ENCLOSED ELECTRIC MACHINE WITH EXTERNAL LIQUID COOLING CIRCUIT
20220181947 · 2022-06-09
Assignee
Inventors
Cpc classification
H02K9/12
ELECTRICITY
H02K5/04
ELECTRICITY
H02K11/20
ELECTRICITY
H02K9/08
ELECTRICITY
H02K5/207
ELECTRICITY
International classification
H02K9/19
ELECTRICITY
Abstract
An electric machine includes a rotor surrounded by a stator. An external jacket surrounds the stator and extends between front and rear end parts, thereby delimiting an inner region which accommodates the rotor, and an outer region radially surrounding the inner region. The inner and outer regions communicate with one another via recesses to enable air to flow out of the inner region and into the outer region and from there to flow back into the inner region. Front and rear closing elements are attached to the front and rear end parts on their side facing away from the external jacket, thereby enclosing a front cavity and a rear cavity. Axial tubes are fastened in the front and rear end parts such that the axial tubes extend from the front end part across the outer region to the rear end part and open in the front and rear cavities.
Claims
1.-11. (canceled)
12. An enclosed electric machine with an air-based internal cooling circuit and an external liquid cooling circuit, said electric machine comprising: rotor mounted for rotation about an axis of rotation; a stator disposed in surrounding relation to the rotor, when viewed about the axis of rotation; an external jacket disposed in surrounding relation to the stator with a varying radial spacing and extending, when viewed in the direction of the axis of rotation, from a front end part to a rear end part, so that the front and rear end parts and the stator delimit an inner region which accommodates the rotor, and the front and rear end parts, the stator and the external jacket delimit an outer region in radially surrounding relation to the inner region on an outside, with the inner and outer regions communicating with one another via recesses to enable air to flow out of the inner region and into the outer region and from there to flow back into the inner region; front and rear closing elements respectively attached in a liquid-tight manner to the front and rear end parts on their side facing away from the external jacket, so that the front end part and the front closing element enclose a front cavity and the rear end part and the rear closing element enclose a rear cavity; a first connecting piece communicating with the front cavity supplying a liquid coolant; and axial tubes distributed over an angle of more than 180° about the axis of rotation and fastened in the front and rear end parts such that the axial tubes extend from the front end part across the outer region to the rear end part, said axial tubes being configured to open in the front and rear cavities.
13. The electric machine of claim 12, further comprising a second connecting piece communicating with the rear cavity for discharging the liquid coolant.
14. The electric machine of claim 13, wherein the front cavity is divided into at least two subregions, with a first plurality of the axial tubes opening in one of the subregions and a second plurality of axial tubes opening in another one of the subregions, the first connecting piece being arranged in the one of the subregions and the second connecting piece being arranged in the other one of the subregions.
15. The electric machine of claim 12, wherein the front and rear end parts and the external jacket enclose the rotor and the stator in an ignition protection type Ex d.
16. The electric machine of claim 12, wherein the axial tubes have an inner diameter, said axial tubes being distanced from the stator at a radial spacing, which is at least as large as the inner diameter.
17. The electric machine of claim 12, wherein the axial tubes have an outer diameter, said axial tubes being distanced from the stator at a radial spacing, which is at least as large as the outer diameter.
18. The electric machine of claim 12, wherein the axial tubes are embodied as double-walled tubes defined by an internal inner tube which guides the liquid coolant and an outer tube which surrounds the inner tube and around which the air, which flows in the outer region, flows.
19. The electric machine of claim 12, wherein the axial tubes are embodied as single-walled tubes, which guide the liquid coolant on an inside and around which the air, which flows in the outer region, flows on the outside.
20. The electric machine of claim 12, further comprising a detector facility arranged in the inner region and/or in the outer region for detecting liquid.
21. The electric machine of claim 12, further comprising an internal jacket in surrounding relation to the stator without spacing, said internal jacket distanced from the outer jacket by a radial spacing.
Description
[0029] The above-described properties, features and advantages of this invention as well as the manner in which they are achieved will become clearer and more comprehensible in conjunction with the following description of the exemplary embodiments, which are explained in more detail in conjunction with the drawings, in which, in a schematic representation:
[0030]
[0031]
[0032]
[0033]
[0034]
[0035]
[0036]
[0037] According to
[0038] Insofar as reference is made hereinbelow to “axial”, “radial” and “tangential”, these always relate to the axis of rotation 4. “Axial” is a direction parallel to the axis of rotation 4. “Radial” is a direction orthogonal to the axis of rotation 4 directly toward the axis of rotation 4 or away from it. “Tangential” is a direction which is both orthogonal to the axial direction and orthogonal to the radial direction. “Tangential” is therefore a direction which is directed around the axis of rotation 4 in a circular manner, with a constant axial position and with a constant radial spacing from the axis of rotation 4.
[0039] In the context of the present invention, the stator 2 is arranged radially on the outside, and the rotor 1 radially on the inside. Furthermore, according to the representation in
[0040] The external jacket 6 generally has a cylindrical shape. Where present, the same generally also applies to the inner jacket 5. The radial spacing a1 is often constant when viewed in the tangential direction. However, deviations from the cylindrical shape—both for the external jacket 6 and also for the internal jacket 5 as appropriate—are also possible. The radial spacing a1 can therefore also vary.
[0041] The external jacket $ extends in the axial direction from a front end part 7 to a rear end part 8 in each case. The two end parts 7, 8 are generally embodied in one piece or in each case consist of multiple parts interconnected with a material fit. The two end parts 7, 8 and the stator 2, and the internal jacket 5 as appropriate, delimit an inner region 9. The inner region 9 contains the rotor 1. Furthermore, the two end parts 7, 8, the stator 2 and the external jacket 6 delimit an outer region 10, which surrounds the inner region 9 radially on the outside. Preferably, the two end parts 7, 8 and the external jacket 6 furthermore enclose the rotor 1 and the stator 2 in the ignition protection type Ex d. The term “ignition protection type Ex d” has a fixed meaning to the person skilled in the art. Corresponding implementations of the encapsulation are likewise familiar to the person skilled in the art.
[0042] The inner region 9 and the outer region 10 are interconnected in a communicating manner via recesses 11, so that air 12 is able to flow out of the inner region 9 and into the outer region 10, from which it can flow back into the inner region 9 again. Where the internal jacket 5 is present, the recesses 11 may be present in the internal jacket 5. The air 12 flowing from the inner region 9 into the outer region 10 and back again forms an internal cooling circuit of the electric machine.
[0043] The internal cooling circuit is generally single-flow or double-flow—but exceptions are possible in principle. In a single-flow internal cooling circuit, according to the representation in
[0044] Furthermore, tubes 13 are fastened in the two end parts 7, 8. The tubes 13 run axially. In each case, the tubes 13 extend from the front end part 7, over the outer region 10, to the rear end part 8. As a general rule, the tubes 13 are fastened in the end parts 7, 8 such that they can no longer be removed from the end parts 7, 8 without being destroyed. For example, they may be welded to the end parts 7, 8.
[0045] According to the representation in
[0046] Attached to the front end part 7, on its side facing away from the external jacket 6—i.e. in the axial direction—is a front closing element 14.
[0047] For the liquid-tight seal, sealing elements 16 can be arranged between the front end part 7 and the front closing element 14. The sealing elements 16 may be embodied as O-rings, for example. If required, the front closing element 14 and/or the front end part 7 may have depressions 17 for the sealing elements 16. However, other types of sealing are also possible. For example, the front closing element 14 may be welded to the front end part 7.
[0048] In a similar manner, on the rear end part 8, on its side facing away from the external jacket 6, a rear closing element 18 is attached, so that the rear end part 8 and the rear closing element 18 enclose a rear cavity 19. The embodiment of the connecting point between the rear end part 8 and the rear closing element 18 is generally similar to the embodiment of the connection between the front end part 7 and the rear end part 14. In particular, here is it also possible for sealing elements 20, including depressions 21 for the sealing elements 20 as appropriate, to be present and welding is also possible here.
[0049] According to the representation in
[0050] According to the representation in
[0051]
[0052] According to the representation in
[0053]
[0054] According to the representation in
[0055] In the case of the embodiment according to
[0056] A similar embodiment can be adopted for the inner region 9 according to
[0057] In principle, the embodiment according to
[0058] In the context of the present invention, the liquid coolant 23 is both supplied to the front cavity 15 as well as discharged from it. This will be explained in greater detail below in connection with
[0059] According to
[0060] The two subregions are therefore separated from one another in a liquid-tight manner by means of the separating wall 31. Furthermore, the front cavity 15 is closed in a liquid-tight manner—with the exception of the connecting pieces 22, 24 for supplying and discharging the liquid coolant 23 and the access points to the axially running tubes 13. The rear cavity 19 is likewise closed in a liquid-tight manner with the exception of the access points to the axially running tubes 13.
[0061] In summary, the present invention therefore relates to the following subject:
[0062] An electric machine has a rotor 1 and a stator 2, wherein the rotor 2 is able to rotate about an axis of rotation 4. The rotor 1 is radially on the outside of the stator 2r the stator has a radial spacing a1 from an external jacket 6. The external jacket 6 extends radially from a front end part 7 to a rear end part 8 in each case, so that the end parts 7, 8 and stator 2 delimit an inner region 9 which contains the rotor 1, and the end parts 7, 8, the stator 2 and the external jacket 6 delimit an outer region 10 which surrounds the inner region 9 radially on the outside. The inner region 9 and the outer region 10 are interconnected in a communicating manner via recesses 11, so that air 12 is able to flow out of the inner region 9 and into the outer region 10, from which it can flow back again. Axially running tubes 13, which extend between the end parts 7, 8 in the outer region 10, are fastened in the end parts 7, 8. Attached in a liquid-tight manner to each of the end parts 7, 8, on their sides facing away from the external jacket 6, is a closing element 14, 18, so that the end parts 7, 8 and the closing elements 14, 18 enclose a cavity 15, 19 in each case. The front cavity 15 is divided into at least two subregions 32,33 by means of a separating wall 31. Each portion of the tubes 13 opens in one subregion 32,33 or the other. Arranged in each one of the subregions 32,33 is a connecting piece 22,34 for supplying or discharging the liquid coolant 23.
[0063] The present invention has many advantages. In particular, the cooling of the electric machine can be considerably improved. As a result, the electric machine can be operated with a higher performance with the same unit size and the same or even reduced weight. In trials, it has proven to be readily possible to implement performance increases of approx. 25%. Furthermore, the noise emission of the electric machine can be reduced.
[0064] Although the invention has been illustrated and described in greater detail with the preferred exemplary embodiment, the invention is not restricted by the examples disclosed and other variations can be derived therefrom by the person skilled in the art without departing from the protective scope of the invention.