CN119381158B - Copper wire winding device of transformer core - Google Patents

Copper wire winding device of transformer core Download PDF

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Publication number
CN119381158B
CN119381158B CN202411976369.6A CN202411976369A CN119381158B CN 119381158 B CN119381158 B CN 119381158B CN 202411976369 A CN202411976369 A CN 202411976369A CN 119381158 B CN119381158 B CN 119381158B
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China
Prior art keywords
frame
iron core
sliding
connection frame
groove
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CN202411976369.6A
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Chinese (zh)
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CN119381158A (en
Inventor
冯雨剑
杨乐
金娇阳
秦少甫
李彪
吴彬
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Hogn Electrical Group Co ltd
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Hogn Electrical Group Co ltd
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Priority to CN202411976369.6A priority Critical patent/CN119381158B/en
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    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01FMAGNETS; INDUCTANCES; TRANSFORMERS; SELECTION OF MATERIALS FOR THEIR MAGNETIC PROPERTIES
    • H01F41/00Apparatus or processes specially adapted for manufacturing or assembling magnets, inductances or transformers; Apparatus or processes specially adapted for manufacturing materials characterised by their magnetic properties
    • H01F41/02Apparatus or processes specially adapted for manufacturing or assembling magnets, inductances or transformers; Apparatus or processes specially adapted for manufacturing materials characterised by their magnetic properties for manufacturing cores, coils, or magnets
    • H01F41/04Apparatus or processes specially adapted for manufacturing or assembling magnets, inductances or transformers; Apparatus or processes specially adapted for manufacturing materials characterised by their magnetic properties for manufacturing cores, coils, or magnets for manufacturing coils
    • H01F41/06Coil winding
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01FMAGNETS; INDUCTANCES; TRANSFORMERS; SELECTION OF MATERIALS FOR THEIR MAGNETIC PROPERTIES
    • H01F41/00Apparatus or processes specially adapted for manufacturing or assembling magnets, inductances or transformers; Apparatus or processes specially adapted for manufacturing materials characterised by their magnetic properties
    • H01F41/02Apparatus or processes specially adapted for manufacturing or assembling magnets, inductances or transformers; Apparatus or processes specially adapted for manufacturing materials characterised by their magnetic properties for manufacturing cores, coils, or magnets
    • H01F41/04Apparatus or processes specially adapted for manufacturing or assembling magnets, inductances or transformers; Apparatus or processes specially adapted for manufacturing materials characterised by their magnetic properties for manufacturing cores, coils, or magnets for manufacturing coils
    • H01F41/06Coil winding
    • H01F41/071Winding coils of special form
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01FMAGNETS; INDUCTANCES; TRANSFORMERS; SELECTION OF MATERIALS FOR THEIR MAGNETIC PROPERTIES
    • H01F41/00Apparatus or processes specially adapted for manufacturing or assembling magnets, inductances or transformers; Apparatus or processes specially adapted for manufacturing materials characterised by their magnetic properties
    • H01F41/02Apparatus or processes specially adapted for manufacturing or assembling magnets, inductances or transformers; Apparatus or processes specially adapted for manufacturing materials characterised by their magnetic properties for manufacturing cores, coils, or magnets
    • H01F41/04Apparatus or processes specially adapted for manufacturing or assembling magnets, inductances or transformers; Apparatus or processes specially adapted for manufacturing materials characterised by their magnetic properties for manufacturing cores, coils, or magnets for manufacturing coils
    • H01F41/06Coil winding
    • H01F41/08Winding conductors onto closed formers or cores, e.g. threading conductors through toroidal cores
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02PCLIMATE CHANGE MITIGATION TECHNOLOGIES IN THE PRODUCTION OR PROCESSING OF GOODS
    • Y02P70/00Climate change mitigation technologies in the production process for final industrial or consumer products
    • Y02P70/10Greenhouse gas [GHG] capture, material saving, heat recovery or other energy efficient measures, e.g. motor control, characterised by manufacturing processes, e.g. for rolling metal or metal working

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  • Engineering & Computer Science (AREA)
  • Power Engineering (AREA)
  • Manufacturing & Machinery (AREA)
  • Coil Winding Methods And Apparatuses (AREA)

Abstract

本发明公开了一种互感器铁芯的铜线缠绕装置,包括加工台和缠绕器,所述加工台上转动连接有旋接架,所述滑接架的外侧滑动连接有两个滑板,所述滑板上固设有夹板,所述加工台的中安装有驱动电机;所述加工台上设置有导动结构,所述旋接架上设置有连动件;所述加工台上设置有控制托板竖向移动的伸缩件。本发明中,首先,通过控制旋接架的转动,实现夹板在随着铁芯转动时,自动调整与铁芯侧边的松紧状态,满足对方形铁芯侧边的连续绕线加工,进而有利于提高对方形线圈的铜线绕线效率,其次,多个夹板在连动件和导动件的作用下相互关联配合,减少多个了电动设备的调校配合,从而达到降低设备的投入和维护成本的目的。

The present invention discloses a copper wire winding device for a transformer core, comprising a processing table and a winder, wherein the processing table is rotatably connected with a rotating frame, two slides are slidably connected to the outer side of the sliding frame, a clamping plate is fixedly provided on the slide, and a driving motor is installed in the center of the processing table; a guide structure is provided on the processing table, a linking member is provided on the rotating frame; and a telescopic member for controlling the vertical movement of the support plate is provided on the processing table. In the present invention, firstly, by controlling the rotation of the rotating frame, the clamping plate can automatically adjust the tightness with the side of the core when the core rotates, so as to meet the continuous winding processing of the side of the square core, thereby facilitating the improvement of the copper wire winding efficiency of the square coil; secondly, a plurality of clamping plates are mutually related and coordinated under the action of the linking member and the guiding member, so as to reduce the adjustment and coordination of a plurality of electric equipment, thereby achieving the purpose of reducing the investment and maintenance cost of the equipment.

Description

Copper wire winding device of transformer core
Technical Field
The invention relates to the technical field of transformer processing, in particular to a copper wire winding device of a transformer iron core.
Background
The transformer is a device for measuring and converting current, voltage or power in a power system, and is widely applied to the fields of power systems, electrical equipment, automatic control and the like.
The transformer winding device is special equipment for winding a transformer iron core coil, and mainly comprises a closed iron core and a winding, wherein in the winding process, a motor is controlled to rotate through a controller to drive a winding shaft to rotate so as to perform winding work in order to meet the winding efficiency of copper wires. The controller can also control the electric push rod to stretch out and draw back, so that the winding device moves left and right on the sliding rail, and the copper wire is uniformly wound on the winding shaft.
In the prior art, when automatic copper wire winding is carried out to square iron core, a plurality of mutually independent manipulators are required to be tightly matched, when the square iron core needs to be subjected to edge replacement winding, a plurality of manipulators are required to be synchronously matched under a set program, so that the manipulators can be used for removing clamping fixation of the iron core towards one side of a winding machine when adjusting the position of the iron core, interference to copper wire winding of the side iron core is avoided, stable winding of the iron core is ensured, and the butt joint clamping is further carried out on one side of the iron core for completing winding through the cooperation of other manipulators. Therefore, when the conventional copper wire winding device is used for edge replacement and winding of the square iron core, the operation procedure is complicated, and the problem of higher equipment investment and maintenance cost exists due to the multi-point matching of mutually independent electric control equipment.
Based on the defects, the copper wire winding device of the transformer iron core is provided.
Disclosure of Invention
The invention aims to solve the problems and provides a copper wire winding device of a transformer iron core.
In order to achieve the aim, the copper wire winding device of the transformer iron core comprises a processing table and a winding device arranged on the processing table, wherein the processing table is rotationally connected with a rotary connecting frame through a rotating shaft, four sliding connecting frames corresponding to four sides of the iron core are slidingly connected with the rotary connecting frame, two sliding plates are slidingly connected with the outer sides of the sliding connecting frames, clamping plates are fixedly arranged on the sliding plates, and a driving motor for controlling the rotary connecting frames to rotate is arranged in the processing table;
The processing bench is provided with a guide structure for adjusting the positions of the sliding connection frame and the rotating connection frame, the rotating connection frame is provided with a linkage piece, and when the sliding connection frame slides relative to the rotating connection frame, the two sliding plates move along the sliding connection frame under the action of the linkage piece to control the clamping state of the clamping plate on the iron core;
the processing bench vertically slides and has the layer board of cooperation iron core rack to put, be provided with the extensible member of control layer board vertical movement on the processing bench.
Preferably, the guiding structure comprises a frame disc vertically sliding between the processing table and the rotary connecting frame, a guide rod penetrating through the rotary connecting frame is fixedly arranged at the bottom of the rotary connecting frame, a sliding groove matched with the guide rod to slide and penetrate is formed in the rotary connecting frame, and a first guiding groove and a second guiding groove matched with the guide rod to slide are formed in the frame disc.
Preferably, the first guide groove and the second guide groove are both composed of an outer ring groove, an inner ring groove, and a radial groove and an inclined groove which are communicated with the inner ring groove and the outer ring groove;
When the guide rod slides along the outer ring groove, the sliding connection frame is static relative to the rotating connection frame, the clamping plates keep clamping the iron core, when the guide rod slides along the radial groove, the clamping plates release the iron core, and when the guide rod slides along the inner ring groove, the clamping plates keep loosening with the iron core, and when the guide rod slides along the oblique groove, the sliding connection frame slides against the iron core, and the clamping plates clamp the iron core.
Preferably, a telescopic rod for controlling the vertical movement of the frame disc is arranged in the processing table, two inclined blocks are fixedly arranged at the top of the frame disc, and the two inclined blocks are respectively positioned at the inner sides of the first guide groove and the second guide groove.
Preferably, the linkage piece comprises two wheel discs rotatably connected to the inner sides of the sliding connection frames and an assembly for driving the wheel discs to rotate, chains are sleeved on the outer sides of the two wheel discs in a meshed mode, and two sides of the chains are fixed with the two sliding plates through fixing blocks respectively.
Preferably, the assembly for driving the wheel disc to rotate comprises a frame plate fixed on the spin-on frame, a magnetic sheet is fixedly arranged at the outer end of the frame plate, a transverse shaft is fixedly arranged at the outer end of the frame plate, a sliding sleeve matched with the transverse shaft to penetrate in a sliding mode is coaxially and fixedly arranged on one wheel disc, a protrusion is formed on the inner wall of the sliding sleeve, and a sliding rail matched with the protrusion to slide is formed on the side wall of the transverse shaft.
Preferably, the telescopic part comprises a bracket fixed on the processing table and corresponding to the supporting plate, a transmission arm rotating and connecting with the outer side of the bracket, and an assembly driving the transmission arm to rotate, wherein a sleeve is fixedly arranged at the bottom of the supporting plate, and the free end of the transmission arm is rotationally connected with the sleeve.
Preferably, the assembly for driving the transmission arm to rotate comprises a gear which is rotationally connected to the inner side of the bracket and is coaxially fixed with the transmission arm, a bending arm corresponding to the gear is fixedly arranged on the side wall of the bracket disc, and meshing teeth meshed with the gear are formed on the side wall of the bending arm.
Preferably, a bending frame is fixedly arranged on the processing table, a vertical rod is fixedly arranged at the top of the bending frame, and the sleeve is slidably sleeved on the outer side of the vertical rod.
In summary, due to the adoption of the technical scheme, the beneficial effects of the invention are as follows:
1. according to the application, the sliding connection frame can rotate along with the rotating connection frame by controlling the rotation of the rotating connection frame, so that the position of the sliding connection frame relative to the rotating connection frame can be automatically adjusted, the tightness state of the clamping plate and the side edge of the iron core can be automatically adjusted when the clamping plate rotates along with the iron core, the obstruction to continuous winding of the iron core can be avoided on the premise of meeting the winding stability of the iron core, the continuous winding processing of the side edge of the square iron core can be met, and the copper wire winding efficiency of the square coil can be improved.
2. According to the application, the clamping plates are mutually associated and matched under the action of the linkage piece and the guide piece, so that when the side edge of the iron core faces the winder, the clamping plates are automatically separated from the side edge of the iron core, and when the side edge of the iron core is rotated away from the winder, the clamping plates automatically clamp the iron core, and the adjustment and matching of a plurality of electric devices are reduced, thereby achieving the purpose of reducing the investment and maintenance cost of the devices.
Drawings
Fig. 1 is a schematic perspective view showing a winding apparatus according to an embodiment of the present invention;
Fig. 2 is a schematic cross-sectional structure view showing a winding apparatus provided according to an embodiment of the present invention;
FIG. 3 shows an exploded view of a swing frame, a frame tray and a slip frame according to an embodiment of the present invention
Fig. 4 is a schematic diagram showing a matching structure of a wheel disc and a transverse shaft according to an embodiment of the present invention;
Fig. 5 shows a schematic diagram of a driving structure of a pallet according to an embodiment of the present invention.
Legend description:
1. The device comprises a processing table, a winder, a rotary connecting frame, a sliding groove, a driving motor, a sliding connecting frame, a sliding plate, a clamping plate, a guide rod, a roller, a wheel disc, a roller, a chain, a fixed block, a sliding sleeve, a protrusion, a frame plate, a 1401, a magnetic sheet, a 15, a transverse shaft, a 16, a sliding rail, a 17, a frame disc, a 18, a first guide groove, a 19, a second guide groove, a 20, an oblique block, a 21, a telescopic rod, a 22, a bending arm, a 23, a tooth, a 24, a bracket, a 25, a gear, a 26, a sleeve, a 27, a transmission arm, a 28, a supporting plate, a 29, a bending frame, a 30 and a vertical rod.
Detailed Description
The following description of the embodiments of the present invention will be made clearly and completely with reference to the accompanying drawings, in which it is apparent that the embodiments described are only some embodiments of the present invention, but not all embodiments. All other embodiments, which can be made by those skilled in the art based on the embodiments of the invention without making any inventive effort, are intended to be within the scope of the invention.
Embodiment one:
Referring to fig. 1-5, the invention provides a technical scheme that a copper wire winding device of a transformer iron core comprises a processing table 1 and a winding device 2 arranged on the processing table 1, wherein a rotary connecting frame 3 is rotatably connected to the processing table 1 through a rotating shaft, four sliding connecting frames 5 corresponding to four sides of the iron core are slidably connected to the rotary connecting frame 3, two sliding plates 6 are slidably connected to the outer sides of the sliding connecting frames 5, clamping plates 7 are fixedly arranged on the sliding plates 6, and a driving motor 4 for controlling the rotary connecting frames 3 to rotate is arranged in the processing table 1.
The screwing frame 3 is in a diamond structure, wherein the distance between two opposite angles is larger than that between the other two opposite angles, and the screwing frame is used for adapting the distribution of the long and wide sides of the square iron core. The output end of the driving motor 4 is fixed with the frame disc 17, the frame disc 17 is controlled to rotate through the driving motor 4, so that the four sliding frames 5 synchronously rotate along with the frame disc 17, and further, the clamping of the clamping plate 7 on the side edge of the iron core is realized, and the edge-changing winding of the iron core is realized.
The clamping plates 7 are detachably fixed on the sliding plate 6 through bolts, and the clamping plates 7 with different lengths are detached and replaced to meet the edge-changing clamping of square iron cores with different sizes. The rubber pads are fixedly arranged at the opposite ends of the two clamping plates 7, so that the clamping plates have certain deformation capability when clamping the iron core, and damage to the outside of the iron core is avoided when clamping the iron core.
The processing bench 1 is provided with a guide structure for adjusting the positions of the sliding connection frame 5 and the rotating connection frame 3, the rotating connection frame 3 is provided with a linkage piece, when the sliding connection frame 5 slides relative to the rotating connection frame 3, the two sliding plates 6 move along the sliding connection frame 5 under the action of the linkage piece, and the clamping state of the clamping plate 7 to the iron core is controlled.
When the winder 2 carries out winding treatment to one side of the iron core, two clamping plates 7 are always responsible for clamping the side edge of the iron core, when one side of the iron core rotates along with the spin-on frame 3, before the winder 2 is not aligned yet, the slip-on frame 5 slides away from one side corresponding to the iron core under the action of the guide structure, so that the clamping plates 7 are opened in advance, the contact with the iron core is released, when the side edge of the iron core rotates along with the spin-on frame 3 towards the winder 2, the corresponding slip-on frame 5 keeps the opposite spin-on frame 3 in a static state, so that the clamping plates 7 keep a loose state with the iron core, and the winder 2 is favorable for winding continuous copper wires along the side edge of the square iron core. When the side edge of the iron core wound by the copper core rotates along with the rotary connecting frame 3, the sliding connecting frame 5 corresponding to the side edge slides along the rotary connecting frame 3 to lean against the side edge of the iron core under the action of the guide structure, and in the process, the two sliding plates 6 drive the clamping plates 7 to move oppositely under the action of the linkage piece, so that the side edge of the iron core is clamped, and the condition that the other side edge of the iron core is wound is met, and the iron core is ensured to be in a stable placing state is ensured.
Through the rotation of control spin frame 3 for slip frame 5 can rotate along with spin frame 3, the position of its relative spin frame 3 of automatic adjustment, thereby realize splint 7 along with the iron core when rotating, automatically regulated and the elasticity state of iron core side, under the prerequisite that satisfies iron core wire winding process stability, avoid causing the hindrance to the continuous wire winding of iron core, thereby satisfy the continuous wire winding processing of square iron core side, and then be favorable to improving square coil's copper line wire winding efficiency, and a plurality of splint 7 are mutually associated under the effect of linkage and guide, reduce a plurality of electrical equipment's timing cooperation, thereby reach the purpose that reduces equipment's input and maintenance cost.
The processing table 1 is vertically provided with a supporting plate 28 which is matched with the iron core rack, and the processing table 1 is provided with a telescopic piece for controlling the supporting plate 28 to vertically move.
The supporting plate 28 is used for supporting the bottom of the iron core before the winding of the iron core and after the winding of the iron core is finished, so that after clamping plates 7 on four sliding connection frames 5 are used for removing the clamping state of the iron core, the iron core can be kept in a relatively stable supporting state, and the iron core supported on the supporting plate 28 can be replaced and placed in a manner of being favorable for a manipulator or manual operation.
Embodiment two:
The same as the embodiment is basically the same, except that, as shown in fig. 2 and 3, the guiding structure includes a frame disk 17 vertically sliding between the processing table 1 and the screwing frame 3, the bottom of the sliding frame 5 is fixedly provided with a guide rod 8 penetrating the screwing frame 3, the screwing frame 3 is formed with a sliding groove 301 penetrating the sliding guide rod 8 in a sliding manner, and the frame disk 17 is formed with a first guiding groove 18 and a second guiding groove 19 penetrating the sliding guide rod 8 in a sliding manner.
The first guide groove 18 and the second guide groove 19 are composed of an outer annular groove, an inner annular groove, and a radial groove and an inclined groove which are communicated with the inner annular groove and the outer annular groove;
When the guide rod 8 slides along the outer ring groove, the sliding connection frame 5 is static relative to the rotating connection frame 3, the clamping plate 7 keeps clamping the iron core, when the guide rod 8 slides along the radial groove, the clamping plate 7 releases the iron core, the sliding connection frame 5 slides away from the iron core, when the guide rod 8 slides along the inner ring groove, the clamping plate 7 keeps loosening from the iron core, when the guide rod 8 slides along the oblique groove, the sliding connection frame 5 slides against the iron core, and the clamping plate 7 clamps the iron core.
In this embodiment, when the side edge of the iron core rotates along with the rotating frame 3, before sliding towards the winder 2, the guide rod 8 will slide to the junction of the outer ring groove and the radial groove, at this time, the sliding frame 5 will slide away from the corresponding side edge of the iron core under the action of magnetic attraction, in this process, the guide rod 8 will slide into the inner ring groove along the radial groove, and the sliding plate 6 will also drive the two clamping plates 7 to slide and open under the action of the linkage, so as to release the contact state with the side edge of the iron core.
The two ends of the inclined groove are respectively connected with the outer ring groove and the inner ring groove, when the guide rod 8 slides along the inclined groove, the sliding connection frame 5 fixed with the guide rod 8 is driven to slide against the corresponding iron core side edge through the compression transmission of the inner wall of the inclined groove to the side wall of the guide rod 8, and in the process, the two sliding plates 6 drive the clamping plates 7 to move oppositely under the action of the linkage piece until the iron core side edge is clamped.
The processing table 1 is internally provided with a telescopic rod 21 for controlling the vertical movement of the frame disc 17, the top of the frame disc 17 is fixedly provided with two inclined blocks 20, and the two inclined blocks 20 are respectively positioned at the inner sides of the first guide groove 18 and the second guide groove 19.
The telescopic link 21 is current hydraulic pressure or pneumatic flexible mode, moves along vertical direction through telescopic link 21 control frame dish 17, and after square iron core accomplished copper line winding, move downwards through telescopic link 21 control frame dish 17 for first guide way 18 and second guide way 19 are removed the restriction to guide arm 8, and sliding connection frame 5 will slide under the effect of magnetic attraction at this moment and lean on frame plate 14, and then make the iron core four sides all be in the pine release state, realize unloading to the iron core.
When the frame disc 17 is controlled to move upwards through the telescopic rod 21, the inclined block 20 fixed on the frame disc 17 drives the sliding connection frame 5 fixed with the guide rod 8 to slide against the side edge of the iron core through the bottom of the guide rod 8 until the guide rod 8 slides into the guide groove again, and the clamping plate 7 clamps the side edge of the iron core, so that the iron core is fixed.
Embodiment III:
The same way as the embodiment is basically the same, except that, as shown in fig. 1-3, the linkage member includes two wheel discs 9 rotatably connected to the inner side of the sliding frame 5, and a component for driving the wheel discs 9 to rotate, the outer sides of the two wheel discs 9 are engaged and sleeved with chains 10, and two sides of the chains 10 are respectively fixed with the two sliding plates 6 through fixing blocks 11.
When the wheel 9 rotates, two sliding plates 6 fixed with the fixed blocks 11 are pulled to synchronously move along the sliding frame 5 through the chain 10 meshed with the wheel. The sheave 9 is a sprocket engaged with the chain 10.
The assembly for driving the wheel disc 9 to rotate comprises a frame plate 14 fixed on the rotary connecting frame 3, a magnetic sheet 1401 is fixedly arranged at the outer end of the frame plate 14, a transverse shaft 15 is fixedly arranged at the outer end of the frame plate 14, a sliding sleeve 12 matched with the transverse shaft 15 to slide and penetrate is coaxially and fixedly arranged on one wheel disc 9, a protrusion 13 is formed on the inner wall of the sliding sleeve 12, and a sliding rail 16 matched with the protrusion 13 to slide is formed on the side wall of the transverse shaft 15. The slide rail 16 has a spiral structure.
The sliding sleeve 12 is made of iron-containing materials, when the guide rod 8 is not limited by the guide groove, the sliding sleeve 12 can drive the sliding connection frame 5 to slide against the frame plate 14 under the magnetic attraction effect of the magnetic sheet 1401, in the process, the bulge 13 fixed in the inner wall of the sliding sleeve 12 can slide along the sliding rail 16, and the pressing transmission of the inner wall of the sliding rail 16 to the outer wall of the bulge 13 drives the sliding sleeve 12 to drive the wheel disc 9 to rotate.
Embodiment four:
The difference is that, as shown in fig. 2 and 5, the telescopic member includes a bracket 24 fixed on the processing table 1 corresponding to the supporting plate 28, a transmission arm 27 rotatably connected to the outer side of the bracket 24, and a component for driving the transmission arm 27 to rotate, wherein a sleeve 26 is fixedly arranged at the bottom of the supporting plate 28, and the free end of the transmission arm 27 is rotatably connected with the sleeve 26.
The transmission arm 27 is formed by rotationally connecting two arm rods with equal length, when the transmission arm 27 rotates and expands, the sleeve 26 drives the supporting plate 28 to move upwards under the action of the transmission arm 27 to support the iron core wound by the copper wire, and when the transmission arm 27 rotates and folds, the supporting plate 28 moves downwards to send the replaced iron core into the clamping area of the clamping plate 7 again.
The assembly for driving the transmission arm 27 to rotate comprises a gear 25 which is rotatably connected to the inner side of the bracket 24 and is coaxially fixed with the transmission arm 27, a bending arm 22 corresponding to the gear 25 is fixedly arranged on the side wall of the bracket disc 17, and a meshing tooth 23 which is meshed with the gear 25 is formed on the side wall of the bending arm 22. A bending frame 29 is fixedly arranged on the processing table 1, a vertical rod 30 is fixedly arranged at the top of the bending frame 29, and a sleeve 26 is slidably sleeved on the outer side of the vertical rod 30.
When the tray 17 moves in the vertical direction, the bending arm 22 fixed on the side wall of the tray 17 acts on the gear 25 through the tooth 23 to drive the transmission arm 27 coaxially fixed with the gear 25 to rotate, so as to drive the supporting plate 28 to move vertically, and in the process, the sleeve 26 fixed on the bottom of the supporting plate 28 slides along the vertical rod 30.
The previous description of the embodiments is provided to enable any person skilled in the art to make or use the present invention. Various modifications to these embodiments will be readily apparent to those skilled in the art, and the generic principles defined herein may be applied to other embodiments without departing from the spirit or scope of the invention. Thus, the present invention is not intended to be limited to the embodiments shown herein but is to be accorded the widest scope consistent with the principles and novel features disclosed herein.

Claims (7)

1. The utility model provides a copper line wind of mutual-inductor iron core, includes processing platform (1) and installs coiler (2) on processing platform (1), its characterized in that, be connected with soon on processing platform (1) through the pivot rotation and connect frame (3), connect frame (3) go up sliding connection have four sliding connection frame (5) that correspond the iron core four sides soon, sliding connection has two slide (6) in the outside of sliding connection frame (5), splint (7) have been set firmly on slide (6), install in processing platform (1) control soon and connect frame (3) pivoted driving motor (4);
The processing bench (1) is provided with a guide structure for adjusting the positions of a sliding connection frame (5) and a rotating connection frame (3), the rotating connection frame (3) is provided with a linkage piece, when the sliding connection frame (5) slides relative to the rotating connection frame (3), two sliding plates (6) move along the sliding connection frame (5) under the action of the linkage piece to control the clamping state of the clamping plates (7) on the iron core, the guide structure comprises a frame disc (17) vertically sliding between the processing bench (1) and the rotating connection frame (3), the bottom of the sliding connection frame (5) is fixedly provided with a guide rod (8) penetrating through the rotating connection frame (3), the rotating connection frame (3) is internally provided with a sliding groove (301) for matching the guide rod (8) to slide, and the frame disc (17) is internally provided with a first guide groove (18) and a second guide groove (19) for matching the guide rod (8) to slide;
The first guide groove (18) and the second guide groove (19) are formed by an outer annular groove, an inner annular groove, a radial groove and an inclined groove, wherein the radial groove and the inclined groove are communicated with the inner annular groove and the outer annular groove, when the guide rod (8) slides along the outer annular groove, the sliding connection frame (5) is static relative to the rotating connection frame (3), the clamping plate (7) keeps clamping state to the iron core, when the guide rod (8) slides along the radial groove, the clamping plate (7) releases the iron core, when the sliding connection frame (5) slides away from the iron core, when the guide rod (8) slides along the inner annular groove, the clamping plate (7) keeps loose from the iron core, when the guide rod (8) slides along the inclined groove, the sliding connection frame (5) slides against the iron core, and the clamping plate (7) clamps the iron core;
The machining table (1) is vertically provided with a supporting plate (28) which is matched with the iron core to be placed in a sliding mode, and the machining table (1) is provided with a telescopic piece which controls the supporting plate (28) to vertically move.
2. The copper wire winding device of the transformer iron core according to claim 1, wherein a telescopic rod (21) for controlling the vertical movement of a frame disc (17) is installed in the processing table (1), two inclined blocks (20) are fixedly arranged at the top of the frame disc (17), and the two inclined blocks (20) are respectively positioned at the inner sides of the first guide groove (18) and the second guide groove (19).
3. The copper wire winding device of the transformer iron core according to claim 1, wherein the linkage piece comprises two wheel discs (9) rotatably connected to the inner sides of the sliding connection frames (5) and a component for driving the wheel discs (9) to rotate, chains (10) are sleeved on the outer sides of the two wheel discs (9) in a meshed mode, and two sides of the chains (10) are fixed with the two sliding plates (6) through fixing blocks (11) respectively.
4. A copper wire winding device for a transformer core according to claim 3, characterized in that the assembly for driving the wheel disc (9) to rotate comprises a frame plate (14) fixed on the spin-connection frame (3), a magnetic sheet (1401) is fixedly arranged at the outer end of the frame plate (14), a transverse shaft (15) is fixedly arranged at the outer end of the frame plate (14), a sliding sleeve (12) which is matched with the transverse shaft (15) to penetrate through in a sliding manner is coaxially and fixedly arranged on one wheel disc (9), a protrusion (13) is formed on the inner wall of the sliding sleeve (12), and a sliding rail (16) which is matched with the protrusion (13) to slide is formed on the side wall of the transverse shaft (15).
5. A copper wire winding device for a transformer core according to claim 1, characterized in that the telescopic member comprises a bracket (24) fixed on the processing table (1) corresponding to a supporting plate (28), a transmission arm (27) rotatably connected with the outer side of the bracket (24), and an assembly for driving the transmission arm (27) to rotate, a sleeve (26) is fixedly arranged at the bottom of the supporting plate (28), and the free end of the transmission arm (27) is rotatably connected with the sleeve (26).
6. The copper wire winding device of the transformer core according to claim 5, wherein the assembly for driving the transmission arm (27) to rotate comprises a gear (25) rotatably connected to the inner side of the bracket (24) and coaxially fixed with the transmission arm (27), a bending arm (22) corresponding to the gear (25) is fixedly arranged on the side wall of the bracket disc (17), and a meshing tooth (23) meshed with the gear (25) is formed on the side wall of the bending arm (22).
7. The copper wire winding device of the transformer core according to claim 5, wherein a bending frame (29) is fixedly arranged on the processing table (1), a vertical rod (30) is fixedly arranged at the top of the bending frame (29), and the sleeve (26) is slidably sleeved on the outer side of the vertical rod (30).
CN202411976369.6A 2024-12-31 2024-12-31 Copper wire winding device of transformer core Active CN119381158B (en)

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CN121641678B (en) * 2026-01-19 2026-04-24 咸宁市丰源高科电气有限责任公司 Processing equipment for transformer winding production and processing method thereof

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KR102245466B1 (en) * 2020-12-16 2021-04-28 안형준 Winding Apparatus for Rectangular Core

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JP2000223344A (en) * 1999-01-29 2000-08-11 Toshiba Corp Winding machine and winding forming method using the same
CN202473596U (en) * 2011-12-19 2012-10-03 乐清市亿博电气设备自动化技术有限公司 Square winding machine
KR102042110B1 (en) * 2019-06-05 2019-11-07 이광훈 Semi automatic winding apparatus for ellipitical or triangle type core fof current transformer
CN217280426U (en) * 2022-03-15 2022-08-23 苏州合昌电力科技有限公司 Mutual inductor coil winding device
CN118486539B (en) * 2024-07-15 2024-10-15 南通明月电器有限公司 Winding device of electromagnet coil and winding clamp thereof

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