ELECTRICAL MACHINE
20220345008 · 2022-10-27
Assignee
Inventors
Cpc classification
H02K11/215
ELECTRICITY
H02K11/21
ELECTRICITY
International classification
H02K11/215
ELECTRICITY
Abstract
An electrical machine includes a stator; a rotor, which can be rotated relative to the stator; a temperature-sensing device for sensing a temperature of the stator, which temperature-sensing device comprises a temperature sensor; and a rotor-sensing device for sensing the rotational speed and/or rotational position of the rotor. The rotor-sensing device includes a rotor-state-sensing sensor. The temperature-sensing device and the rotor-sensing device are connected to form a common assembly. The temperature-sensing device has a sensor portion, which can be moved between two end positions by means of at least one spring element and which includes the temperature sensor.
Claims
1. An electrical machine, comprising: a stator, a rotor configured to be rotatable relative to the stator, a temperature-sensing device for sensing a temperature of the stator, wherein the temperature-sensing device comprises a temperature sensor and a rotor-sensing device for sensing at least one of a rotational speed and a rotational position of the rotor, wherein the rotor-sensing device comprises a rotor-state-sensing sensor, wherein the temperature-sensing device and the rotor-sensing device are connected to form a common assembly, wherein the temperature-sensing device has a sensor portion configured to be movable between two end positions by at least one spring element and which comprises the temperature sensor.
2. The electrical machine according to claim 1, wherein the at least one spring element includes two spring elements spring loading the sensor portion.
3. The electrical machine according to claim 1, wherein the sensor portion is radially movable relative to the common assembly.
4. The electrical machine according to claim 1, wherein the temperature-sensing device has a housing from and into which the sensor portion is movable.
5. The electrical machine according to claim 4, wherein the housing is detachably arranged on a housing of the rotor-sensing device and is electrically coupled to one or more contact elements provided on a housing side on one or more connection elements associated with a downstream electrical or electronic device.
6. The electrical machine according to claim 5, wherein the housing of the temperature-sensing device has a coupling portion with a U-shaped cross-section at which the contact elements are provided for electrically connecting the temperature sensor to the connection elements, which are arranged at a connecting portion of the housing of the rotor-sensing device to be accommodated in the coupling portion.
7. The electrical machine according to claim 1, wherein the temperature sensor is electrically coupled to a downstream electrical or electronic device via the electrically conductive spring element.
8. The electrical machine according to claim 7, wherein the temperature sensor is connected to at least one sensor-side contact shoe at which the spring element is electrically contacted.
9. The electrical machine according to claim 8, wherein the spring element(s) is electrically contacted with the other end at a further contact shoe which can be coupled to connection elements on a housing of the rotor sensing device.
10. The electrical machine according to claim 1, wherein the spring element is designed as a helical spring.
11. The electrical machine according to claim 1, wherein the spring element is an elastomer component.
12. The electrical machine according to claim 11, wherein the elastomer component is made of a silicone elastomer.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0019] The disclosure is explained below on the basis of exemplary embodiments with reference to the drawings. The drawings are schematic representations, wherein:
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
DETAILED DESCRIPTION
[0028]
[0029] Further provided is an assembly 6 comprising both a temperature-sensing device 7 and a rotor-sensing device 8. The temperature-sensing device 7 is used to sense a temperature of the stator, in this case a temperature at the winding 4. The rotor-sensing device 8, which has a corresponding rotor position sensor that senses a component arranged on the rotor and rotating with it, is used to sense the rotational speed and/or rotational position of the rotor relative to the stator 2. The functions of the two separate devices are also well known.
[0030] Both devices 7, 8 are part of a common assembly 6, i.e., to be mounted as a single component, although the two devices 7, 8 are detachable from one another, i.e., both have separate housings which, as will be discussed below, can be detachably mounted to one another.
[0031] As will be discussed below, the temperature-sensing device 7 comprises a temperature sensor, while the rotor-sensing device 8 comprises a rotor state sensor. Both therefore supply corresponding sensor signals and must also be supplied with power, for which purpose a corresponding plug-in connection 9 is provided on the module 6, where a connection plug 10 is to be plugged in, from which connection lines 11 run to a downstream electrical or electronic device which is used for signal processing or control or for the power supply.
[0032]
[0033] The temperature sensor of the temperature-sensing device 7 is also correctly positioned after the assembly 6 has been mounted and, in the example shown, brought into defined contact with the inner circumference of the winding head 5, as shown in particular in
[0034] This is shown in detail in
[0035]
[0036] Finally,
[0037] As already described above, the temperature-sensing device 7 and the rotor-sensing device 8 are detachable from one another, for which purpose on the one hand the temperature-sensing device 7 has a housing 14, and on the other hand the rotor-sensing device 8 has a corresponding housing 30. In order to connect both housings 14, 30 to one another in a simple manner, but at the same time, as will be discussed below, to realize an electrical connection of the temperature sensor 16 to a downstream electrical or electronic device via the plug-in connection 9, the temperature-sensing device 7 or the housing 14 has a coupling portion 19 with a U-shaped cross-section, which has two legs 20, on the inner sides of which two contact elements 21 (which are partly shown dashed in
[0038] The rotor-sensing device 8 or its housing 30 has a connecting portion 22, see
[0039]
[0040] At the sensor portion 13, the temperature sensor 16, for example an NTC resistive element, sometimes also called an NTC pearl, which is embedded in silicone for protection purposes, for example, is arranged at its tip. Here, the temperature sensor 16 is connected to two contact shoes 25 via two connection lines 24. The contact shoes 25 are attached to the sensor portion 13.
[0041] To move the sensor portion 13 relative to the housing 14, two electrically conductive spring elements 26 are provided here in the form of helical springs 27, the lower end of which rests against the contact shoes 25, thus spring loading them. The other ends of the spring elements 26 are supported on further contact shoes 28, which contact shoes 28 are fixed in the housing 14 and are connected to the two contact elements 21.
[0042] The two spring elements 26 have a dual function. On the one hand, they spring the sensor portion 13, thus continuously quasi pressing it out of the housing 14. The sensor portion 13 can be pressed into the housing portion 15 against the restoring force of the spring elements 26. On the one hand, this ensures automatic positioning of the sensor portion 13 and thus of the temperature sensor 16 in relation to the component whose temperature is to be sensed, in this case the winding head 5, and a defined contact. In addition, as a second function, the two spring elements 26 also serve as electrically conductive transmission elements after they electrically connect the contact shoes 25 and 28 to one another. For this purpose, the spring elements 26 are made of a conductive material, usually metal, so that a signal transmission from the temperature sensor to the downstream electrical or electronic device and vice versa as well as a power supply or the like is possible via this. Any cable connection is therefore not required in this region.
[0043] Instead of a helical spring 27 as the spring element 26, it is also conceivable to use an electrically conductive elastomer element, for example made of a silicone elastomer, which fulfills the tasks of spring loading and of the electrically conductive connection.
[0044] Finally,
[0045] Finally, there is also the possibility of providing the sensor portion 13 with a copper core via which the temperature can be conducted to the temperature sensor, wherein another conductive material can also be used.
[0046] As the above description of figures shows, the electrical machine according to the disclosure has a number of advantages over known electrical machines. The use of only one assembly group for the two sensing devices means that less assembly work is required, and fewer screw connections have to be made. In particular, an automatic assembly process is possible. Due to the smaller number of components, there are also fewer tolerances to compensate for. Any tolerances in the area of the temperature sensor positioning are compensated for by the integrated elasticity or spring loading of the sensor portion comprising the temperature sensor. Also, only one cable duct is required, since a common plug-in connection is provided as the connection of the two sensing devices to a downstream electrical or electronic device via only one, for example, 8-pin plug. Finally, since only one assembly is positioned, there is less machining to be done on the relevant components, especially the cover to which the assembly is attached. Another important advantage is that there is also no need to provide separate lines to connect the temperature sensor to the downstream electronic or electrical equipment.
LIST OF REFERENCE SYMBOLS
[0047] 1 Machine [0048] 2 Stator [0049] 3 Cover [0050] 4 Winding [0051] 5 Winding head [0052] 6 Assembly [0053] 7 Temperature-sensing device [0054] 8 Rotor-sensing device [0055] 9 Plug-in connection [0056] 10 Connection plug [0057] 11 Connection line [0058] 12 Connecting screw [0059] 13 Sensor portion [0060] 14 Housing [0061] 15 Portion [0062] 16 Temperature sensor [0063] 17 Stop element [0064] 18 Longitudinal slot [0065] 19 Coupling portion [0066] 20 Leg [0067] 21 Contact element [0068] 22 Connecting portion [0069] 23 Connection element [0070] 24 Connection line [0071] 25 Contact shoe [0072] 26 Spring element [0073] 27 Helical spring [0074] 28 Contact shoe [0075] 29 Lug [0076] 30 Housing