SHAFT ARRANGEMENT FOR A VEHICLE
20220037956 ยท 2022-02-03
Inventors
Cpc classification
B60K11/00
PERFORMING OPERATIONS; TRANSPORTING
H02K11/215
ELECTRICITY
H02K9/197
ELECTRICITY
International classification
B60K11/00
PERFORMING OPERATIONS; TRANSPORTING
H02K11/215
ELECTRICITY
H02K7/00
ELECTRICITY
Abstract
A shaft arrangement for a vehicle. The shaft arrangement includes a shaft having a fluid channel extending along an axial direction of the shaft. The shaft includes at least one fluid inlet arranged at an axial distance from a first end of the shaft and extends radially between an outside surface of the shaft and the fluid channel. The shaft arrangement further has a sensor including a first sensor part and a second sensor part, wherein the first sensor part is attached to a first end part of the shaft at the first end of the shaft and the second sensor part is arranged to be attached to a first shaft housing part.
Claims
1. A shaft arrangement for a vehicle, wherein the shaft arrangement comprises a shaft comprising a fluid channel extending along an axial direction of the shaft, wherein the shaft comprises at least one fluid inlet arranged at an axial distance from a first end of the shaft and extending radially between an outside surface of the shaft and the fluid channel, and wherein the shaft arrangement further comprises a sensor comprising a first sensor part and a second sensor part, wherein the first sensor part is attached to a first end part of the shaft at the first end of the shaft and the second sensor part is arranged to be attached to a first shaft housing part.
2. A shaft arrangement according to claim 1, wherein the shaft arrangement is arranged to be supplied a fluid from an external fluid supply via a fluid supply channel arranged such that the fluid flows past the first sensor part, from the outside of the shaft through the fluid inlets into the fluid channel.
3. A shaft arrangement according to claim 1, wherein the shaft comprises at least one fluid outlet arranged at an axial distance from the at least one fluid inlet, wherein the at least one fluid outlet extends radially between the fluid channel and the outside surface of the shaft.
4. A shaft arrangement according to claim 3, wherein the at least one fluid outlet arranged at an axial distance from the at least one fluid inlet is arranged at an opposite side of the first end of the shaft.
5. A shaft arrangement according to claim 1, wherein the fluid channel and the at least one fluid inlet is adapted to be connected to an existing cooling system of a vehicle to transport cooling fluid.
6. A shaft arrangement according to claim 1, wherein the first sensor part is attached to an inside wall of the fluid channel.
7. A shaft arrangement according to claim 1, wherein the fluid channel is open axially at the first end of the shaft and wherein the second sensor part is adapted to extend into the fluid channel at the first end of the shaft.
8. A shaft arrangement according to claim 7, wherein the part of the second sensor part that extends into the fluid channel at the first end of the shaft comprises an inner second sensor part that has a smaller cross sectional area than an outer second sensor part.
9. A shaft arrangement according to claim 8, wherein the second sensor comprises a stepped transition between the inner second sensor part and the outer second sensor part, or a gradually decreasing cross sectional area, e.g. a chamfered transition or a curved transition.
10. A shaft arrangement according to claim 1, wherein the sensor is a magnetoresistant sensor, e.g. an anisotropic magnetoresistant sensor, a giant magnetoresistant sensor, a tunnel magnetoresistant sensor or an extraordinary magnetoresistant sensor.
11. A shaft arrangement according to claim 10, wherein the first sensor part is a ring-shaped Halbach array, e.g. a Halbach cylinder, and the second sensor part is arranged to detect changes in the magnetic field inside the first sensor part due to a rotational motion of the shaft.
12. A shaft arrangement according to claim 1, wherein at least one of the at least one fluid inlet extends in a direction perpendicular to the axial direction of the shaft.
13. A shaft arrangement according to claim 1, wherein at least one of the at least one fluid inlet extends at an angle to the axial direction of the shaft.
14. An electric motor system comprising an electric motor and a shaft arrangement according to claim 1, wherein the at least one fluid outlet is arranged to provide cooling fluid to a rotor of the electric motor.
15. A vehicle comprising a shaft arrangement according to claim 1.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0034]
[0035]
[0036]
[0037]
[0038]
[0039]
[0040]
DETAILED DESCRIPTION
[0041]
[0042] Fluid 13 (illustrated by the arrows) is supplied from an external fluid supply (not shown) via a fluid supply channel 13a and is arranged to flow past the first sensor part 8 at the first end 5, thereby passing from the outside of the shaft 2 through the fluid inlets 4 into the fluid channel 3. Thus, the fluid supply channel 13a is fluidly connected to the fluid inlets 4. The fluid 13 can be a cooling fluid and/or a lubricating fluid. The arrows in the figures are intended to illustrate fluid flow paths to and through the shaft arrangement.
[0043] In the first example embodiment, the first sensor part 8 is effectively blocking fluid 13 from entering the fluid channel 3. Alternatively, the shaft 2 is closed axially at the first end 5 with the first sensor part 8 embedded in the material of the first end part 10 of the shaft 2. The first sensor part 8 is a magnet comprising at least two pieces having different magnetic field orientations. The second sensor part 9 is arranged to detect changes in the magnetic field of first sensor part 8 due to a rotational motion of the shaft 2.
[0044] The fluid channel 3 of the shaft 2 is open axially at a second end 14 opposite the first end 5 of the shaft 2 allowing the fluid 13 to flow through the shaft 2 to the opposite side of the shaft 2 from where the fluid 13 is supplied.
[0045] The sensor 7 is a magnetoresistant sensor, e.g. an anisotropic magnetoresistant sensor, a giant magnetoresistant sensor, a tunnel magnetoresistant sensor or an extraordinary magnetoresistant sensor, arranged to measure the rotational speed and position of the shaft 2.
[0046]
[0047] The fluid outlets 15 allow fluid 13 to be used for lubrication and/or cooling to various parts of the vehicle. After the fluid 13 has passed out of the fluid outlets 15, the fluid is returned to a collecting container or sump (not shown) from which the fluid 13 can be recirculated.
[0048]
[0049]
[0050] In this embodiment, the first sensor part 8 is a ring-shaped Halbach array, e.g. a Halbach cylinder, and the second sensor part 9 is arranged to detect changes in the magnetic field inside the first sensor part 8 due to a rotational motion of the shaft 2.
[0051]
[0052] As seen in
[0053] Also in
[0054]
[0055] By being able to vary the design of the fluid inlets 4, the amount of fluid 13 that can pass through the fluid inlets 4 can be designed for specific applications. The fluid outlets 15 may also have different cross sections in the same way as the fluid inlets 4 described above. Each of the different cross sections in
[0056]
[0057] Although the disclosure has been illustrated and described in detail in the drawings and foregoing description, such illustration and description are to be considered illustrative or exemplary and the disclosure is not limited to the disclosed embodiments. For instance, even though only cooling of an electric motor is illustrated in the disclosure, the invention is also applicable to other shaft arrangements that can be used to cool equipment in a vehicle. The shaft arrangement can also be used for lubrication of various equipments in a vehicle. It is further to be understood from the disclosure that the various fluid inlet and outlet configurations described in the example embodiments above can be used separately or combined, and with any one of the sensor configuration embodiments described.