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CN211429032U - Fixing structure of flat copper wire winding in axial magnetic field motor - Google Patents

Fixing structure of flat copper wire winding in axial magnetic field motor Download PDF

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Publication number
CN211429032U
CN211429032U CN202020058521.3U CN202020058521U CN211429032U CN 211429032 U CN211429032 U CN 211429032U CN 202020058521 U CN202020058521 U CN 202020058521U CN 211429032 U CN211429032 U CN 211429032U
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China
Prior art keywords
winding
iron core
thermal expansion
copper wire
magnetic field
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CN202020058521.3U
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Chinese (zh)
Inventor
袁峥
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Zhejiang PanGood Power Technology Co Ltd
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Zhejiang PanGood Power Technology Co Ltd
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  • Manufacture Of Motors, Generators (AREA)
  • Insulation, Fastening Of Motor, Generator Windings (AREA)

Abstract

The utility model relates to a fixed knot of flat copper wire winding constructs in axial magnetic field motor, its structure includes the casing, sets up iron core structure and the cover in the casing and establish the winding outside iron core structure, iron core structure include the bottom plate and be the iron core monomer of annular distribution on the bottom plate, iron core monomer and winding between be equipped with the thermal expansion structure, the thermal expansion structure can expand and expand the winding tightly through heating back, this utility model discloses a set up the thermal expansion structure, the thermal expansion structure can expand tightly the winding through heating back, the fixed mode through adopting the tight winding that expands has simplified shell structure, has reduced casing external diameter and volume, the thermal expansion strip is less than the embedment plane, is covered when making its embedment, does not have the risk that drops in the motor operation process.

Description

Fixing structure of flat copper wire winding in axial magnetic field motor
Technical Field
The utility model belongs to the technical field of the motor, a fixed knot of flat type copper wire winding constructs in axial magnetic field motor is related to.
Background
In the axial magnetic field motor, if an integrally formed flat copper wire winding is used, a straight slot iron core is required, and the winding is required to be fixed on the iron core.
The existing scheme is that a pressing plate is added above a flat copper wire winding and is locked on a shell through a bolt, so that the winding is pressed and fixed. As shown in fig. 1 and 2, a fixing structure of a flat copper wire winding in an axial magnetic field motor comprises a shell, a straight slot iron core, a pressing plate, a bolt and a winding, wherein the pressing plate is locked on the shell by using the bolt after the winding is assembled in the straight slot iron core.
However, in the above scheme, the winding is fixed through the pressing plate when being fixed, and the pressing plate needs to be fixed through the bolts when being fixed, so that a structure matched with the winding needs to be added on the shell, such as a mounting surface and a threaded hole, the outer diameter of the shell and the structural complexity are increased, and meanwhile, because the bolts locking the pressing plate are higher than the potting plane, the motor can vibrate in the operation process, and the bolts have the risk of loosening and falling.
SUMMERY OF THE UTILITY MODEL
The utility model aims at providing a simple structure's fixed knot constructs to there is above-mentioned problem in current technique.
The purpose of the utility model can be realized by the following technical proposal: the utility model provides a fixed knot of flat copper wire winding constructs in axial magnetic field motor, includes the casing, sets up iron core structure and the cover in the casing and establish the winding outside the iron core structure, the iron core structure include the bottom plate and be the iron core monomer of annular distribution on the bottom plate, iron core monomer and winding between be equipped with the thermal expansion structure, the thermal expansion structure can expand and expand tightly the winding after heating.
Through set up the thermal expansion structure between iron core monomer and winding, the thermal expansion structure can expand when heating to the uniform temperature to its volume increase of time makes the winding bloated tightly, and after the cooling, this join in marriage expanding material still can keep the volume after the inflation, and the winding still keeps the tight state of expanding, relies on frictional force to fix on the iron core and keeps pasting tightly between each layer copper line, thereby fixes the winding.
In the fixing structure of the flat copper wire winding in the axial magnetic field motor, the thermal expansion structure comprises a thermal expansion strip, and the thermal expansion strip is inserted between the winding and the iron core monomer. The thermal expansion strip can expand when being heated to proper temperature, expands tightly to the winding, and simultaneously when the lowering temperature, still can keep the volume after the inflation, keeps between each layer copper line to paste tightly, and the winding is fixed on the iron core monomer according to frictional force.
The fixing structure of the flat copper wire winding in the axial magnetic field motor comprises a connecting layer fixedly connected to the outer ring of an iron core monomer, and a groove for inserting a thermal expansion strip is formed in the outer side of the connecting layer. Through setting up the articulamentum to set up the recess on the articulamentum, can reduce intensity of labour and the labour cost that the recess directly seted up on the iron core monomer, and articulamentum and recess can adopt the integral type mould to mould plastics and form, easy operation, the shaping is fast.
In the fixing structure of the flat copper wire winding in the axial magnetic field motor, the winding is an integrally formed flat copper wire winding. The winding formed by winding a continuous flat copper wire has no welding point or pressure joint point, is similar to a spring in a natural state, and has an unfixed shape.
In the fixing structure of the flat copper wire winding in the axial magnetic field motor, the thermal expansion strip is made of a high polymer material. The thermal expansion strips are high-molecular expansion graphene strips which can expand when heated to a proper temperature and keep an expanded state when the temperature is reduced.
In the fixing structure of the flat copper wire winding in the axial magnetic field motor, the connecting layer is integrally formed on the outer side of the iron core structure by adopting an injection molding process. The injection molding process is adopted, the process is simple, and the forming speed of the connecting layer is high.
In the fixing structure of the flat copper wire winding in the axial magnetic field motor, the connecting layer is made of heat-conducting insulating plastic. The heat-conducting insulating plastic is novel grey insulating heat-conducting plastic and has better insulativity and heat conductivity.
In the fixing structure of the flat copper wire winding in the axial magnetic field motor, the groove is axially arranged on the outer side of the connecting layer. The groove is axially formed, so that the thermal expansion strip can be conveniently vertically inserted, and the expansion force to the winding is increased when the thermal expansion strip expands.
Compared with the prior art, this utility model discloses a through setting up the thermal energy structure, the thermal energy structure is expandable and with the winding bloated tight after through heating, has simplified shell structure through the fixed mode that adopts the tight winding that expands, has reduced casing external diameter and volume, and the thermal energy strip is less than the embedment plane, is covered when making its embedment, does not have the risk that drops in motor operation process.
Drawings
FIG. 1 is a schematic diagram of a background art structure;
FIG. 2 is an exploded view of the background art;
fig. 3 is a schematic structural diagram of the present invention;
fig. 4 is a schematic diagram of the iron core structure of the present invention;
fig. 5 is an exploded view of the present invention.
In the figure, 1, a housing; 2. a straight slot core; 3. pressing a plate; 4. a bolt; 5. an iron core structure; 51. a base plate; 52. an iron core monomer; 6. a thermally expansive structure; 7. a thermal expansion strip; 8. a connecting layer; 9. a groove; 10. a winding; 11. a hold-down mechanism; 111. a compression plate; 112. and a clamping block.
Detailed Description
The following are specific embodiments of the present invention and the accompanying drawings are used to further describe the technical solution of the present invention, but the present invention is not limited to these embodiments.
As shown in fig. 3 to 5, a fixing structure of a flat copper wire winding in an axial magnetic field motor includes a housing 1, an iron core structure 5 disposed in the housing 1, and a winding 10 disposed outside the iron core structure 5, wherein the winding 10 is an integrally formed flat copper wire winding 10. The winding 10 wound by a continuous flat copper wire has no welding point or pressure joint point, is similar to a spring in a natural state, and has an unfixed shape.
The core structure 5 includes a bottom plate 51 and core units 52 annularly distributed on the bottom plate 51, and a slot for embedding the winding 10 is formed between every two core units 52.
The iron core structure 5 comprises a connecting layer 8 fixedly connected to the outer ring of the iron core monomer 52, the connecting layer 8 is integrally formed on the outer side of the iron core structure 5 through an injection molding process, the injection molding process is adopted, the process is simple, and the forming speed of the connecting layer 8 is high.
The outer side of the connecting layer 8 is provided with a groove 9 for inserting the thermal expansion strip 7, and the groove 9 is axially arranged on the outer side of the connecting layer 8. The groove 9 is axially formed, so that the thermal expansion strip 7 can be conveniently vertically inserted, and the expansion force on the winding 10 is increased when the thermal expansion strip expands. Through set up recess 9 on articulamentum 8, can reduce intensity of labour and the labour cost that recess 9 directly seted up on iron core monomer 52, and articulamentum 8 and recess 9 can adopt the integral type mould to mould plastics and form, simple process, the shaping is fast.
The connecting layer 8 is made of heat-conducting insulating plastic. The heat-conducting insulating plastic is novel grey insulating heat-conducting plastic and has better insulativity and heat conductivity.
A thermal expansion structure 6 is arranged between the iron core monomer 52 and the winding 10, the thermal expansion structure 6 can expand and tightly expand the winding 10 after being heated, the thermal expansion structure 6 comprises a thermal expansion strip 7, the thermal expansion strip 7 is cylindrical, and the thermal expansion strip 7 is inserted between the winding 10 and the iron core monomer 52. The thermal expansion strip 7 can expand when heated to a proper temperature to expand the winding 10, and at the same time, when the temperature is reduced, the expanded volume is still kept, the layers of copper wires are kept close to each other, and the winding 10 is fixed on the iron core monomer 52 by friction.
Wherein, the thermal expansion strip 7 is made of high polymer material. The thermal expansion strips 7 are high-molecular expansion graphene strips which can expand when heated to a suitable temperature, while remaining in an expanded state when the temperature is lowered.
The fixing method of the flat copper wire winding comprises the following steps: s1, manufacturing a connecting layer 8 on the outer surface of the iron core structure 5, wherein the connecting layer 8 is located on the outer ring of the iron core single body 52, and a groove 9 is formed in the outer side of the connecting layer 8;
s2, selecting an integrally formed flat copper wire winding 10 to be wound on the iron core structure 5;
s3, assembling the wound winding 10 and the iron core structure 5 into the shell 1, wherein the winding 10 is in a natural state, and copper wires of each layer cannot be completely attached tightly;
s4, the winding 10 is pressed through the pressing mechanism 11, the pressing mechanism 11 comprises a pressing plate 111 and clamping blocks 112 evenly distributed on the pressing plate 111, the clamping blocks can be clamped between the two iron core single bodies 52, the pressing mechanism 11 can press the winding 10 to prevent the winding 10 from loosening when the thermal expansion strip 7 is inserted, and the pressing mechanism 11 presses the winding 10 in a pressing mode;
s5, inserting the thermal expansion strip 7 into the groove 9 between the winding 10 and the connection layer 8, the clearance between the thermal expansion strip 7 and the groove 9 can be increased properly, ensuring easy insertion.
S6, heating to 80-100 ℃ to expand the thermal expansion strips 7, and keeping the temperature for 10-20 minutes to enable the thermal expansion strips 7 to expand the windings 10;
s7: cooling, namely cooling the thermal expansion strip 7 to keep the volume after expansion;
s8: after the pressing mechanism 11 is released and the pressing mechanism 11 is taken away, the winding 10 still keeps the expansion state and is fixed on the connecting layer 8 on the surface of the iron core by friction force, and the copper wires of all layers are kept tightly attached.
Compared with the prior art, this utility model discloses a through setting up thermal expansion structure 6, thermal expansion structure 6 is expandable and expand winding 10 tightly after through heating, has simplified casing 1 structure through the fixed mode that adopts the tight winding 10 that expands, has reduced casing 1 external diameter and volume, and thermal expansion strip 7 is less than the embedment plane, is covered when making its embedment, does not have the risk that drops at the motor operation in-process.
The specific embodiments described herein are merely illustrative of the spirit of the invention. Various modifications, additions and substitutions for the specific embodiments described herein may be made by those skilled in the art without departing from the spirit of the invention or exceeding the scope of the invention as defined in the accompanying claims.

Claims (8)

1. The utility model provides a fixed knot of flat copper wire winding constructs in axial magnetic field motor, includes casing (1), sets up iron core structure (5) in casing (1) and cover establish winding (10) outside iron core structure (5), iron core structure (5) include bottom plate (51) and be iron core monomer (52) of annular distribution on bottom plate (51), its characterized in that, iron core monomer (52) and winding (10) between be equipped with thermal expansion structure (6), thermal expansion structure (6) can expand winding (10) tight through heating after the expandable.
2. The fixing structure of the flat copper wire winding in the axial magnetic field motor according to claim 1, characterized in that: the thermal expansion structure (6) comprises thermal expansion strips (7), and the thermal expansion strips (7) are inserted between the winding (10) and the iron core single body (52).
3. The fixing structure of the flat copper wire winding in the axial magnetic field motor according to claim 1 or 2, characterized in that: the iron core structure (5) including link firmly in the articulamentum (8) of iron core monomer (52) outer lane, articulamentum (8) outside be equipped with recess (9) that are used for inserting thermal expansion strip (7).
4. The fixing structure of the flat copper wire winding in the axial magnetic field motor according to claim 1 or 2, characterized in that: the winding (10) is an integrally formed flat copper wire winding.
5. The fixing structure of the flat copper wire winding in the axial magnetic field motor according to claim 2, characterized in that: the thermal expansion strip (7) is made of high polymer material.
6. The fixing structure of the flat copper wire winding in the axial magnetic field motor according to claim 3, characterized in that: the connecting layer (8) is integrally formed on the outer side of the iron core structure (5) by adopting an injection molding process.
7. The fixing structure of the flat copper wire winding in the axial magnetic field motor according to claim 3, characterized in that: the connecting layer (8) is made of heat-conducting insulating plastic.
8. The fixing structure of the flat copper wire winding in the axial magnetic field motor according to claim 6 or 7, characterized in that: the groove (9) is axially arranged on the outer side of the connecting layer (8).
CN202020058521.3U 2020-01-10 2020-01-10 Fixing structure of flat copper wire winding in axial magnetic field motor Active CN211429032U (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN202020058521.3U CN211429032U (en) 2020-01-10 2020-01-10 Fixing structure of flat copper wire winding in axial magnetic field motor

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN202020058521.3U CN211429032U (en) 2020-01-10 2020-01-10 Fixing structure of flat copper wire winding in axial magnetic field motor

Publications (1)

Publication Number Publication Date
CN211429032U true CN211429032U (en) 2020-09-04

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CN202020058521.3U Active CN211429032U (en) 2020-01-10 2020-01-10 Fixing structure of flat copper wire winding in axial magnetic field motor

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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP4287473A4 (en) * 2021-02-01 2025-01-01 Weg Equipamentos Elétricos S.A. STATOR FOR AN ELECTRICAL AXIAL FLUX MACHINE

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP4287473A4 (en) * 2021-02-01 2025-01-01 Weg Equipamentos Elétricos S.A. STATOR FOR AN ELECTRICAL AXIAL FLUX MACHINE

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