HOLLOW ROTOR SHAFT
20230061459 ยท 2023-03-02
Assignee
Inventors
- Bernd RUDERT (Ahlen, DE)
- Jens WEGENER (Havixbeck, DE)
- Ralf GRUENEWALD (Drensteinfurt, DE)
- Alexander GOETTMANN (Drensteinfurt, DE)
Cpc classification
H02K9/197
ELECTRICITY
International classification
Abstract
A hollow rotor shaft for an electric machine rotor rotating about a longitudinal axis includes: a cylinder shell surrounding a shaft cavity; and end flanges on both shell ends transitioning into respective shaft journals. One end flange has an inlet for leading a cooling medium into the cavity and onto the shell inner surface. Inside the cavity, guides distribute cooling medium entering via the inlet over the inner surface, the shell having at least one cooling-medium outlet opening. The shaft is formed in one piece from a tubular initial body. The guides are raised contours formed from the inner surface and protruding into the cavity. The shaft is flow formed by pressing the raised contour out of the inner surface. The end flanges with respective shaft journals are formed by pressing the two initial body ends. The at least one cooling-medium outlet opening is formed in the raised contour.
Claims
1. A hollow rotor shaft for a rotor, rotating around a longitudinal axis, of an electric machine, with a cylindrical shell (2), which surrounds a shaft cavity (3), as well as end flanges (4, 5) disposed on the cylindrical shell (2) at both ends, wherein each end flange (4, 5) transitions respectively into a shaft journal (6, 7) and wherein an inlet (8) is provided in one of the end flanges (4), especially in its shaft journal (6), via which inlet a cooling medium can be guided into the shaft cavity (3) and onto an inside surface (10) of the cylindrical shell (2), wherein cooling-medium guiding elements are provided inside the shaft cavity (3), which elements distribute the cooling medium entering via the inlet (8) over the inside surface (10) of the cylindrical shell (2), wherein at least one cooling-medium outlet opening (13, 15) is provided in the cylindrical shell (2), wherein the hollow rotor shaft (1) is formed in one piece by forming from a tubular starting body (20), wherein the cooling-medium guiding elements are formed as a raised contour (11, 11a, 11b) formed from the inside surface (10) of the cylindrical shell (2) and protruding into the shaft cavity (3), wherein this is formed by means of flow forming, wherein the raised contour (11, 11a, 11b) is pressed out from the inside surface (10) of the cylindrical shell (2), wherein the two end flanges (4, 5) are formed together with respective shaft journals (6, 7) by pressing the two ends of the starting body (20), and in that the at least one cooling-medium outlet opening (13, 15) is formed in the raised contour (11, 11a, 11b).
2. The hollow rotor shaft according to claim 1, wherein the raised contour (11, 11a, 11b) forms several channel-like regions (12, 12a, 12b) distributed circumferentially on the inside surface (10) of the cylindrical shell (2).
3. The hollow rotor shaft according to claim 2, wherein the channel-like regions (12, 12a, 12b) are formed helically and/or linearly at least in parts.
4. The hollow rotor shaft according to claim 1, wherein a further tubular cooling-medium guiding element (18) is inserted into the shaft cavity (3).
5. A rotor having the hollow rotor shaft (1) according to claim 1, equipped with laminations.
Description
[0012] The invention will be explained in more detail in the following by way of example on the basis of the drawings. These show in
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[0024] A hollow rotor shaft for a rotor, not illustrated, rotating around a longitudinal axis L, of an electric machine is generally denoted by 1. This hollow rotor shaft 1 has a cylindrical shell 2, which surrounds a shaft cavity 3. At both ends of the cylindrical shell 2 of the hollow rotor shaft 1, end flanges are respectively molded on in one piece, namely a first end flange 4 and a second end flange 5. Each end flange 4, 5 transitions into a shaft journal, namely a first shaft journal 6 and a second shaft journal 7. In the first shaft journal 6, an inlet 8 is provided that leads into the shaft cavity 3 and serves for supplying a cooling medium in the direction of the arrow 9.
[0025] When the hollow rotor shaft 1 is turning around the longitudinal axis L, the cooling medium passes due to the centrifugal force along an inside surface 10 of the shaft cavity 3, wherein cooling-medium guiding elements are provided for uniform distribution of the cooling medium over the entire inside surface 10 of the shaft cavity 3. These cooling-medium guiding elements are formed as a raised contour pressed out of the inside surface 10 and protruding into the shaft cavity 3, which contour, in the exemplary embodiment according to
[0026] In the cylindrical shell 2, cooling-medium outlet openings 13 and 15 are provided in the raised contour respectively at the beginning and at the end of the shaft cavity 3, i.e. in the helical ridges 11, through which outlets the cooling medium exits radially outwardly from the shaft cavity 3 in the region of the laminations, not illustrated, of the rotor. This is indicated by arrows 14. The cooling medium is introduced first in the direction of the arrow 9 into the shaft cavity 3 and passes due to the helical channel-like regions 12 and the centrifugal force in the direction of the dashed arrows 16 substantially over the entire area of the inside surface 10 of the cylindrical shell 2, thus cooling this and the surrounding laminations.
[0027] A modified embodiment of the hollow rotor shaft 1 is illustrated in
[0028] The configuration of the hollow rotor shaft 1 according to
[0029] A further exemplary embodiment of a hollow rotor shaft 1, which corresponds in basic construction to that according to
[0030] A workflow for the manufacture of a one-piece hollow rotor shaft 1 according to
[0031] In
[0032] The tubular starting body 20 is disposed on a two part inner mandrel 21, 22, wherein the inner mandrels 21 and 22 respectively have a negatively raised contour, which is indicated in
[0033] After completion of the flow forming, both inner mandrels 21, 22 can be screwed out of the tubular starting body 20, as indicated by arrows 30 and double arrows 31 in
[0034] Then the first end flange 4 together with the first shaft journal 6 is molded on by pressing from outside with a further pressing roll 32, wherein, as illustrated in
[0035] After formation of the first end flange 4 together with the first shaft journal 6, the hollow rotor shaft 1 already finished to this extent is held with a further clamping tool 33 and, if not already done, the second inner mandrel 22 is removed and then the second end flange 5 together with the second shaft journal 7 is formed by pressing from outside with a further pressing roll 34. This shaft journal 7 can also be formed in several stages.
[0036] If a further cooling-medium guiding element 18 according to
[0037] The workflow for the manufacture of a hollow rotor shaft according to
[0038] Naturally the invention is not limited to the illustrated exemplary embodiments. Further configurations are possible without departing from the basic idea. Thus the ridges 11, 11a, 11b may also have different contours.
LIST OF REFERENCE SYMBOLS
[0039] 1 Hollow rotor shaft [0040] 2 Cylindrical shell [0041] 3 Shaft cavity [0042] 4, 5 End flange [0043] 6, 7 Shaft journal [0044] 8 Inlet [0045] 9, 14, 16, 27, 28, 29, 30 Arrow [0046] 10 Inside surface [0047] 11, 11a, 11b Ridge [0048] 12, 12a, 12b Channel-like region [0049] 13, 15 Cooling-medium outlet opening [0050] 17 Cooling-medium supply tube [0051] 18 Cooling-medium guiding element [0052] 19 Cooling-medium passage opening [0053] 20 Starting body [0054] 21, 22 Inner mandrel [0055] 23, 24 Depression [0056] 25, 33 Clamping tool [0057] 26, 32, 34 Pressing roll [0058] 31 Double arrow [0059] L Longitudinal axis