AIR COMPRESSOR FOR VEHICLE
20220403854 · 2022-12-22
Inventors
- Gun Woong PARK (Daejeon, KR)
- Chi Yong PARK (Daejeon, KR)
- Jong Sung LEE (Daejeon, KR)
- Kyu Sung CHOI (Daejeon, KR)
Cpc classification
F04D29/4206
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D17/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/582
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C17/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/5806
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D25/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C17/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2362/52
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C37/002
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C32/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/057
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/063
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C37/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04D29/58
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D25/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/057
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/063
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/42
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C32/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
Air compressor for a vehicle having improved internal cooling efficiency by ensuring a circulation flow of compressed air for internal cooling and allowing the compressed air to sufficiently flow. The air compressor comprises: a housing with a compression unit for introducing and compressing air from outside; a motor unit which includes a rotor and a stator, and drives the compression unit to rotate according to the rotation of the rotor; a bearing unit supporting the rotor to be rotatable; a cooling circulation flow path formed inside the housing for moving, in an axial direction, some of the air compressed in the compression unit and circulating the air to the compression unit; and a bypass flow path which receives some of the air passing through the cooling circulation flow path and bypasses a partial region of the bearing unit to join the cooling circulation flow path.
Claims
1. An air compressor for a vehicle, comprising: a compression portion disposed on one side of a rotor to generate compressed air by compressing air which flows therein; a bearing portion configured to support the rotor in a front-rear direction; a cooling circulation flow path configured to allow the compressed air discharged from the compression portion to flow in the bearing portion to cool the bearing portion; and a bypass flow path configured to allow the compressed air to bypass at least a part of the bearing portion.
2. The air compressor of claim 1, wherein the cooling circulation flow path and the bypass flow path diverge in front of the bearing portion or at a point where the bearing portion is disposed and join behind the bearing portion.
3. The air compressor of claim 2, wherein some of the joining compressed air is discharged outward.
4. The air compressor of claim 2, wherein at least some of the joining compressed air is supplied to the compression portion through the cooling circulation flow path.
5. The air compressor of claim 1, further comprising a housing configured to accommodate the compression portion, the bearing portion, the cooling circulation flow path, and the bypass flow path.
6. The air compressor of claim 5, wherein the housing comprises a rear cover disposed behind the rotor.
7. The air compressor of claim 6, wherein the rear cover is a plastic material.
8. The air compressor according to claim 6, wherein the rear cover comprises at least one discharge hole formed to extend rearward, and wherein the compressed air is discharged through the discharge hole.
9. The air compressor of claim 1, wherein the rotor comprises: a rotating shaft coupled to the compression portion; a rotor part coupled to an outer circumferential surface of the rotating shaft; and a rotor disk formed on a rear side of the rotor part.
10. The air compressor of claim 9, wherein the bearing portion comprises a front air foil bearing and a rear air foil bearing which support a front surface and a rear surface of the rotor disk, respectively.
11. The air compressor of claim 6, wherein the cooling circulation flow path comprises: a cooling flow path disposed outside the rotor to move some of the air compressed by the compression portion from the front to the rear; and a circulation flow path disposed inside the rotor to circulate and supply the air moved from the cooling flow path to the compression portion.
12. The air compressor of claim 11, wherein the cooling circulation flow path further comprises a chamber disposed between the cooling flow path and the circulation flow path.
13. The air compressor of claim 12, wherein the bypass flow path joins the chamber.
14. The air compressor of claim 13, wherein the chamber has a width greater than a width of the cooling flow path or the bypass flow path.
15. The air compressor of claim 14, wherein rotating air which rotates in one direction is formed in the chamber while the rotating air rotates in a direction from an outlet of the bypass flow path to an inlet of the circulation flow path.
16. The air compressor of claim 15, wherein the compressed air which flows into the chamber from the bypass flow path is transferred to the rear of the chamber due to a flow of the rotating air.
17. The air compressor of claim 16, wherein the bypass flow path comes closer to the rotor in a direction toward the chamber.
18. The air compressor according to claim 17, wherein the chamber is disposed in the internal of rear cover.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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BEST MODE FOR INVENTION
[0041] Hereinafter, an exemplary embodiment of the present invention will be described in detail with reference to the drawings.
[0042] However, the technical concept of the present invention is not limited to the embodiments described below and can be implemented in a variety of different forms. One or more components of the embodiments may be selectively combined or substituted with one another without departing from the technical concept of the present invention.
[0043] Also, unless particularly defined otherwise, the terms used herein (including technical or scientific terms) may have the same meanings generally understood by those of ordinary skill in the art. Generally used terms such as terms defined in dictionaries may be construed in consideration of the contextual meanings of the related art.
[0044] Also, terms used herein are intended to explain the embodiments but not to restrict the present invention.
[0045] Throughout the specification, the singular forms include the plural forms as well unless the context clearly indicates otherwise. When at least one (or one or more) of A, B, and C is described, this may include one or more of all combinations of A, B, and C.
[0046] Also, in describing components of the embodiments of the present invention, the terms such as first, second, A, B, (a), (b), and the like may be used.
[0047] These terms are merely for distinguishing one element from another, and the essential, order, sequence, and the like of corresponding elements are not limited by the terms.
[0048] Also, when it is stated that one element is “connected,” “coupled,” or “joined” to another, the element may not only be directly connected, coupled, or joined to the other element but may also be connected, coupled, or joined to the other element with another intervening element.
[0049] Also, when it is stated that an element is formed or disposed “above (on) or below (beneath)” another element, the two elements may not only come into direct contact with each other but one or more other elements may also be formed or disposed between the two elements. Also, being “above (on) or below (beneath)” may include not only being in an upward direction but also being in a downward direction on the basis of one element.
[0050] Hereinafter, an air compressor for a vehicle according to one embodiment of the present invention will be described with reference to
[0051]
[0052] Referring to
[0053] The housing 100 forms an exterior. The housing 100 accommodates the compression portion 200, the driving portion 300, the bearing portion 400, the cooling circulation flow path 500, and the bypass flow path 600 in an internal space thereof. Here, the housing 100 may include an impeller housing 110, a driving housing 120, and a rear cover 130.
[0054] The impeller housing 110 may include an inlet 111 and an outlet 112. Also, the compression portion 200 is disposed in an internal space of the impeller housing 110. Here, air flowing in through the inlet 111 is compressed by the compression portion 200 and discharged outward through the outlet 112. Here, some of the compressed air is supplied to the cooling circulation flow path 500 which will be described below.
[0055] The driving housing 120 is connected to a rear end of the impeller housing 110. Here, rearward is a direction toward the driving portion 300 and forward is a direction opposite to the rear on the basis of the compression portion 200. Here, the driving portion 300 is disposed in an internal space of the driving housing 120. Also, the cooling circulation flow path 500 is formed inside the driving housing 120.
[0056] The rear cover 130 is connected to a rear end of the driving housing 120. Here, a chamber 530 which will be described below may be disposed in an internal space of the rear cover 130. The rear cover 130 may be a plastic material.
[0057] Here, the rear cover 130 may include a discharge hole (not shown) that opens toward a rear side of the air compressor.
[0058] The compression portion 200 is disposed in the internal space of the impeller housing 110 and compresses air flowing in through the inlet 111. The compression portion 200 may include a blower 210 and an impeller 220.
[0059] The blower 210 is connected to the inlet 111 and has a shape having a gradually reduced cross section to compress air which has flowed therein.
[0060] The impeller 220 may be disposed between the inlet 111 and the blower 210. Here, the impeller 220 may transfer the air which has flowed in through the inlet 111 toward the blower 210.
[0061] That is, the air which has flowed in through the inlet 111 may be transferred to the blower 210 by the impeller 220 and compressed while passing through the blower 210 having the gradually reduced cross section to generate compressed air. Here, some of the compressed air flows through the cooling circulation flow path 500. Here, the compressed air may perform a function of cooling the inside of the air compressor.
[0062] The driving portion 300 is disposed in the internal space of the driving housing 120 and provides the compression portion 200 with a driving force. Here, the driving portion 300 may include a rotor 310 and a stator 320.
[0063] The rotor 310 has one side connected to the compression portion 200 and rotates the compression portion 200 while rotating. Here, the rotor 310 may include a rotating shaft 311, a rotor part 312, and a rotor disk 313.
[0064] The rotating shaft 311 is coupled to and drives the impeller 230 to rotate.
[0065] The rotor part 312 is coupled to an outer circumferential surface of the rotating shaft 311. Here, when external electric power is supplied, the rotor part 312 generates torque due to an electromagnetic interaction with the stator 320. Here, referring to
[0066] The rotor disk 313 is connected to one side of the rotor part 312. A radial length of the rotor disk 313 may be greater than that of the rotor part 312. Here, heat is concentrated on both sides of the rotor disk 313 and on air which comes into contact with both sides of the rotor disk 313.
[0067] The stator 320 is disposed outside the rotor 310 and is fixedly installed on an inner circumferential surface of the driving housing 120. Here, outward is a direction toward the housing 100 on the basis of the rotating shaft 311 and inward is a direction opposite the outside.
[0068] Meanwhile, although not shown in the drawing, the driving portion may be provided as a clutch (not shown) and may receive a driving force of an engine of a vehicle to operate. The driving portion may include a pulley (not shown), a disk assembly (not shown), a coil assembly (not shown), and the like. Here, the pulley is connected to the engine of the vehicle by a driving belt (not shown), and the driving belt may be installed on an outer circumferential surface of the pulley and may transfer power of the engine of the vehicle to the pulley. Also, the disk assembly may be coupled to a driving shaft (not shown) and may transfer the power of the engine of the vehicle which is transferred from the pulley to the driving shaft. Here, the driving shaft functions as the rotating shaft 311 and is coupled to the impeller 340 to drive the impeller 340 to rotate.
[0069] The bearing portion 400 rotatably supports the rotor 310. Here, the bearing portion 400 may include front and rear journal bearings 410 and 420 and front and rear air foil bearings 430 and 440.
[0070] The front and rear journal bearings 410 and 420 are disposed on both ends of an outer circumferential surface of the rotor part 312 and support the rotor part 312 to smoothly rotate inside the driving housing 120.
[0071] The front and rear air foil bearings 430 and 440 are disposed on a front surface and a rear surface of the rotor disk 313 and support rotation of the rotor disk 313 in an axial direction. Here, referring to
[0072] Referring to
[0073] The cooling flow path 510 may be disposed outside the rotor 310. Here, the cooling flow path 510 may be formed by a space between the driving housing 120 and the driving portion 300. The cooling flow path 510 may move some of the air compressed by the compression portion 200 from the front to the rear.
[0074]
[0075] Referring to
[0076] The first cooling flow path 511 surrounds an outer surface of the rotor part 312 and the front and rear journal bearings 410 and 420 and passes the compressed air to cool heat generated at the rotor part 312, the front and rear journal bearings 410 and 420, and the stator 320.
[0077] Also, the second cooling flow path 512 surrounds an outer surface of the rotor disk 313 and outer surfaces of the front and rear air foil bearings 430 and 440 and passes the compressed air to cool heat generated at the rotor disk 313 and the front and rear air foil bearings 430 and 440.
[0078] Referring to
[0079] The first area 5121 surrounds the front surface of the rotor disk 313 and the front air foil bearing 430 and cools heat generated on the front surface of the rotor disk 313 and the front air foil bearing 430.
[0080] The second area 5122 surrounds a side surface of the rotor disk 313 and cools heat generated on the side surface of the rotor disk 313.
[0081] The third area 5123 surrounds the rear surface of the rotor disk 313 and the rear air foil bearing 440 and cools heat generated on the rear surface of the rotor disk 313 and the rear air foil bearing 440.
[0082] Also, the cooling flow path 510 may further include a third cooling flow path 513 configured to bypass the rear journal bearing 420 and connect the first cooling flow path 511 to the second cooling flow path 512.
[0083] The circulation flow path 520 may be disposed inside the rotor 310. The circulation flow path 520 may be formed by a hollow of the rotating shaft 311. The circulation flow path 520 may be connected to a rear end of the cooling flow path 510 and may receive and circulate air moved from the cooling flow path 510 to supply the air to the inlet 111.
[0084] Also, the cooling circulation flow path 500 may further include the chamber 530 connected between the cooling flow path 510 and the circulation flow path 520.
[0085] The chamber 530 transfers the air moved from the cooling flow path 510 to the circulation flow path 520. Here, air turbulence may occur in the chamber 530.
[0086] On the other hand, the compressed air joining from the cooling flow path 510 and the bypass flow path 600 may be discharged rearward from the air compressor through the discharge hole of the rear cover 130.
[0087] The bypass flow path 600 receives some of the air passing through the cooling circulation flow path 500 and allows the air to bypass a part of the bearing portion 400 and to join the cooling circulation flow path 500.
[0088] The cooling circulation flow path 500 and the bypass flow path 600 may diverge in front of the bearing portion 400 or at a point at which the bearing portion 400 is disposed. Here, the cooling circulation flow path 500 and the bypass flow path 600 may join each other behind the bearing portion 400.
[0089] Here, the cooling circulation flow path 500 and the bypass flow path 600 may diverge between the front air foil bearing 430 and the rear air foil bearing 440.
[0090] In more detail, the bypass flow path 600 may diverge from the second area 5122. Here, referring to
[0091] The bypass flow path 600 may increase a circulation flow rate of the cooling air in the compressor and relieve a phenomenon in which an air flow is delayed in a section near the air foil bearings to facilitate circulation of the compressed air therein and increase internal cooling efficiency.
[0092] Also, the bypass flow path 600 may join the chamber 530. Here, the bypass flow path 600 may come closer to the rotor 310 in a direction toward the chamber 530.
[0093] Here, a connection point of the chamber 530 and the bypass flow path 600 may be spaced further apart from the rotor 310 than a connection point of the chamber 530 and the cooling flow path 510. Also, the chamber 530 may have a width greater than a width of the cooling flow path 510 or the bypass flow path 600.
[0094] Here, referring to
[0095] With this configuration, the air which rotates in the chamber 510 can facilitate an air flow at the connection points of the cooling flow path 510, the circulation flow path 520, and the bypass flow path 600 and increases heat exchange efficiency of the compressed air near the bearings to improve cooling efficiency of the air compressor.
[0096] Although an exemplary embodiment of the present invention has been described above, it may be understood by those skilled in the art that a variety of modifications and changes of the present invention may be made without departing from the concept and scope of the present invention which are disclosed in the following claims.
DESCRIPTION OF REFERENCE NUMERALS
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TABLE-US-00001 100: housing 110: impeller housing 120: driving housing 130: rear cover 200: compression portion 210: blower 220: impeller 300: driving portion 310: rotor 311: rotating shaft 312: rotor part 313: rotor disk 320: stator 400: bearing portion 410: front journal bearing 420: rear journal bearing 430: front air foil bearing 440: rear air foil bearing 500: cooling circulation flow path 510: cooling flow path 511: first cooling flow path 512: second cooling flow path 513: third cooling flow path 520: circulation flow path 530: chamber 600: bypass flow path