Motor and rotating shaft cooling device thereof
11581778 ยท 2023-02-14
Assignee
Inventors
- Mi-Ching Tsai (Tainan, TW)
- Shyy-Woei Chang (Kaohsiung, TW)
- Min-Fu Hsieh (Tainan, TW)
- Kai-Jung Shih (Tainan, TW)
- Wei-Ling Cai (Pingtung County, TW)
- Bi-Sheng Wei (Taichung, TW)
Cpc classification
International classification
H02K7/00
ELECTRICITY
Abstract
A motor and a rotating shaft cooling device thereof are disclosed. A rotating shaft of the motor is formed with an annular space. A shaft has a front end and a rear end. The shaft is a blind tube formed with a channel communicating with the annular space through a plurality of nozzles. The distance between the nozzles and the rear end is less than one-half of the length of the shaft. A cooling fluid flows through the nozzles to form a jet array to impinge on the inner wall of the rotating shaft to cool the rotating shaft, and flows back in the annular space to enhance the cooling effect, increase the heat exchange area, and improve the cooling effectiveness of the rotating shaft.
Claims
1. A motor rotating shaft cooling device, comprising: a shaft having a longitudinal axis and an outer wall extending between a front end and a rear end of the shaft, the shaft being configured as a blind tube formed with a channel, the shaft having a plurality of nozzles, a distance between the nozzles and the rear end being less than one-half of a length of the shaft, wherein an annular or spiral fin is formed on the outer wall of the shaft, the annular or spiral fin having a plurality of fin ribs each extending above the outer wall of the shaft at a predetermined axial attack angle relative the longitudinal axis of the shaft and having a predetermined height respective to the outer wall of the shaft, and wherein the predetermined axial attack angle between each fin rib and the longitudinal axis of the shaft ranges between 30 degrees and 90 degrees; a shaft seal, disposed at the front end of the shaft, the shaft seal being hollow and having an inlet communicating with the channel; and a cover, coupled to the shaft seal, the cover having an outlet.
2. The motor rotating shaft cooling device as claimed in claim 1, wherein the front end of the shaft has a transmission key.
3. The motor rotating shaft cooling device as claimed in claim 1, wherein the rear end of the shaft has a positioning guide wing.
4. The motor rotating shaft cooling device as claimed in claim 1, wherein each of the plurality of nozzles has a diameter ranging between 0.1 and 0.5 times a diameter of the shaft.
5. A motor, comprising: a housing; a rotating shaft disposed in the housing, the rotating shaft having an open end and a closed end to form an annular space therein, the annular space having a predetermined annular space width; a shaft disposed inside the rotating shaft, the shaft having a longitudinal axis and an outer wall extending between a front end and a rear end of the shaft, the shaft having a plurality of nozzles, the shaft being configured as a blind tube formed with a channel, the channel communicating with the annular space through the nozzles, a distance between the nozzles and the rear end being less than one-half of a length of the shaft, wherein an annular or spiral fin is formed on the outer wall of the shaft, the annular or spiral fin having a plurality of fin ribs each extending above the outer wall of the shaft at a predetermined axial attack angle relative the longitudinal axis of the shaft and having a predetermined height respective to the outer wall of the shaft, wherein the predetermined axial attack angle between each fin rib and the longitudinal axis of the shaft ranges between 30 degrees and 90 degrees, and wherein the predetermined height of said each fin rib ranges between 0.1 and 0.2 of said predetermined annular space width; a shaft seal, disposed at the front end of the shaft, the shaft seal being hollow and having an inlet communicating with the channel; and a cover coupled to the shaft seal and the housing, the cover having an outlet communicating with the annular space.
6. The motor as claimed in claim 5, wherein the front end of the shaft has a transmission key, the open end of the rotating shaft has a groove, and the transmission key of the shaft is engaged with the groove of the rotating shaft.
7. The motor as claimed in claim 5, wherein the rear end of the shaft has a positioning guide wing, and the shaft abuts against the rotating shaft through the positioning guide wing.
8. The motor as claimed in claim 5, wherein the annular or spiral fin is formed on the outer wall of the shaft or on an inner wall of the rotating shaft, wherein the annular or spiral fin is configured in a convex or concave form, and wherein an intercept of the annular or spiral fin ranges between 5 and 12 times of a hydraulic diameter of the annular space.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) 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.
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DESCRIPTION OF THE PREFERRED EMBODIMENTS
(14) Embodiments of the present invention will now be described, by way of example only, with reference to the accompanying drawings.
(15) As shown in
(16) The rotating shaft (2) is disposed in the housing (1). The rotating shaft (2) has an open end (21) and a closed end (22) to form an annular space (23) therein. The open end (21) has a groove (211).
(17) The shaft (3) is disposed inside the rotating shaft (2). The shaft (3) has a front end (31) and a rear end (32) corresponding to the open end (21) and the closed end (22), respectively. The front end (31) of the shaft (3) has a transmission key (311). The rear end (32) has a positioning guide wing (321). The shaft (3) has a plurality of nozzles (33) and an annular or spiral fin (34). The fin (34) may be in a convex or concave form. The shaft (3) is a blind tube formed with a channel (35). The channel (35) communicates with the annular space (23) through the nozzles (33). The distance between the nozzles (33) and the rear end (32) is less than one-half of the length of the shaft (3). The diameter and distribution of the nozzles (33) can be adjusted according to the heat load characteristics. The diameter of the nozzles (33) is between 0.1 and 0.5 times the diameter of the shaft (3). The spacing between the centers of every adjacent two of the nozzles (33) is between 12 mm and 19 mm. In an embodiment of the present invention, the diameter of the nozzles (33) is 3 mm. The spacing between the centers of every adjacent two of the nozzles (33) is 16 mm. In actual implementation, the closer to the rear end, the smaller the diameter of the nozzles (33). The axial attack angle between the fin (34) and the shaft (3) is between 30 degrees and 90 degrees. The intercept of the fin (34) is between 5 and 12 times the hydraulic diameter of the annular space (23). The height (H) of the intercept of the fin (34) is between 0.1 and 0.2 times the height of the annular space (23). It should be particularly noted that in the embodiment of the present invention, the nozzles (33) are only arranged in the directions of 0 degrees and 180 degrees of the cross section of the shaft (3). In actual implementation, the nozzles (33) may be provided at 90 degrees and 270 degrees, or the nozzles (33) may be provided at more angular locations. The fin (34) may be arranged on the outer wall of the shaft (3) or on the inner wall of the rotating shaft (2). The fin (34) may be integrally formed with the shaft (3) or the rotating shaft (2), or may be sleeved onto the shaft (3) like a spring. However, these implementations are not shown in the drawings, and only the specification is briefly described here.
(18) The shaft seal (4) is disposed at the front end (31) of the shaft (3). The shaft seal (4) is hollow and has an inlet (41) communicating with the channel (35).
(19) The cover (5) is coupled to the shaft seal (4) and the housing (1). The cover (5) has an outlet (51) communicating with the annular space (23). With the motor rotating shaft cooling device whose inlet (41) and outlet (51) are both on the same side, it can cooperate with the rotating shaft (2) whose one end is the open end (21) and the other end is the closed end (22). There is no need to replace the rotating shaft (2), which is convenient for immediate implementation.
(20) Referring to
(21) Referring to
(22) Referring to
(23) When the rotating shaft (2) rotates, the shaft (3) will rotates along with the rotating shaft (2) because the transmission key (311) of the shaft (3) is engaged with the groove (211) of the rotating shaft (2), so that the cooling fluid is impelled, thereby assisting the cooling fluid to flow around the shaft (3) and ensuring that the rotating shaft (2) can evenly dissipate heat. The cooling fluid flows around the shaft (3) along the spiral direction of the fin (34) to produce a pumping action, which can further improve the cooling effect of the cooling fluid on the rotating shaft (2). In actual implementation, the shaft (3) with more turns of the fins (34) can be selected to further enhance the cooling effect of the cooling fluid.
(24) Please refer to
(25) Please refer to
(26) TABLE-US-00001 TABLE 1 Simulation parameters and results Ex. 1 Ex. 2 Ex. 3 Ex. 4 Ex. 5 Ex. 6 RE 10000 10000 10000 20000 20000 20000 T.sub.w 319.14 315.96 314.29 307.42 305.44 304.58 T.sub.in 293 293 293 293 293 293 T.sub.out 297.81 297.66 297.49 295.25 295.18 295.17 T.sub.f 293 293 293 293 293 293 heat flux 50000 50000 50000 50000 50000 50000 heat transfer 0.6034 0.6034 0.6034 0.6034 0.6034 0.6034 coefficient hydraulic 0.015 0.015 0.015 0.015 0.015 0.015 diameter Nusselt 47.54164 54.12165 58.38057 86.20856 99.90601 107.3452 number Relative 100% 113.84% 122.8% 100% 115.9% 124.52% proportion
(27) Please refer to
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(29) Whether RE=10000 and the flow rate of the cooling fluid is small, or RE=20000 and the flow rate of the cooling fluid is large, it can be seen that the present invention does have the advantage of improving the cooling effect of the cooling fluid on the rotating shaft (2).
(30) Although particular embodiments of the present invention have been described in detail for purposes of illustration, various modifications and enhancements may be made without departing from the spirit and scope of the present invention. Accordingly, the present invention is not to be limited except as by the appended claims.