END COIL COOLING STRUCTURE FOR AN INDUCTION MOTOR
20230170764 · 2023-06-01
Assignee
- Hyundai Motor Company (Seoul, KR)
- Kia Corporation (Seoul, KR)
- IUCF-HYU (INDUSTRY-UNIVERSITY COOPERATION FOUNDATION HANYANG UNIVERSITY) (Seoul, KR)
Inventors
- Jin Ho Choi (Suwon-si, KR)
- Sang Jin PARK (Hwaseong-si, KR)
- Soo Hwan Park (Seoul, KR)
- Kyoung Soo Cha (Seoul, KR)
- Jae Hyun Kim (Seoul, KR)
- Myung Seop LIM (Seoul, KR)
- Sung Woo Hwang (Seoul, KR)
Cpc classification
H02K9/197
ELECTRICITY
H02K7/00
ELECTRICITY
H02K9/22
ELECTRICITY
International classification
H02K9/22
ELECTRICITY
Abstract
An end coil cooling structure includes: a shielding member which is disposed within a motor housing, surrounds an area where an end coil is disposed, and forms an enclosed space; and a plurality of heat conducting particles disposed to fill the enclosed space and to come into contact with the end coil.
Claims
1. An end coil cooling structure comprising: a shielding member within a motor housing and configured to: surround an area where an end coil is disposed, and form an enclosed space; and a plurality of heat conducting particles disposed to fill the enclosed space and configured to come into contact with the end coil.
2. The end coil cooling structure of claim 1, wherein the heat conducting particles are alumina ceramics or aluminum nitride (AIN).
3. The end coil cooling structure of claim 1, wherein the heat conducting particles have a spherical shape.
4. The end coil cooling structure of claim 1, wherein the heat conducting particles have monodispersity in size.
5. The end coil cooling structure of claim 1, wherein the heat conducting particles are configured to have a size to be movable while filling the area, and further configured to bear thermal deformation of the end coil.
6. The end coil cooling structure of claim 1, wherein the heat conducting particles do not fully fill the enclosed space but leave part of the enclosed space empty, so as to bear thermal deformation of the end coil.
7. The end coil cooling structure of claim 1, further comprising a refrigerant that fills the enclosed space and gaps between the heat conducting particles.
8. The end coil cooling structure of claim 7, wherein the refrigerant comprises a lubricant component to inhibit breakage due to wear of the heat conducting particles.
9. The end coil cooling structure of claim 1, wherein: the motor housing comprises an inlet and an outlet formed to provide a fluid connection to the enclosed space so as to circulate refrigerant, a cooling apparatus in fluid communication with the inlet and the oulet is disposed on an outside of the motor housing, and the cooling apparatus is configured to release heat after the refrigerant moves through the enclosed space.
10. The end coil cooling structure of claim 9, wherein the refrigerant penetrates and flows through an inside of a stator core.
11. The end coil cooling structure of claim 1, further comprising: a refrigerant pipe disposed in the enclosed space and configured to provide a fluid connection to a cooling apparatus disposed on an outside of the motor housing.
12. The end coil cooling structure of claim 11, wherein the refrigerant pipe is configured to penetrate an inside of a stator core.
13. The end coil cooling structure of claim 11, wherein at least part of the refrigerant pipe is configured to come into direct contact with the end coil and to bear thermal deformation of the end coil.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0013] The patent or application file contains at least one drawing executed in color. Copies of this patent or patent application publication with color drawing(s) will be provided by the Office upon request and payment of the necessary fee.
[0014] In order that the disclosure may be well understood, there will now be described various forms thereof, given by way of example, reference being made to the accompanying drawings, in which:
[0015]
[0016]
[0017]
[0018]
[0019]
[0020] The drawings described herein are for illustration purposes only and are not intended to limit the scope of the present disclosure in any way.
DETAILED DESCRIPTION
[0021] Some embodiments of the present disclosure are described below with reference to the accompanying drawings. In the following description, like reference numerals preferably designate like elements, although the elements are shown in different drawings. Further, in the following description of some embodiments, a detailed description of known functions and configurations incorporated herein are omitted for the purpose of clarity and for brevity.
[0022] Additionally, alphanumeric codes such as first, second, i), ii), a), b), etc., in numbering components are used solely for the purpose of differentiating one component from the other but not to imply or suggest the substances, the order, or sequence of the components. Throughout this specification, when parts “include” or “comprise” a component, they are meant to further include other components, not excluding thereof unless there is a particular description contrary thereto.
[0023] When a component, device, element, or the like of the present disclosure is described as having a purpose or performing an operation, function, or the like, the component, device, or element should be considered herein as being “configured to” meet that purpose or to perform that operation or function.
[0024]
[0025] Referring to
[0026] Referring back to
[0027] One of the key performance factors for a driving motor for a vehicle is the motor’s power-to-weight ratio. To increase this ratio, improvements are being made to the performance of power control devices to allow for higher currents and temperatures. Thus, when a higher current is supplied to a stator winding, the motor generates more heat. Excessive heat generation from the end coil 100 lowers the performance and durability of the motor.
[0028] The end coil cooling structure 20 according to an embodiment uses the heat conducting particles 200 in order to release heat from the end coil 100 by heat conduction.
[0029] The heat conducting particles 200 may be a non-conductive and non-magnetic material. As the heat conducting particles 200, alumina ceramics having a thermal conductivity of 16-29 W/m.Math.K, aluminum nitride (AIN) having a thermal conductivity of 90-170 W/m.Math.K, and the like may be used which are advantageous for heat transfer as compared with the fact that the thermal conductivity of air is 0.025 W/m.Math.K. Besides, any material that is easy to mold into a proper size and has a high thermal conductivity may be used for the end coil cooling structure according to an embodiment.
[0030] The heat conducting particles 200 may be spherical particles. The heat conducting particles 200 may have a size enough to move themselves as needed within the area 150 filled with the heat conducting particles 200. That is, the heat conducting particles 200 may have such a size that the heat conducting particles 200 filling the area 150 can be easily varied in shape, so as to bear thermal deformation of the end coil 100. To this end, the heat conducting particles 200 may have monodispersity with size variations within a certain range.
[0031] The heat conducting particles 200 may have polydispersity if they are only intended to facilitate heat release by heat transfer while filling the vicinity of the end coil by contact with the end coil. In other words, if the area 150 is packed with both large-diameter particles and small-diameter particles which can properly fill the gaps between the large-diameter particles, the contact area may be maximized to bring advantage for the heat transfer by heat conduction. However, the end coil cooling structure 20 according to an embodiment is constructed to bear thermal expansion of the end coil 100 and avoid mechanical stress on the end coil 100 despite changes in the size and/or shape of the end coil 100 resulting from frequent heating and cooling of the motor. Accordingly, although the heat transfer efficiency may be slightly lower, the heat conducting particles 200 may have monodispersity in order to allow for free deformation and/or movement of the heat conducting particles 200.
[0032]
[0033] Referring to
[0034] The refrigerant also may act as lubricant between the heat conducting particles 200 in physical contact with each other, such that particle breakage or particulate fallout caused by collision between the heat conducting particles 200 can be avoided. To this end, the refrigerant according to an embodiment may further include a predetermined lubricant component. Also, the heat conducting particles 200 may be made nearly spherical in order to reduce or minimize wear.
[0035]
[0036] Referring to
[0037] In the example illustrated in
[0038] In the third embodiment, the heat conducting particles 200 may be large enough to facilitate the movement of the refrigerant. In other words, the heat conducting particles 200 may have a size that can provide gaps sufficient for the movement of the refrigerant while filing the area 150.
[0039]
[0040] The end coil cooling structure 26 according to the fourth embodiment shows an example of having a refrigerant pipe 250 to inhibit or prevent refrigerant leakage.
[0041] Referring to
[0042] At least part of the refrigerant pipe 250 may be configured to come into direct contact with the end coil 100. Also, the refrigerant pipe 250 may be a structure and/or material that causes a portion contacting the end coil 100 to be elastically deformed so as to bear thermal deformation of the end coil 100. However, the refrigerant pipe 250 is not limited to such a structure and/or material, and the refrigerant pipe 250 and the end coil 100 may be configured to have the heat conducting particles 200 fill the space between them without contacting each other.
[0043] On the other hand, the area 150 may be fully filled with the heat conducting particles 200, or, in some cases, part of the area 150 may remain empty without them. The pattern in which the heat conducting particles 200 fill the area 150 may be frequently changed due to vibrations accompanying motor rotation and vehicle driving. Accordingly, the heat conducting particles 200 may constantly bind tightly around the end coil.
[0044] Meanwhile, in the end coil cooling structure 20, 22, 24, and 26 according to the embodiments of the present disclosure, the heat conducting particles 200 only serve to fill the area 150 but they do not bind to one another, which is an advantage when it comes to the maintenance and repair of motors and recycling materials from waste motors.
[0045] Although exemplary embodiments of the present disclosure have been described for illustrative purposes, those having ordinary skill in the art will appreciate that various modifications, additions, and substitutions are possible, without departing from the idea and scope of the present disclosure. Therefore, embodiments of the present disclosure have been described for the sake of brevity and clarity. The scope of the technical idea of the present embodiments is not limited by the illustrations. Accordingly, one of ordinary skill in the art would understand that the scope of the present disclosure is not to be limited by the above explicitly described embodiments but should include equivalents thereof.