BOGIE OF A RAIL VEHICLE
20200398871 ยท 2020-12-24
Inventors
- CHRISTIAN KUETER (STATTEGG, AT)
- Andreas Schaefer-Enkeler (Roettenbach, DE)
- Martin Teichmann (Graz, AT)
- Christoph Adam (Nuernberg, DE)
- OLAF KOERNER (NUERNBERG, DE)
- Peter Seitz (Pommelsbrunn, DE)
Cpc classification
Y02T30/00
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B61F3/14
PERFORMING OPERATIONS; TRANSPORTING
H02K9/197
ELECTRICITY
B61D17/02
PERFORMING OPERATIONS; TRANSPORTING
H02K9/08
ELECTRICITY
B61C9/48
PERFORMING OPERATIONS; TRANSPORTING
International classification
B61D17/02
PERFORMING OPERATIONS; TRANSPORTING
B61F3/14
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A bogie of a rail vehicle has at least one wheelset with two oppositely situated wheels that are rigidly connected to one another, a wheelset bearing arrangement of the wheelset within the two wheels, a traction motor which directly drives the wheelset, and an aerodynamic paneling enclosure of the bogie. The traction motor is a permanently excited synchronous motor with liquid cooling.
Claims
1-6. (canceled)
7. A bogie of a rail vehicle, the bogie comprising: at least one wheelset with two opposing, rigidly interconnected wheels; a wheelset bearing of said at least one wheelset within said two wheels; a traction motor configured to drive said wheelset directly, said traction motor being a permanently excited synchronous motor with liquid cooling; and an aerodynamic enclosure of the bogie.
8. The bogie according to claim 7, wherein said liquid cooling is effected by a liquid cooling jacket.
9. The bogie according to claim 8, wherein said traction motor has a closed internal cooling circuit to be recooled at said liquid cooling jacket and/or at a motor can of a stator of said traction motor.
10. The bogie according to claim 9, wherein said liquid cooling jacket cooling is arranged between a rear side of the stator of said traction motor and the internal cooling circuit.
11. The bogie according to claim 10, wherein said internal cooling circuit includes outer air-guiding ducts.
12. The bogie according to claim 9, further comprising a motor can disposed to separate said stator of said traction motor from a rotor of said traction motor, enabling said stator to be cooled by way of an insulating liquid.
13. A rail vehicle, comprising at least one bogie according to claim 7, and wherein at least one recooling unit of the liquid cooling is arranged in and/or on the rail vehicle.
14. The rail vehicle according to claim 13, configured as a high-speed train.
Description
[0026] The invention as well as advantageous embodiments of the invention are explained in greater detail on the basis of schematic representations of exemplary embodiments, in which:
[0027]
[0028]
[0029]
[0030]
[0031]
[0032] Arranged in slots of the stator 2 is a winding system which, by way of electromagnetic interaction with a rotor 3, which is provided with permanent magnets 10, causes a rotation of the rotor 3 about an axis 4. The winding system forms winding heads 5 at the end faces of the stator 2. The permanent magnets 10 of the rotor 3 are arranged as embedded permanent magnets 10 in recesses of the rotor 3 running substantially axially or as surface magnets on the rotor 3, where they are fixed by a bandage for example. The rotor 3 forms a hollow shaft 9, through which the wheelset shaft 16 runs. Furthermore, cooling ducts 17 for an internal cooling circuit 8 are also provided in the rotor 3.
[0033] In this context, the internal cooling circuit 8 is maintained by fans 30, in particular radial fans. The rotor 3 causes comparatively low losses, meaning that a traction motor is also conceivable which has no internal cooling circuit 8, but rather merely dissipates the losses from the traction motor 1 by way of a water jacket cooling 7 at the rear of the stator 2.
[0034] The internal cooling circuit 8, due to the guidance of the air flow, also serves to dissipate heat out from the two end face-side winding heads 5 of the stator 2 and to homogenize the temperature within the traction motor 1.
[0035] The water jacket cooling 7 now causes a cooling of the stator 2, and via the internal cooling circuit 8 a cooling of the rotor 3 and the end face-side winding heads 5. This serves to evenly distribute the temperature within the traction motor 1 and the motor bearings 27.
[0036] The housing of the electric machine 1 is braced against the rotor 3 via motor bearings 27. Furthermore, the housing is positioned via a torque support 26 and a motor brace 25 in the bogie (not shown in further detail).
[0037]
[0038] An internal cooling circuit 8, the air recirculation of which is maintained by a fan 30, in particular radial fan, is in the rotor 3. A recooling of the internal cooling circuit 8 takes place in contact with the surrounding parts, in particular also on the motor can 28.
[0039] The rotor 3 is designed as a hollow shaft 9 and is connected to a coupling 12 in a rotationally fixed manner, which in turn is connected to the wheelset shaft 3 in a fixed manner, so that the torque of the traction motor 1 can be transferred to the wheelset shaft. A cardan quill shaft coupling is particularly suitable for this purpose.
[0040] In principle, reinforcing elements 14 may be provided within the rotor 3, which intrinsically stabilize the rotor 3. Wheelset bearings 15 within the wheels 11 permit a rotation of the wheelset shaft 16.
[0041] The housing of the electric machine 1 is braced against the rotor 3 via motor bearings 27. Furthermore, the housing is positioned via a torque support 26 and a motor brace 25 in the bogie (not shown in further detail).
[0042]
[0043] The electric traction motor 1 is therefore fully enclosed and effectively protected from moisture and contamination.
[0044]
[0045]
[0046] Shell-shaped enclosure elements both on the sides and in the direction of travel, as well as on the side of the bogie 21 facing away from the direction of travel, form the enclosure 20. This attempts to keep the gap dimensions between the individual enclosure elements as low as possible, in order to also obtain functional aerodynamics in the turned-out or not turned-out state of the bogie 21. The underside of the bogie 21 is also enclosed, but has recesses (not shown in further detail) for the wheels 11, in order to establish the wheel-rail contact.
[0047] By way of the embodiment of the traction motor 1 according to the invention as a permanently excited synchronous machine with the types of cooling described, in particular water jacket cooling and/or motor can cooling of the stator 2 and/or internal cooling circuit 8, wherein in this context the heat loss is guided outside the region of the bogie 21, a fully functional and aerodynamically designed bogie 21 is now created, which is primarily suitable for high-speed applications.
[0048] The bogie 21 described according to the invention, with one or more permanently excited synchronous motors, which are arranged about the wheelset shaft 15 as a direct drive, have a liquid cooling of the stator 2, have an enclosed internal cooling circuit 8 and have a wheelset bearing axially within the wheels 11, therefore enabling a particularly aerodynamic enclosure of said bogie 21.
[0049] In principle, other motor types may also be used as traction motor 1, for example such as asynchronous motors with squirrel-cage rotors or permanently excited transverse flux machines as direct drives encompassing the wheelset shaft. Likewise, these exemplary motor types may be arranged paraxially and/or connected to the wheelset shaft via a transmission. Likewise, the wheelset shaft 15 may also be arranged axially outside the wheelset shaft 16. The cooling concept accordingly may also have to provide a liquid cooling of the rotor 3. In this case, it is always crucial that the waste heat of the drive is as low as possible and is dissipated out from the fully enclosed bogie region, which is to be designed in an aerodynamic manner.