INJECTION MOLDING STEPPING MOTOR
20220337101 ยท 2022-10-20
Inventors
Cpc classification
H02K2203/12
ELECTRICITY
H02K15/12
ELECTRICITY
H02K2213/03
ELECTRICITY
International classification
H02K15/12
ELECTRICITY
Abstract
The present invention relates to an injection molding stepping motor, including an injection molding stator assembly and a rotor assembly, wherein the injection molding stator assembly includes a stator iron core, a front framework, a rear framework, a stator winding, a front lining ring, a rear lining ring and a mounting bracket, the stator winding is wound in a groove of the stator iron core into which the front framework and the rear framework are inserted, the front lining ring and the rear lining ring are mounted on two sides of the stator iron core, the stator iron core is fixed on the mounting bracket, and the front lining ring and the rear lining ring each adopts a structure which is formed by punching and laminating thin plates with different inner diameters. Compared with the prior art, the present invention has the advantages of reducing axial magnetic flux leakage of a motor and improving the moment of the motor.
Claims
1. An injection molding stepping motor, comprising an injection molding stator assembly and a rotor assembly, wherein the injection molding stator assembly comprises a stator iron core, a front framework, a rear framework, a stator winding, a front lining ring, a rear lining ring and a mounting bracket, the stator winding is wound in a groove of the stator iron core into which the front framework and the rear framework are inserted, the front lining ring and the rear lining ring are mounted on two sides of the stator iron core, the stator iron core is fixed on the mounting bracket, and the front lining ring and the rear lining ring each adopts a structure which is formed by punching and laminating thin plates with different inner diameters.
2. The injection molding stepping motor according to claim 1, wherein the thin plates comprise a first thin plate and a second thin plate which have different inner diameters, and the first thin plate and the second thin plate are laminated for placing a retainer ring groove for preventing a rotor from being removed.
3. The injection molding stepping motor according to claim 2, wherein the first thin plate and the second thin plate are thin plates made of stainless steel.
4. The injection molding stepping motor according to claim 1, wherein the thin plates comprise a third thin plate, a fourth thin plate and a fifth thin plate, the third thin plate and the fifth thin plate have the same inner diameter, the inner diameter of the fourth thin plate is greater than that of the third thin plate the fifth thin plate is arranged on a side closest to the stator iron core the third thin plate is adjacently connected to the fifth thin plate and the fourth thin plate is embedded in the third thin plate.
5. The injection molding stepping motor according to claim 4, wherein the fifth thin plate is a thin plate made of a non-magnetic-conductive material, and the third thin plate and the fourth thin plate adopt iron plates.
6. The injection molding stepping motor according to claim 5, wherein the non-magnetic-conductive material is stainless steel.
7. The injection molding stepping motor according to claim 4, wherein the laminating thickness of the fifth thin plate is 1-2 mm.
8. The injection molding stepping motor according to claim 2, wherein high-temperature resistant plastic or insulating paper is added to one side of the stator iron core.
9. The injection molding stepping motor according to claim 8, wherein the thickness of the plastic or insulating paper is 0.5-2 mm.
10. The injection molding stepping motor according to claim 2 wherein the front framework or the rear framework adopt a new framework, the new framework is provided with an extension portion in a radial direction, and the extension portion is used to cover a tooth portion of the stator iron core.
Description
BRIEF DESCRIPTION OF DRAWINGS
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[0040] In the drawings, 1 is injection molding assembly, 2 is stator iron core, 3 is front framework, 4 is rear framework, 5 is stator winding, 6 is front lining ring, 7 is rear lining ring, 8 is mounting bracket, 9 is processed stator groove, 10 is processed stator assembly, 11 is first steel sleeve, 12 is first thin plate, 13 is second thin plate, 14 is retainer ring groove, 15 is second steel sleeve, 16 is third thin plate, 17 is fourth thin plate, 18 is fifth thin plate, 19 is plastic or insulating paper, 20 is new framework, 21 is extension portion, 22 is tooth portion of the stator iron core, 23 is inner groove, 24 is lining ring in the embodiment 4, and 25 is injection molding stator assembly in the embodiment 4.
DETAILED DESCRIPTION OF EMBODIMENTS
[0041] The technical solutions in embodiments of the disclosure are described clearly and completely below with reference to the accompanying drawings in the embodiments of the disclosure. Obviously, the described embodiments are merely a part of embodiments of the disclosure and not all the embodiments. Based on the embodiments of the present invention, all of other embodiments obtained by a person of ordinary skill in the art without any creative effort shall belong to the protection scope of the present invention.
[0042] Embodiment 1
[0043] An injection molding stepping motor provided by the present invention includes an injection molding stator assembly 1 and a rotor assembly, wherein the injection molding stator assembly 1 includes a stator iron core 2, a front framework 3, a rear framework 4, a stator winding 5, a front lining ring 6, a rear lining ring 7 and a mounting bracket 8, the stator winding 5 is wound in a groove of the stator iron core into which the front framework and the rear framework are inserted, the front lining ring 6 and the rear lining ring 7 are mounted on two sides of the stator iron core 2, the stator iron core 2 is fixed on the mounting bracket 8, and the front lining ring 6 and the rear lining ring 7 each adopts a structure which is formed by punching and laminating thin plates with different inner diameters, as shown in
[0044] The thin plates include a first thin plate 12 and a second thin plate 13 which have different inner diameters, and the first thin plate 12 and the second thin plate 13 are laminated for placing a retainer ring groove 14 for preventing a rotor from being removed. In order to avoid the magnetic flux leakage of the motor and improve the strength of the motor, the thin plate materials for punching the front lining ring and the rear lining ring of the motor are stainless steel.
[0045] Embodiment 2
[0046] As shown in
[0047] Preferably, the fifth thin plate 18 is a thin plate made of a non-magnetic-conductive material, and the third thin plate and 16 and the fourth thin plate 17 adopt iron plates. The laminating thickness of the fifth thin plate 18 is 1-2 mm. When a second steel sleeve 15 is mounted, the end of the non-magnetic-conductive material 18 is mounted on an inner side of the stator to be in contact with the stator iron core of the motor.
[0048] The mounting position of the lining ring is shown in
[0049] Embodiment 3
[0050] The front and rear lining rings adopt the lining ring in the embodiment 1 or the embodiment 2, but high-temperature resistant plastic or insulating paper 19 is added to one side of the injection molding stator assembly close to the stator iron core, as shown in the
[0051] Embodiment 4
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[0053] The assembling diagram of the stator iron core (the winding is not shown) and the framework is shown in
[0054] The assembling diagram of the assembling diagram of the stator iron core (the winding is not shown), the framework and the steel sleeve are shown in
[0055] The above merely describes specific embodiments of the present invention, but the protection scope of the disclosure is not limited thereto. Any person skilled in the art may easily conceive equivalent modifications or substitutions within the technical scope of the disclosure, and these modifications or substitutions shall fall within the protection scope of the disclosure. Therefore, the protection scope of the present invention should be determined with reference to the appended claims.