ELECTRIC MACHINE
20220294304 · 2022-09-15
Inventors
Cpc classification
H02K17/16
ELECTRICITY
H02K9/12
ELECTRICITY
H02K5/15
ELECTRICITY
H02K9/19
ELECTRICITY
International classification
H02K5/15
ELECTRICITY
H02K17/16
ELECTRICITY
H02K7/00
ELECTRICITY
H02K9/12
ELECTRICITY
Abstract
The invention relates to an electric machine which is cooled or can be cooled by a fluid, comprising a rotor, a stator, and at least one end disk which are arranged in a housing, where the end disk and the rotor are arranged on a shaft, in particular a hollow shaft, and the end disk is arranged on at least one axial end of the rotor, where at least one first fluid region is formed between a first face side of the end disk and at least one axial end of the rotor and a second fluid region between a second face side of the end disk and the housing, where the two fluid regions comprise at least one outer fluid connection and at least one inner fluid connection which each connect the two fluid regions to one another such that the fluid can circulate at least in sections between the first and the second fluid region.
Claims
1. Electric machine which is cooled or can be cooled by a fluid, comprising a rotor, a stator, and at least one end disk which are arranged in a housing, where said end disk and said rotor are arranged on a shaft, in particular a hollow shaft, and said end disk is arranged on at least one axial end of said rotor, wherein at least one first fluid region is formed between a first face side of said end disk and at least one axial end of said rotor and a second fluid region between a second face side of said end disk and said housing, where said two fluid regions comprise at least one outer fluid connection and at least one inner fluid connection which each connect said two fluid regions to one another such that said fluid can circulate at least in sections between said first and said second fluid region.
2. Electric machine according to claim 1, wherein said outer fluid connection has an annular gap which is defined by said end disk and an inner surface of said housing.
3. Electric machine according to claim 1, wherein said outer fluid connection is arranged in said end disk.
4. Electric machine according to claim 1, wherein said circulating fluid has an axial and/or radial direction at least in sections.
5. Electric machine according to claim 1, wherein said inner fluid connection extends at least in part between said face sides of said end disk.
6. Electric machine according to claim 1, wherein said shaft comprises a hollow shaft and said inner fluid connection extends at least in part in said hollow shaft.
7. Electric machine according to claim 1, wherein said hollow shaft comprises recesses, which are arranged in the circumferential direction on an outer surface of said hollow shaft in the region of said end disk.
8. Electric machine according to claim 1, wherein said electric machine comprises a first end disk and at least one second end disk, where said first end disk is configured as a balancing disk and said second end disk as a short-circuit ring.
9. Electric machine according to claim 8, wherein spacers are arranged between said first end disk, said rotor, and/or said second end disk.
10. Electric machine according to claim 1, wherein said inner fluid connection has different cross sections and/or cross-sectional shapes.
11. Electric machine according to claim 1, wherein a fluid flows through said hollow shaft which comprises at least one outlet opening in said first fluid region.
12. Electric machine according to claim 1, wherein said fluid comprises a cooling gas, and/or a cooling liquid.
13. Electric machine according to claim 8, wherein said first end disk and/or said second end disk comprise an inclination, where the incline of said inclination in the direction of said rotor is positive and the incline of said second end disk in the direction of said rotor is negative.
14. Electric machine according to claim 7, wherein said recesses comprise grooves.
15. Electric machine according to claim 8, wherein said second end disk comprises several stacked short-circuit rings.
16. Electric machine according to claim 12, wherein said cooling gas comprises air.
17. Electric machine according to claim 12, wherein said cooling liquid comprises dielectric oil.
Description
[0024] The invention shall be explained in more detail hereafter by way of embodiments with reference to the accompanying drawings, where:
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[0041]
[0042] Electric machine 10 comprises a housing 14. A rotor 11, a stator 12, a first end disk 13′, in particular a balancing disk, several second end disks 13″, in particular short-circuit rings, and a hollow shaft are arranged coaxially in housing 14. A cooling medium can flow through housing 14.
[0043] Rotor 11 and end disks 13′, 13″ are fixedly arranged at the hollow shaft. Hollow shaft 15′ is mounted to be rotatable. First end disk 13′ is arranged between a face side of rotor 11 and housing 14. Second end disks 13″ are arranged between the rotor face side and first end disk 13′. The radius of first end disk 13 is smaller than the radius of rotor 11. A first fluid region 16 is formed between the face side of rotor 11 and first end disk 13′. A second fluid region 17 is formed between first end disk 13′ and housing 14.
[0044] First end disk 13′ comprises an inclination 22 radially on the outside. Inclination 22 is positive in the direction of rotor 11. In other words, the radius of first end disk 13′ on the side facing rotor 11 is greater than the radius on the side facing away from rotor 11. The radius increases in the direction of rotor 11.
[0045] Second end disk 13″ also comprises an inclination 22 radially on the outside. Inclination 22 of second end disk 13″ is negative in the direction of rotor 11. In other words, the radius of second end disk 13″ on the side facing rotor 11 is smaller than the radius on the side facing away from rotor 11. The radius decreases in the direction of rotor 11.
[0046] Stator 12 encloses rotor 11. An axially extending gap is formed between rotor 11 and stator 12.
[0047] The distinguishing features of the embodiments shall be discussed in greater detail hereafter.
[0048]
[0049] An annular gap is formed between first end disk 13′ and the inner outer surface of housing 14. The annular gap forms an outer fluid connection 18 between first and second fluid region 16, 17. More precisely, the annular gap forms a radially outer fluid connection 18.
[0050] Air flows through the housing for cooling. The rotation of rotor 11 and the resulting centripetal force create a radial air flow The air flows radially outwardly in first fluid region 16. The air flows along a first face side of first end disk 13′ and along a face side of second end disk 13″. The air flows through the annular gap, i.e. the outer fluid connection 18, into second fluid region 17. The air flows radially inwardly in second fluid region 17. The air there flows along a second face side of first end disk 13′. The air flows back into first fluid region 16 through inner fluid connection 19.
[0051] The air circulates around first end disk 13′. The flow in the longitudinal sectional view is ring-shaped. The effective cooling surface of rotor 11 is increased in this manner. Furthermore, the convection is improved by the circulation of the air.
[0052]
[0053]
[0054]
[0055] The cooling fluid flows through outlet 22 from hollow shaft 15′ into fluid region 16. The cooling fluid of the hollow shaft cooling flows at least in sections parallel to the cooling fluid of the rotor cooling. It is possible for the two cooling fluids to mix with one another. The two cooling fluids can be the same or different cooling fluids.
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[0061] The cooling fluid can circulate between two axial ends of rotor 11 through channel 24 and the gap between rotor 11 and stator 12. Air flows through channel 24 and the gap. The air flows through channel 24 to the left side of rotor 11 and through the gap to the right side of rotor 11. A reversal of the direction of flow is possible.
[0062] Inclination 22 of second end disk 13″ is arranged at one end of the gap. The air flows along inclination 22 and is deflected radially outwardly. This creates a further circulating flow around first end disk 13′ which runs parallel to the already existing circulating flow. More precisely, the further circulating flow encloses the already existing circulating flow. Inner fluid connection 19 is formed to be wider than in
[0063]
[0064] Spacers 20 enable a constant flow between second end disks 13″ and seal the gap between rotor 11 and stator 12 against the oil of the hollow shaft cooling.
[0065]
[0066] The additional spacer creates a bottleneck. The additional spacer enables selective mixing of the oil from the hollow shaft cooling and the air from the rotor cooling. Inner and/or outer fluid connection 18, 19 are then preferably configured as jets.
[0067]
[0068] By arranging the spacer radially before the inner fluid connection, mixing of the oil of the hollow shaft cooling and the air of the rotor cooling is selectively prevented.
[0069]
[0070] Balancing disk 13 is shown in detail in
[0071] Hollow shaft 15′ comprises a supply line for a cooling fluid, in particular for a dielectric oil.
[0072]
[0073] The cooling lance protrudes up to the center of electric machine 10. The cooling lance is arranged on the central longitudinal axis of electric machine 10. Furthermore, the cooling lance has a supply opening for a cooling fluid in the region of the center of electric machine 10.
LIST OF REFERENCE CHARACTERS
[0074] 10 electric machine [0075] 11 rotor [0076] 12 stator [0077] 13 end disk [0078] 13′ first end disk [0079] 13″ second end disk [0080] 14 housing [0081] 15 shaft [0082] 15′ hollow shaft [0083] 16 fluid region [0084] 17 second fluid region [0085] 18 outer fluid connection [0086] 19 inner fluid connection [0087] 20 spacer [0088] 21 outlet opening [0089] 22 inclination [0090] 23 inlet opening [0091] 24 channel