ELECTRIC POWER SYSTEM
20210206275 · 2021-07-08
Inventors
Cpc classification
B60L3/0092
PERFORMING OPERATIONS; TRANSPORTING
B62D1/184
PERFORMING OPERATIONS; TRANSPORTING
F02N11/0866
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60R16/033
PERFORMING OPERATIONS; TRANSPORTING
B60L1/003
PERFORMING OPERATIONS; TRANSPORTING
F02N2011/0885
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02N2011/0888
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
B60L1/00
PERFORMING OPERATIONS; TRANSPORTING
B60L3/00
PERFORMING OPERATIONS; TRANSPORTING
B60R16/033
PERFORMING OPERATIONS; TRANSPORTING
F02N11/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02J7/34
ELECTRICITY
Abstract
An electric power system for a vehicle having an advanced driver assistance system (ADAS). The electric power system includes a first power source arranged for supplying electric power to the ADAS. The electric power system includes a second power source arranged for supplying electric power to the ADAS.
Claims
1. An electric power system for a vehicle having an advanced driver assistance system (ADAS), the electric power system comprising a first power source arranged for supplying electric power to the ADAS, wherein the electric power system comprises a second power source arranged for supplying electric power to the ADAS, and the electric power system comprises a super capacitor arranged to be charged by the first power source and arranged to supply electric power to a starter motor of the vehicle
2. The electric power system according to claim 1, wherein the system comprises a super capacitor module, the super capacitor module comprising the super capacitor and a first switch.
3. The electric power system according to claim 1, wherein the super capacity module is configured to control the first switch to connect the super capacitor to the first power supply line when a voltage of the super capacitor is below a threshold value.
4. The electric power system according to claim 2, wherein the super capacitor is configured to be charged by the first power source while being connected to the first power supply line.
5. The electric power system according to claim 2, wherein the super capacity module is configured to control the first switch to disconnect the super capacitor from the first power supply line when the super capacitor has been charged to a predetermined level.
6. The electric power system according to claim 1, wherein the super capacitor module further comprises a second switch.
7. The electric power system according to claim 6, wherein the super capacity module is configured to control the second switch to connect the super capacitor to a starter motor when a connect request is received.
8. The electric power system according to claim 6, wherein the super capacity module is configured to control the second switch to connect the super capacitor to the starter motor when a connect request is received only if the super capacitor has a voltage level higher than a first voltage threshold value.
9. The electric power system according to claim 7, wherein the connect request is received from a control unit, such as a control unit for stop-start of the vehicle.
10. The electric power system according to claim 6, wherein the super capacity module is configured to control the second switch to disconnect the super capacitor from the starter motor when a disconnect request is received.
11. The electric power system according to claim 10, wherein the disconnect request is received from a control unit, such as a control unit for stop-start of the vehicle.
12. The electric power system according to claim 11, wherein the disconnect request is received when the control unit has determined that an internal combustion engine of the vehicle is running.
13. The electric power system according to claim 1, wherein the first power source is arranged for supplying power to at least one electric load of the ADAS and the second power source is arranged for supplying electric power to said at least one electric load.
14. The electric power system according to claim 3, wherein said at least one electric load is an electric control unit controlling a steering actuator function of the ADAS.
15. The electric power system according to claim 14, wherein said at least one electric load is an electric control unit controlling a front sensing function of the ADAS.
16. The electric power system according to claim 1, wherein the first power source is arranged for supplying power to a first electric load of the ADAS and the second power source is arranged for supplying power to a second load of the ADAS.
17. The electric power system according to claim 16, wherein the first electric load is an electric control unit controlling a primary braking actuator function of the ADAS and the second electric load is a control unit controlling a secondary braking actuator function of the ADAS.
18. The electric power system according to claim 17, wherein the first electric load is a primary calculation unit for providing actuation based on input from a primary sensor of the ADAS and the second electric load is a secondary calculation unit for providing actuation based on input from a secondary sensor of the ADAS.
19. The electric power system according to claim 1, wherein the first power source and/or the second power source is a DC-to-DC converter.
20. The electric power system according to claim 19, wherein the DC-to-DC converter and/or the second power source is arranged for converting a first voltage to a second lower voltage supplied to the ADAS.
21. The electric power system according to claim 1, wherein the electric power system has an electric battery, the electric battery being arranged to be charged by the first power source or by the second power source and for supplying electric power to the ADAS.
22. A vehicle having an advanced driver assistance system (ADAS) and an electric power system according to claim 1.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0030] With reference to the appended drawings, below follows a more detailed description of embodiments of the invention cited as examples.
[0031] In the drawings:
[0032]
[0033]
[0034]
[0035]
[0036]
[0037]
[0038]
DETAILED DESCRIPTION
[0039]
[0040]
[0041] The first power source 4 and the second power source 5 are independent of each other for supplying power independently to the ADAS 2. The first power source 4 is electrically connected to the ADAS 2 by a first power supply line 8 and the second power source 5 is electrically connected to the ADAS 2 by a second power supply line 9.
[0042] The ADAS 2 can comprise one or more functions and electric loads associated to the functions. The detailed architecture and components of ADAS, such as actuators, control units and sensors, are not further described hereinafter, since these should be known by the person skilled in the art.
[0043] Thus, one or more ADAS-loads can be connected between the voltage level provided by the power sources and earth.
[0044] By the expression independent power sources is meant that each power source 4, 5 has an output for supplying electric power. In the example embodiment illustrated in
[0045] Further, if the first power source 4 is a DC-to-DC converter and the second power source 5 is a DC-to-DC converter, the converters can be powered by the same power source 12 providing the first higher voltage 6, or the converters can be powered by two separate power sources each providing the first higher voltage. In the example embodiment illustrated in
[0046] The first higher voltage 6 that constitutes input to the DC-to-DC converters can be for example 400V or 48V.
[0047]
[0048]
[0049] With further reference to
[0050]
[0051]
[0052] When the super capacitor 24 has been charged it can be disconnected from the first power supply line 8. In some embodiments, when the super capacitor 24 has been charged to a predetermined level, the super capacity module 23 is configured to control the first switch 26 to disconnect the super capacitor 24 from the first power supply line 8. Hereby, the super capacitor 24 is not overcharged and unnecessarily worn. The charged super capacitor 24 can then be electrically connected to the starter motor 19 for supplying electric power to the starter motor 19 if requested. In some embodiments, the connection to the starter motor 19 is performed by the second switch 28. The super capacity module 23 is then configured to control the second switch 28 to connect the super capacitor 24 to the starter motor 19 when a request, such as a connect request, is received. Hereby, the super capacitor 24 can be utilized to power the starter motor 19. In some embodiments, the super capacity module 23 is configured to control the second switch 28 to connect the super capacitor 24 to the starter motor 19 when a connect request is received only if the super capacitor 24 has a voltage level higher than a first voltage threshold value. In some embodiments, such a voltage threshold value indicates that the super capacitor 24 is sufficiently charged. Hereby, the super capacitor 24 is only utilized to power the starter motor 19 when it is sufficiently charged.
[0053] In some embodiments, the connect request is received from a control unit, such as a control unit for stop-start of the vehicle. Hereby, the starter motor 19 can be powered by the super capacitor 24 during driving of a vehicle 1, such as when starting up the vehicle 1 after a stop, which may include a stop or turn off of the motor or engine, at a red light without affecting the voltage stability of the remaining electric system.
[0054] Furthermore, in some embodiments, the super capacity module 23 is configured to control the second switch 28 to disconnect the super capacitor 24 from the starter motor 19 when a request, such as a disconnect request, is received. Hereby the super capacitor 24 is only connected to the starter motor 19 when needed and can at other times be charged instead of being connected to the starter motor 19. Such a disconnect request is, in some embodiments, received from a control unit, such as a control unit for stop-start of the vehicle.
[0055] In some embodiments, the disconnect request is received by the super capacity module 23 from the control unit, when the control unit has determined that an internal combustion engine of the vehicle 1 is running. Hereby, the super capacitor 24 is only connected to the starter motor 19 when needed to start an internal combustion engine and can other times be charged instead of being connected to the starter motor 19.
[0056]
[0057] It is to be understood that the present invention is not limited to the embodiments described above and illustrated in the drawings; rather, the skilled person will recognize that many changes and modifications may be made within the scope of the appended claims.