated winding processing equipment for inductor manufacturing. Background Technology
[0002] The purpose of winding processing in inductor manufacturing is to form a coil with a specific number of turns, wire diameter, and winding method by properly winding the wire, thereby obtaining the required electrical parameters such as inductance, rated current, and quality factor, and ensuring that the inductor can perform functions such as energy storage, filtering, and oscillation in the circuit.
[0003] The automatic inductor winding processing equipment first uses an automatic wire feeding mechanism to send the wire to the rotating winding mold. Then, under program control, it is wound evenly according to the set number of turns, layers and winding direction. During the winding process, the tension control system adjusts the wire tension in real time to ensure that the winding is tight and uniform. Then, the automatic welding device completes the pin connection.
[0004] However, the automatic processing equipment for inductor windings has limited adaptability to different specifications, and is prone to problems such as difficulty in threading and coil breakage. These abnormal situations caused by poor specification adaptation will further lead to uneven winding during the winding process, ultimately affecting the stability of inductor parameters and making it difficult for the equipment to stably and accurately complete the processing of diverse inductor windings.
[0005] Therefore, we have made improvements to this by proposing an automated winding processing equipment for inductor manufacturing. Summary of the Invention
[0006] The purpose of this invention is to solve the problems of insufficient specification adaptability of existing automatic inductor winding processing equipment, which leads to difficulties in wire threading, coil breakage, uneven winding, and instability of inductor parameters, making it difficult to meet diverse processing needs. Therefore, this invention proposes an automated winding processing equipment for inductor manufacturing.
[0007] To achieve the above objectives, the present invention adopts the following technical solution:
[0008] An automated winding processing device for inductor manufacturing includes a work base.
[0009] The clamping structure includes two guide rails fixed to the surface of the working base, a first slide groove formed on the surface of the guide rails, a first slider sliding on the surface of the first slide groove, a synchronizing rod rotating on the surface of the first slider, a support column fixed to the surface of the first slider, and a clamping assembly fixed to the surface of the support column.
[0010] The compensation structure includes a vertical cylinder fixed between the two guide rails, two extension plates fixed to the surface of the vertical cylinder, a third groove formed on the surface of the extension plates, a receiving cavity formed on the surface of the vertical cylinder, a guide hole formed on the surface of the receiving cavity, a first pull rope sliding on the surface of the guide hole, a compensation component fixed to one end of the first pull rope, and a transmission component fixed to the side of the compensation component.
[0011] As a preferred technical solution of this application, the surface of the guide rail is provided with a second sliding groove, the surface of the second sliding groove is slidably connected to the synchronizing rod, and one end of the synchronizing rod is rotatably connected to a torsion block.
[0012] As a preferred technical solution of this application, the clamping assembly includes a fixed outer shell fixedly connected to the top of the support column, a guide groove formed on the surface of the fixed outer shell, a guide column slidably connected to the surface of the guide groove, and a clamping roller fixedly connected to the midpoint of the guide column.
[0013] As a preferred technical solution of this application, a fixed sleeve is fixedly connected to the surface of the guide post in a symmetrical position, a telescopic rod is fixedly connected to the surface of the fixed sleeve, a telescopic sleeve is slidably connected to the surface of the telescopic rod, and a fixed rod is slidably connected to the end of the telescopic sleeve away from the telescopic rod.
[0014] A first spring is fixedly connected between the telescopic rod and the fixed rod, and a support rod is fixedly connected to the surface of the support column.
[0015] As a preferred technical solution of this application, the compensation component includes a second slider fixedly connected to the top end of the first pull rope, a support block fixedly connected to the surface of the extension plate, a second spring fixedly connected between the support block and the second slider, an elastic strip fixedly connected to the surface of the second slider, and an adjustment plate fixedly connected to the other end of the first pull rope.
[0016] The second slider is slidably connected to the surface of the third groove.
[0017] As a preferred technical solution of this application, a pressure plate is fixedly connected to the surface of the elastic strip, and a groove is formed on the surface of the pressure plate. A bridging slide rod is fixedly connected to the surface of the second slider.
[0018] As a preferred technical solution of this application, the transmission assembly includes a connecting ring fixedly connected to the surface of the synchronizing rod, a fixing frame fixedly connected to the surface of the vertical cylinder, a fixed shaft fixedly connected to the surface of the fixing frame, a transmission wheel rotatably connected to the surface of the fixed shaft, a second pull rope slidably connected to the surface of the transmission wheel, and a piston rod fixedly connected to the top end of the second pull rope.
[0019] One end of the second pull rope is fixedly connected to the surface of the connecting ring.
[0020] As a preferred technical solution of this application, two symmetrical vertical plates are fixedly connected to the surface of the piston rod, a connecting rope is fixedly connected to the surface of the vertical plates, and a gravity ball is fixedly connected to the end of the connecting rope away from the vertical plates.
[0021] As a preferred technical solution of this application, one end of the piston rod is slidably connected to a piston cylinder, one end of the piston cylinder is fixedly connected to a connecting tube, one end of the connecting tube is fixedly connected to a suction head, a water bag is fixedly connected to the surface of the suction head, and a straw is fixedly connected to one end of the suction head, with the straw disposed in the water bag.
[0022] As a preferred technical solution of this application, a mounting sleeve is fixedly connected to the surface of the guide rail, a motor is fixedly connected to the surface of the mounting sleeve, a rotating shaft is fixedly connected to one end of the motor, and an active roller is rotatably connected to the surface of the rotating shaft;
[0023] A wire feed ring is rotatably connected to the surface of the working base.
[0024] Compared with the prior art, the present invention provides an automated winding processing equipment for inductor manufacturing, which has the following advantages:
[0025] 1. This automated winding processing equipment for inductor manufacturing, through the setting of guide rails, first slider, synchronizing rod and clamping components, realizes the flexible adjustment of clamping position and force according to the outer diameter of the coil, which solves the problem of limited adaptability of existing equipment to different specifications and easy coil breakage.
[0026] 2. The automated winding processing equipment for inductor manufacturing, through the set compensation components and transmission components, realizes the automatic adjustment of wire tension and overall pressure according to the changes in coil specifications, which solves the problem of uneven winding caused by poor specification adaptation in the existing technology;
[0027] 3. The automated winding processing equipment for inductor manufacturing achieves flexible and easy clamping and disassembly of the coil through the flexible adaptive clamping roller, telescopic rod and first spring, which solves the problem that rigid clamping in the prior art is prone to damaging the coil and is inconvenient to remove the winding. Attached Figure Description
[0028] Figure 1 This is a schematic diagram of the overall structure of the present invention;
[0029] Figure 2 This is a schematic diagram of the clamping structure of the present invention;
[0030] Figure 3 This is a schematic diagram of the clamping component structure of the present invention;
[0031] Figure 4 For the present invention Figure 3 A schematic diagram of the structure of part A;
[0032] Figure 5 This is a schematic diagram of the compensation structure of the present invention;
[0033] Figure 6 For the present invention Figure 5 A structural diagram of section B;
[0034] Figure 7 This is a schematic diagram of the compensation component structure of the present invention;
[0035] Figure 8 For the present invention Figure 6 A structural diagram of section C;
[0036] Figure 9 This is a schematic planar view of the compensation component structure of the present invention;
[0037] Figure 10 This is a schematic diagram of the straw structure of the present invention.
[0038] In the picture:
[0039] 100. Working base; 200. Clamping structure; 201. Guide rail; 202. First slide groove; 203. Second slide groove; 204. Synchronizing rod; 205. First slider; 206. Support column; 207. Clamping assembly; 208. Torsion block; 209. Fixed housing; 210. Guide groove; 211. Guide column; 212. Clamping roller; 213. Fixed sleeve; 214. Telescopic rod; 215. Telescopic sleeve; 216. Fixed rod; 217. First spring; 222. Support rod; 218. Motor; 219. Rotating shaft; 220. Drive roller; 221. Mounting sleeve; 300. Compensation structure; 301. Vertical cylinder; 302. Extension plate; 303. Third slide groove; 3 04. Receiving cavity; 305. Guide hole; 306. First pull rope; 307. Compensation component; 308. Transmission component; 309. Connecting ring; 310. Fixing frame; 311. Fixed shaft; 312. Transmission wheel; 313. Second pull rope; 314. Piston rod; 315. Vertical plate; 316. Connecting rope; 317. Gravity ball; 318. Piston cylinder; 319. Connecting tube; 320. Suction head; 321. Water bag; 322. Suction straw; 323. Adjusting plate; 324. Second slider; 325. Fixing plate; 326. Elastic strip; 327. Wire pressing plate; 328. Wire groove; 329. Support block; 330. Second spring; 331. Bridging slide rod; 400. Wire feeding ring. Detailed Implementation
[0040] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of the present invention without creative effort are within the scope of protection of the present invention.
[0041] Example:
[0042] Reference Figure 1-4 An automated winding processing device for inductor manufacturing includes a work base 100, and further includes:
[0043] The clamping structure 200 includes two guide rails 201 fixed to the surface of the working base 100, a first slide groove 202 formed on the surface of the guide rails 201, a first slider 205 sliding on the surface of the first slide groove 202, a synchronizing rod 204 rotating on the surface of the first slider 205, a support column 206 fixed to the surface of the first slider 205, and a clamping assembly 207 fixed to the surface of the support column 206.
[0044] The compensation structure 300 includes a vertical cylinder 301 fixed between two guide rails 201, two extension plates 302 fixed to the surface of the vertical cylinder 301, a third groove 303 opened on the surface of the extension plates 302, a receiving cavity 304 opened on the surface of the vertical cylinder 301, a guide hole 305 opened on the surface of the receiving cavity 304, a first pull rope 306 sliding on the surface of the guide hole 305, a compensation component 307 fixed to one end of the first pull rope 306, and a transmission component 308 fixed to the side of the compensation component 307. By setting the guide rails 201, sliders, synchronizing rods 204 and clamping components 207 in the clamping structure 200, and combining the vertical cylinder 301, pull rope, compensation component 307 and transmission component 308 of the compensation structure 300, the clamping position and wire tension can be flexibly adjusted according to the coil specifications.
[0045] The guide rail 201 has a second groove 203 on its surface, and a synchronizing rod 204 is slidably connected to the surface of the second groove 203. One end of the synchronizing rod 204 is rotatably connected to a torsion block 208. By setting up the guide rail 201 with the second groove 203, the slidable synchronizing rod 204, and the torsion block 208, the spacing of the clamping assembly 207 can be quickly and manually adjusted to accommodate coils of different outer diameters. In use, rotating the torsion block 208 releases the synchronizing rod 204, slides it along the second groove 203 to the appropriate position, and then tightens the torsion block 208 to fix it. The operation is simple and intuitive.
[0046] The clamping assembly 207 includes a fixed housing 209 fixedly connected to the top of the support column 206, a guide groove 210 formed on the surface of the fixed housing 209, a guide column 211 slidably connected to the surface of the guide groove 210, and a clamping roller 212 fixedly connected to the midpoint of the guide column 211. By setting the fixed housing 209 with the guide groove 210, the sliding guide column 211, and the clamping roller 212, stable clamping and adaptive adjustment of the coil can be achieved. When the coil is placed between the clamping roller 212 and the drive roller 220, the guide column 211 slides along the guide groove 210, so that the clamping roller 212 is in close contact with the surface of the coil, ensuring clamping stability.
[0047] The guide post 211 has a fixed sleeve 213 fixedly connected to its surface in a symmetrical position. A telescopic rod 214 is fixedly connected to the surface of the fixed sleeve 213. A telescopic sleeve 215 is slidably connected to the surface of the telescopic rod 214. A fixed rod 216 is slidably connected to the end of the telescopic sleeve 215 away from the telescopic rod 214. A first spring 217 is fixedly connected between the telescopic rod 214 and the fixed rod 216. A support rod 222 is fixedly connected to the surface of the support post 206. By setting up an elastic structure consisting of the telescopic rod 214, the telescopic sleeve 215, and the first spring 217, in conjunction with the fixed sleeve 213 and the support rod 222, flexible clamping and buffering of the coil can be achieved. During clamping, the first spring 217 provides elastic support, preventing rigid clamping from damaging the coil. After winding, the elastic structure facilitates quick disassembly of the winding.
[0048] The guide rail 201 is fixedly connected to a mounting sleeve 221, the mounting sleeve 221 is fixedly connected to a motor 218, one end of the motor 218 is fixedly connected to a rotating shaft 219, and the rotating shaft 219 is rotatably connected to a drive roller 220; the working base 100 is rotatably connected to a wire feeding ring 400. The motor 218 is fixed to the guide rail 201 via the mounting sleeve 221, driving the drive roller 220 to rotate and provide winding power. The wire feeding ring 400 supports and guides the wire, ensuring efficient and stable winding.
[0049] Reference Figure 5 , Figure 6 and Figure 10Furthermore, the transmission assembly 308 includes a connecting ring 309 fixedly connected to the surface of the synchronizing rod 204, a fixing frame 310 fixedly connected to the surface of the vertical cylinder 301, a fixed shaft 311 fixedly connected to the surface of the fixing frame 310, a transmission wheel 312 rotatably connected to the surface of the fixed shaft 311, a second pull rope 313 slidably connected to the surface of the transmission wheel 312, and a piston rod 314 fixedly connected to the top end of the second pull rope 313; one end of the second pull rope 313 is fixedly connected to the surface of the connecting ring 309. Through the connecting ring 309, the transmission wheel 312, and the second pull rope 313, the movement of the synchronizing rod 204 is converted into the lifting and lowering of the piston rod 314, realizing the linkage of clamping adjustment and tension compensation, and automatically adapting to changes in coil specifications.
[0050] Furthermore, two symmetrical vertical plates 315 are fixedly connected to the surface of the piston rod 314. A connecting rope 316 is fixedly connected to the surface of the vertical plates 315. A gravity ball 317 is fixedly connected to the end of the connecting rope 316 away from the vertical plates 315. The gravity ball 317 uses its own weight to ensure that the piston rod 314 falls back stably when there is no external force, so that the compensation structure 300 is reset, ensuring the accuracy and stability of repeated adjustments of the equipment.
[0051] Furthermore, a piston cylinder 318 is slidably connected to one end of the piston rod 314, a connecting pipe 319 is fixedly connected to one end of the piston cylinder 318, a suction head 320 is fixedly connected to one end of the connecting pipe 319, a water bag 321 is fixedly connected to the surface of the suction head 320, and a suction tube 322 is fixedly connected to one end of the suction head 320. The suction tube 322 is set in the water bag 321. With the help of the water absorption and drainage functions of the piston cylinder 318 and the water bag 321, the movement of the compensation component 307 is controlled by changing the weight of the water bag 321, and the pressure force is precisely adjusted to ensure the uniformity of the winding.
[0052] Reference Figure 7 , Figure 8 and Figure 9 Furthermore, the compensation component 307 includes a second slider 324 fixedly connected to the top of the first pull rope 306, a support block 329 fixedly connected to the surface of the extension plate 302, a second spring 330 fixedly connected between the support block 329 and the second slider 324, an elastic strip 326 fixedly connected to the surface of the second slider 324, and an adjustment plate 323 fixedly connected to the other top of the first pull rope 306; the second slider 324 is slidably connected to the surface of the third slide groove 303. Through the cooperation of the second spring 330, the second slider 324 and the first pull rope 306, the position of the compensation component 307 can be automatically adjusted according to the change of coil specifications, so as to realize the adaptive adjustment of wire tension and ensure uniform winding.
[0053] Furthermore, a pressure plate 327 is fixedly connected to the surface of the elastic strip 326, and a wire groove 328 is formed on the surface of the pressure plate 327. A bridging slide rod 331 is fixedly connected to the surface of the second slider 324. The wire groove 328 of the pressure plate 327 fits the wire, and together with the elastic strip 326, it achieves flexible wire pressing; the bridging slide rod 331 enhances the structural stability. The three work together to ensure effective pressing of the wire on the coil surface, avoiding loosening or accumulation of the winding.
[0054] Specifically, when this automated winding processing equipment for inductor manufacturing is in operation: First, before the operator places the coil on the clamping roller 212 and the drive roller 220, the synchronizing rod 204 must be adjusted according to the outer diameter of the coil. The tightness of the synchronizing rod 204 on the second slide groove 203 is controlled by rotating the torsion block 208. When the outer diameter of the coil increases, the synchronizing rod 204 drives the first slider 205 to move away from the drive roller 220 on the first groove of the guide rail 201. When the outer diameter of the coil decreases, the synchronizing rod 204 drives the first slider 205 to move closer to the drive roller 220 on the first groove of the guide rail 201. The guide rail 201 makes the adjustment of the support column 206 and the clamping assembly 207 more convenient. Under the support of roller 222, the support column 206 and clamping assembly 207 can move smoothly, and the entire clamping structure 200 can adapt to coils of various diameters. Simultaneously, when the coil is clamped between the drive roller 220 and the clamping roller 212, the clamping roller 212 drives the guide column 211 to slide in the guide groove 210. Two fixing sleeves 213 fix the position of the guide column 211. Under the elastic support of the telescopic column, the guide column 211, and the first spring 217, the coil surface is flexibly clamped. Furthermore, after the coil is wound, it forms a winding, making it easy to remove the winding from between the drive roller 220 and the clamping roller 212. This transforms the rigid clamping structure 200 into a flexible adaptive clamping structure. The clamping roller 212 is made of elastic material and silicone-coated metal. The chuck is designed to fit the coil size, preventing small or thin coils from breaking due to excessive clamping, while ensuring stable clamping of large coils. The outward movement of the synchronizing rod 204 indicates an increase in the coil's outer diameter, and vice versa. The movement of the synchronizing rod 204 requires manual adjustment by the operator before coil winding. This ensures the clamping assembly 207 can accommodate coils of different outer diameters. As the synchronizing rod 204 moves away from the drive roller 220, the connecting ring 309 connects to the second pull rope 313. Supported by the fixed frame 310, fixed shaft 311, and drive wheel 312, the second pull rope 313 slides on the surface of the drive wheel 312, driving the piston rod 314 at one end of the second pull rope 313 to move along the piston cylinder 318. Moving vertically upwards, under the action of the straw 322, suction head 320, and connecting tube 319, the piston rod 314 draws water from the water bag 321 into the piston cylinder 318. As the water in the water bag 321 decreases, its weight becomes less than the elastic force generated by the deformation of the second spring 330. Under the action of the first pull rope 306, the adjusting plate 323 drives the water bag 321 to move vertically upwards along the interior of the receiving cavity 304. Then, the second slider 324 slides in the third slide groove 303, and the entire fixed plate 325 moves on the surface of the extension plate 302, moving away from the vertical cylinder 301. Next, the elastic strip 326 and the pressure plate 327 form a floating pressure structure, tightly adhering to the surface of the coil. Since the coil surface is arc-shaped...In the floating wire pressing structure, the wire grooves 328 on the surface of the wire pressing plate 327 can adhere to the surface of the winding wire, pressing the wire already wound on the coil. This increases the force on the wire surface of the coil, thereby increasing the wire tension and making the winding more uniform. Conversely, when the synchronizing rod 204 moves towards the drive roller 220, under the action of the vertical plate 315 and the gravity ball 317, it drives the piston rod 314 at one end of the second pull rope 313 to move vertically downward in the piston cylinder 318. Under the action of the suction pipe 322, the suction head 320, and the connecting pipe 319, the piston rod 314 discharges water from the piston cylinder 318 into the water bag 321. The water in the water bag 321 increases, and the weight of the water bag 321 exceeds the elastic force generated by the deformation of the second spring 330. Under the influence of gravity from the water bag 321, the first pull rope 306 moves vertically downwards along the guide hole 305 of the receiving cavity 304. Then, the second slider 324 slides within the third groove 303, and the entire fixed plate 325 moves towards the vertical cylinder 301 on the surface of the extension plate 302. Next, the elastic strip 326 and the pressure plate 327 form a floating pressure structure that tightly adheres to the surface of the coil. Because the coil surface is arc-shaped, the grooves 328 on the surface of the pressure plate 327 in the floating pressure structure can adhere to the surface of the winding wire, thus compressing the wire already wound on the coil. This reduces the pressure on the wire on the coil surface, preventing excessive wire accumulation and making the winding more uniform.
[0055] By manually adjusting the synchronizing rod 204 and the torsion block 208, the clamping assembly 207 slides along the guide rail 201, achieving adaptive flexible clamping of coils with different outer diameters. The silicone-coated metal chuck avoids rigid damage. At the same time, the movement of the synchronizing rod 204 is linked to the piston rod 314 and the water bag 321 through the transmission assembly 308. The position of the pressure plate 327 is dynamically adjusted by gravity and spring force, so that the wire groove 328 fits the wire. The tension is automatically adjusted when the outer diameter of the coil changes, which not only prevents small-diameter coils from breaking due to excessive tightness, but also prevents large-diameter coils from loosening. This significantly improves the winding uniformity and the equipment's adaptability to the processing of diverse inductors.
[0056] The above description is only a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.
Claims
1. An inductor manufacturing automated winding processing apparatus comprising a work base, characterized by, Also includes: The clamping structure includes two guide rails fixed to the surface of the working base, a first slide groove formed on the surface of the guide rails, a first slider sliding on the surface of the first slide groove, a synchronizing rod rotating on the surface of the first slider, a support column fixed to the surface of the first slider, and a clamping assembly fixed to the surface of the support column. The compensation structure includes a vertical cylinder fixed between the two guide rails, two extension plates fixed to the surface of the vertical cylinder, a third sliding groove opened on the surface of the extension plates, a receiving cavity opened on the surface of the vertical cylinder, a guide hole opened on the surface of the receiving cavity, a first pull rope sliding on the surface of the guide hole, a compensation component fixed to one end of the first pull rope, and a transmission component fixed to the side of the compensation component.
2. The automatic winding machine for manufacturing inductor according to claim 1, wherein, The guide rail has a second groove on its surface, and the synchronizing rod is slidably connected to the surface of the second groove. One end of the synchronizing rod is rotatably connected to a torsion block.
3. The automated winding processing equipment for inductor manufacturing according to claim 2, characterized in that, The clamping assembly includes a fixed housing fixedly connected to the top of the support column, a guide groove formed on the surface of the fixed housing, a guide column slidably connected to the surface of the guide groove, and a clamping roller fixedly connected to the midpoint of the guide column.
4. The automated winding processing equipment for inductor manufacturing according to claim 3, characterized in that, The guide post is fixedly connected to a fixed sleeve in a symmetrical position. The fixed sleeve is fixedly connected to a telescopic rod. The telescopic rod is slidably connected to a telescopic sleeve. The end of the telescopic sleeve away from the telescopic rod is slidably connected to a fixed rod. A first spring is fixedly connected between the telescopic rod and the fixed rod, and a support rod is fixedly connected to the surface of the support column.
5. The automated winding processing equipment for inductor manufacturing according to claim 3, characterized in that, The compensation component includes a second slider fixedly connected to the top end of the first pull rope, a support block fixedly connected to the surface of the extension plate, a second spring fixedly connected between the support block and the second slider, an elastic strip fixedly connected to the surface of the second slider, and an adjustment plate fixedly connected to the other end of the first pull rope. The second slider is slidably connected to the surface of the third groove.
6. The automated winding processing equipment for inductor manufacturing according to claim 5, characterized in that, A pressure plate is fixedly connected to the surface of the elastic strip, and a groove is formed on the surface of the pressure plate. A bridging slide rod is fixedly connected to the surface of the second slider.
7. An automated winding processing equipment for inductor manufacturing according to claim 6, characterized in that, The transmission assembly includes a connecting ring fixedly connected to the surface of the synchronizing rod, a fixing frame fixedly connected to the surface of the vertical cylinder, a fixed shaft fixedly connected to the surface of the fixing frame, a transmission wheel rotatably connected to the surface of the fixed shaft, a second pull rope slidably connected to the surface of the transmission wheel, and a piston rod fixedly connected to the top end of the second pull rope. One end of the second pull rope is fixedly connected to the surface of the connecting ring.
8. An automated winding processing equipment for inductor manufacturing according to claim 7, characterized in that, Two symmetrical vertical plates are fixedly connected to the surface of the piston rod. A connecting rope is fixedly connected to the surface of the vertical plates. A gravity ball is fixedly connected to the end of the connecting rope away from the vertical plates.
9. An automated winding processing equipment for inductor manufacturing according to claim 8, characterized in that, One end of the piston rod is slidably connected to a piston cylinder, one end of the piston cylinder is fixedly connected to a connecting tube, one end of the connecting tube is fixedly connected to a suction head, a water bag is fixedly connected to the surface of the suction head, and a straw is fixedly connected to one end of the suction head, with the straw placed inside the water bag.
10. An automated winding processing equipment for inductor manufacturing according to claim 9, characterized in that, A mounting sleeve is fixedly connected to the surface of the guide rail, a motor is fixedly connected to the surface of the mounting sleeve, a rotating shaft is fixedly connected to one end of the motor, a drive roller is rotatably connected to the surface of the rotating shaft, and a wire feed ring is rotatably connected to the surface of the working base.