Motor operating module
11598411 ยท 2023-03-07
Assignee
Inventors
Cpc classification
F16H57/0476
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H1/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2057/02043
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2057/02034
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H57/0495
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H57/0457
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02K9/19
ELECTRICITY
F16H57/0412
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16H57/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02K5/04
ELECTRICITY
H02K9/19
ELECTRICITY
Abstract
A motor operating module includes a motor including a rotor and a stator, a gear unit provided on one side of the motor, and being configured to receive torque of the rotor and to transmit the torque to outside, and a housing configured to accommodate the motor and the gear unit in an inner space including a front space formed on a first side, a rear space formed on a second side opposite to the first side, and rear-facing connection flow paths extending from the front space toward the rear space to provide a path for a cooling fluid to flow, such that a motor may be cooled by using a churning effect of an oil caused by rotation of a gear without a separate operating device such as a pump.
Claims
1. A motor operating module comprising: a motor comprising a rotor and a stator; a gear unit provided on one side of the motor, and being configured to receive torque of the rotor and to transmit the torque to outside; and a housing configured to accommodate the motor and the gear unit in an inner space, wherein the inner space of the housing comprises: a front space formed on a first side of the motor; a rear space formed on a second side of the motor opposite to the first side; rear-facing connection flow paths extending from the front space toward the rear space and providing a path for a cooling fluid to flow; and the cooling fluid is churned by the rotation of the gear unit to flow from a lower region of the housing into the rear space via the rear-facing connection flow paths, wherein the gear unit comprises: an input gear coupled to the motor; an output gear configured to receive the torque of the rotor from the input gear; and a transmission gear engaging with the input gear and the output gear and being configured to transmit the torque of the rotor from the input gear to the output gear, wherein the cooling fluid is churned by the rotation of the output gear and flows into the rear space via the rear-facing connection flow paths, and wherein each of the rear-facing connection flow paths comprises: a first rear-facing connection flow path formed in an outer region of the input gear that faces an outer surface of the housing, and a second rear-facing connection flow path formed between the output gear and the transmission gear.
2. The motor operating module of claim 1, wherein one of a portion of the first rear-facing connection flow path or a portion of the second rear-facing connection flow path comprises a section inclined downward toward the rear space.
3. The motor operating module of claim 1, wherein one of a portion of the first rear-facing connection flow path or a portion of the second rear-facing connection flow path comprises a section facing the outer surface of the housing.
4. The motor operating module of claim 1, wherein the rear space communicates with the stator, and the cooling fluid flows into the stator.
5. The motor operating module of claim 4, wherein the cooling fluid flows into a lower region of the stator.
6. The motor operating module of claim 1, wherein the inner space of the housing further comprises a stator-facing connection flow path that extends from the front space toward the stator and provides a path through which the cooling fluid flows, and wherein the cooling fluid in the lower region of the housing is churned by the rotation of the gear unit and flows into the front space, and into the stator via the stator-facing connection flow path.
7. The motor operating module of claim 6, wherein the stator-facing connection flow path comprises a first stator-facing connection flow path formed in a region of the transmission gear on an opposite side from a region facing the output gear.
8. The motor operating module of claim 7, wherein the stator-facing connection flow path further comprises a second stator-facing connection flow path formed in a region of the input gear on the opposite side from a region facing the transmission gear.
9. The motor operating module of claim 8, wherein the first stator-facing connection flow path is formed above the second stator-facing connection flow path.
10. The motor operating module of claim 9, wherein the cooling fluid flows from the front space into the first stator-facing connection flow path and into an upper region of the stator.
11. The motor operating module of claim 9, wherein the cooling fluid flows from the front space into the second stator-facing connection flow path and into a lower region of the stator.
12. The motor operating module of claim 1, wherein a plurality of stator-facing connection flow paths are provided in the inner space of the housing.
13. The motor operating module of claim 12, wherein the plurality of stator-facing connection flow paths comprise a plurality of first stator-facing connection flow paths that are formed along a circumferential direction of the transmission gear.
14. The motor operating module of claim 13, wherein the plurality of stator-facing connection flow paths comprise a plurality of second stator-facing connection flow paths that are formed along a circumferential direction of the input gear.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The accompanying drawings, which are included to provide a further understanding of the invention and are incorporated in and constitute a part of this specification, illustrate embodiments of the invention, and together with the description serve to explain the principles of the invention.
(2)
(3)
(4)
(5)
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(8)
DETAILED DESCRIPTION
(9) Hereinafter, a structure of a motor operating module and a flow passage of a cooling fluid within the motor operating module according to the present disclosure will be described with reference to the drawings. For reference, dashed-line arrows illustrated in the drawings indicate flow passages of a cooling fluid within the motor operating module according to the present disclosure.
(10) Motor Operating Module
(11)
(12) The motor operating module according to the present disclosure may be a component which is mounted to an automobile and provides a driving force to the automobile. However, the motor operating module according to the present disclosure is not limited to the automobile and may be mounted to various types of devices.
(13) As illustrated in
(14) Here, the motor operating module according to the present disclosure may further include a gear unit 300 which is provided on one side of the motor 100 and receives torque of the rotor 110 and transmits the torque to the outside. Also, the motor operating module according to the present disclosure may include a housing 400 having an inner space and accommodating the motor 100 and the gear unit 300. As described later, the housing 400 may be a component not only for accommodating the motor 100 and the gear unit 300, but also for forming a space and flow paths through which a cooling fluid for cooling the motor 100 flows.
(15) More specifically, the inner space of the housing 400 may include: a front space 410 formed on one side of the motor 100; and a rear space 420 formed on the other side of the motor 100. Referring to
(16) Also, the structure and function of the gear unit 300 will be described later with reference to another drawing.
(17) Continuing to refer to
(18)
(19) Referring to
(20) Referring to
(21) Also, according to the present disclosure, a plurality of rear-facing connection flow paths 430 may be provided in the housing 400. Thus, the cooling fluid, which is present in the lower region of the housing 400, is churned by the rotation of the gear unit 300, more specifically, by the rotation of the output gear 320. Then, the cooling fluid may flow into the rear space 420 via the plurality of rear-facing connection flow paths 430.
(22) Referring to
(23) As described above, when the output gear 320 rotates and conveys the cooling fluid to the upper region of the housing 400 along the outer surface of the housing 400, a portion of the conveyed cooling fluid falls down after going through an upper region of the transmission gear 330. Here, the cooling fluid falling down after going through the upper region of the transmission gear 330 may flow into the first rear-facing connection flow path 432.
(24) Here, when the output gear 320 rotates in a counter-clockwise direction as illustrated in
(25)
(26) As illustrated in
(27) As described above, when some regions of the rear-facing connection flow paths 432 and 434 are adjacent to the outer surface of the housing 400, the cooling fluid may smoothly exchange heat with the outside of the housing 400 while flowing through the rear-facing connection flow paths 432 and 434. Thus, the temperature of the cooling fluid, which flows into the rear space 420 through the rear-facing connection flow paths 432 and 434, falls, and thus, the cooling efficiency of the motor operating module through the cooling fluid may be enhanced.
(28) Also, according to the present disclosure, a section inclined downward toward the rear space 420 (in the direction in which the cooling fluid flows) may be formed in at least a portion of the first rear-facing connection flow path 432 or the second rear-facing connection flow path 434 so that the cooling fluid may efficiently flow into the rear space 420 through the rear-facing connection flow paths 432 and 434. More preferably, the downward inclined sections may be formed in all of the first rear-facing connection flow path 432 and the second rear-facing connection flow path 434.
(29)
(30) As illustrated in
(31) Here, according to the present disclosure, the rear space 420 may communicate with the stator 120 provided in the motor 100. Thus, the cooling fluid, which has flowed into the rear space 420, may flow into the stator 120. For example, the cooling fluid, which has flowed into the rear space 420, may flow into the stator 120 by gravity.
(32) Also, as illustrated in
(33) In addition to the flow paths described above, flow paths through which the cooling fluid flows may be formed in the motor operating module. Generally, the cooling fluids cool internal components of the motor operating module while falling from the upper region of the motor operating module toward the lower region thereof. Here, the cooling fluid rises in temperature due to the heat exchange while falling from the upper region of the motor operating module toward the lower region thereof, and thus, the cooling efficiency through the cooling fluid is reduced gradually toward the lower region of the motor operating module. This is also true with respect to the upper region and the lower region of the stator provided in the motor.
(34) However, when the cooling fluid, which has flowed into the rear space 420, flows directly into the lower region of the stator 120 as in the present disclosure, at least a portion of the cooling fluid flows into the lower region of the stator 120 without going through the upper region of the stator 120. Thus, the lower region of the stator 120 may be cooled effectively. In particular, taking into consideration the characteristics of the motor, a coil provided in the stator has the highest temperature in the motor. Thus, the coil provided in the lower region of the stator 120 may be cooled effectively.
(35) Here, referring to
(36) According to the present disclosure, the cooling fluid, which is present in the lower region of the housing 400, is churned by the rotation of the gear unit 300, more specifically, by the rotation of the output gear 320. Subsequently, the cooling fluid flows into the front space 410 and then may flow into the stator 120 via the stator-facing connection flow path 440.
(37) Also, a plurality of stator-facing connection flow paths 440 may be provided. For example, as illustrated in
(38) Also, a plurality of first stator-facing connection flow paths 442 and a plurality of second stator-facing connection flow paths 444 may be provided. For example, as illustrated in
(39) Continuing to refer to
(40) More specifically, the cooling fluid, which has flowed from the front space 410 into the first stator-facing connection flow path 442, may flow into the upper region of the stator 120, thereby cooling the upper region of the stator 120. Furthermore, the cooling fluid may flow into the lower region of the stator 120 by the rotation of the rotor 110 after flowing into the upper region of the stator 120, thereby also cooling the lower region (in particular, a coil provided in the lower region of the stator 120) of the stator 120. Also, the cooling fluid, which has flowed from the front space 410 into the second stator-facing connection flow path 444, may flow into the lower region of the stator 120, thereby cooling the lower region (more preferably, the coil provided in the lower region of the stator 120) of the stator 120.
(41) According to the present disclosure, the fluid for cooling is allowed to circulate around the motor and the surroundings thereof without a separate pump, and thus, the cooling function to the motor may be performed without a separate pump.
(42) Also, according to the present disclosure, the amount of the oil for cooling that does not properly contribute to the cooling during the circulation of the oil is minimized, and thus, the cooling efficiency of the motor may be improved.
(43) Also, the present disclosure provides for minimizing an amount of an oil for cooling that does not properly contribute to cooling during circulation of the oil, thereby improving cooling efficiency of the motor.
(44) Although the present disclosure has been described with specific exemplary embodiments and drawings, the present disclosure is not limited thereto, and it is obvious that various changes and modifications may be made by a person skilled in the art to which the present disclosure pertains within the technical idea of the present disclosure and equivalent scope of the appended claims.