ELECTRICAL ROTATING MACHINE WITH ONE-SIDED COOLING AND METHOD FOR ONE-SIDED COOLING
20180006529 · 2018-01-04
Assignee
Inventors
Cpc classification
H02K2209/00
ELECTRICITY
International classification
Abstract
An electrical rotating machine includes a laminated stator core having a first axial duct to convey a cooling air stream generated by a turbomachine through the laminated stator core to a rear stator winding overhang, and a second axial duct to return the cooling air stream from the rear stator winding overhang back through the laminated stator core. An air guide is attached to the laminated stator core on a side of the rear stator winding overhang to redirect the cooling air stream via the rear stator winding overhang. Radial slots between the ducts and an air gap between the laminated stator core and a rotor are spaced from one another at an axial distance which decreases toward a turbomachine-distal side of the laminated stator core so as to compensate a temperature gradient caused by the one-sided cooling.
Claims
1.-9. (canceled)
10. An electrical rotating machine, comprising: a turbomachine configured for one-sided cooling of the rotating electrical machine; a stator including a front stator winding overhang, a rear stator winding overhang and a laminated stator core, said laminated stator core having first and second ducts running in an axial direction to cool the rear stator winding overhang via a cooling air stream generated by the turbomachine, with the first one of the ducts configured to convey the cooling air stream through the laminated stator core to the rear stator winding overhang, and the second one of the ducts being configured to return the cooling air stream from the rear stator winding overhang back through the laminated stator core; a rotor including a rear rotor winding overhang and separated from the laminated core by an air gap; and an air guide attached to the laminated stator core on a side of the rear stator winding overhang and configured to redirect the cooling air stream via the rear stator winding overhang, wherein at least two radial slots are disposed in the axial direction radially between the ducts and the air gap so as to interconnect the laminated stator core and the rotor and to enable the cooling air stream to cool at least one of the laminated stator core and the rear rotor winding overhang, said slots being spaced from one another at an axial distance which decreases toward a turbomachine-distal side of the laminated stator core so as to compensate a temperature gradient caused by the one-sided cooling.
11. The electrical rotating machine of claim 10, wherein the laminated stator core has stator windings which are cooled by the cooling air stream flowing in the radial slots.
12. The electrical rotating machine of claim 10, wherein the ducts are disposed in a radial direction.
13. The electrical rotating machine of claim 10, wherein the turbomachine is configured to cool at least one of the rotor, the laminated stator core, and the rear rotor winding overhang via the air gap.
14. The electrical rotating machine of claim 10, wherein the radial slots disposed in the axial direction are disposed in a rear third of the side of the laminated stator core.
15. The electrical rotating machine of claim 10, further comprising an auxiliary fan disposed inside the air guide on a side of the rear stator winding overhang.
16. The electrical rotating machine of claim 10, wherein the air guide has a nozzle for blowing out at least part of the cooling air stream to cool the rear rotor winding overhang.
17. A method for one-sided cooling of a rotating electrical machine, comprising: forming a first duct in an axial direction through a laminated stator core of a stator to convey a cooling air stream through the laminated stator core to a rear stator winding overhang of the stator; forming a second duct to return the cooling air stream from the rear stator winding overhang back through the laminated stator core; attaching an air guide to the laminated stator core on a side of the rear stator winding overhang for redirecting the cooling air stream via the rear stator winding overhang; interconnecting the laminated stator core and a rotor by at least two radial slots in the axial direction radially between the ducts and an air gap between the laminated stator core and the rotor so as to enable the cooling air stream to cool at least one of the laminated stator core and the rear rotor winding overhang; and spacing the slots from one another at an axial distance which decreases toward a turbomachine-distal side of the laminated stator core so as to compensate a temperature gradient caused by the one-sided cooling.
18. The method of claim 17, wherein the cooling air stream is generated by the turbomachine.
19. The method of claim 17, further comprising distancing the first and second ducts in a radial direction, and disposing the radial slots in a rear third of the turbomachine-distal side of the laminated stator core.
20. The method of claim 17, further comprising disposing an auxiliary fan inside the air guide on a side of the rear stator winding overhang.
21. The method of claim 17, further comprising blowing out at least part of the cooling air stream via a nozzle in the air guide for cooling the rear rotor winding overhang.
22. The method of claim 17, wherein the laminated stator core is uniformly cooled via the radial slots.
Description
[0017] The invention will now be described and explained in greater detail with reference to the exemplary embodiments illustrated in the drawings in which:
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[0030] To summarize, the invention relates to a rotating electrical machine having a stator 1, a rotor 8, and a turbomachine 7 which is designed for one-sided cooling of the rotating electrical machine, wherein the stator 1 has a laminated stator core 2, a front stator winding overhang 5a and a rear stator winding overhang 5b, wherein the rotor 8 has a rear rotor winding overhang 6b. In order to improve the cooling compared to the prior art in the case of one-sided ventilation, having regard in particular to an even temperature distribution, it is proposed that the laminated stator core 2 has ducts 9a, 9b running in the axial direction which are designed to cool the rear stator winding overhang 5b by means of a second air stream 14 generated by a turbomachine 7, wherein at least one first duct 9a is designed to convey a second cooling air stream 14 generated by the turbomachine 7 through the laminated stator core 2 to the rear stator winding overhang 5b, wherein an air guide 4 which is fastened to the laminated stator core 2 on the side of the rear stator winding overhang 5b is designed to redirect the second cooling air stream 14 via the rear stator winding overhang 5b, wherein at least one second duct 9b is designed to return the cooling air stream 14 from the rear stator winding overhang 5b back through the laminated stator core 2, wherein at least two radial slots 11 disposed in the axial direction which are disposed radially between the axially running ducts 9a, 9b and an air gap 3 between the laminated stator core 2 and the rotor 8 and which interconnect the latter are designed to cool the laminated stator core 2, in particular the stator windings, and/or the rear rotor winding overhang 6b, wherein the axial distance between the radial slots 11 decreases toward the side of the laminated stator core 2 facing away from the turbomachine 7 and is designed to compensate a temperature gradient caused by one-sided cooling.