The present invention relates to a system for providing redundant electric power to at least one vehicle component and a method of using this system. The present invention relates particularly to a redundant electric power supply system.
In recent times, many system components and actuators in commercial vehicles are being replaced by electric systems. This relates in particular to electric and hybrid vehicles that need a different vehicle infrastructure, which is not anymore based on pressurized air as primary energy source. Nevertheless, also the electric systems shall provide the same safety level as the conventional systems.
Safety relevant functions in vehicles are particularly the braking and steering. To meet the safety requirements, it is typically required to have a redundant electric power management system with a high safety level—in particular for an automated driving the safety requirements are very high.
A conventional power system is disclosed in DE 10 053 584 A1, wherein a first and second voltage supply are connected via a decoupling element, and safety relevant loads are coupled over further decoupling elements to the voltage supply. Another conventional power system is disclosed in DE 10 2013 218 576, wherein a plurality of energy storage devices is arranged in parallel so that in case of a failure, one of the other voltage supplies can be engaged.
However, there is a demand for further systems that are able to provide information regarding the condition of the energy storage units continuously and in a redundant way to meet the high safety requirements in automotive applications.
At least some of these problems are overcome by a system or a method according to the independent claims. The dependent claims refer to further advantageous realizations of the subject matter of the independent claims.
Embodiments of the present invention relate to a system for providing redundant electric power to at least one vehicle component (consumer). The system comprises at least one power management unit connectable to a vehicle power network, and one or more storage units coupled to the at least one power management unit for receiving electric power to be stored in the one or more storage units. The at least one vehicle component is connectable to at least two of the storage units to enable a redundant electric power supply.
Optionally, the at least one power management unit comprises at least one of the following components: a charging unit for providing a charging power to the one or more storage units, a switching unit for (selectively) interrupting a connection to one or more of the storage units, and a logic circuit for controlling the charging unit and/or the switching unit.
Optionally, one power management unit is coupled to multiple storage units and the switching unit may be adapted to interrupt one or more of the storage units coupled to the one power management unit.
Optionally, the multiple storage units comprise each a storage element and a further logic circuit for monitoring a state of the storage element.
Optionally, each of the power management units is associated with one of the storage units with a storage element. The logic circuit of the power management unit may be adapted to monitor a state of the storage element in the associated storage unit.
Optionally, at least some of the storage units comprise one or more terminals for connecting safety relevant vehicle components and/or other vehicle components. The terminals may enable voltage supplies for different voltages values for the vehicle component(s).
Optionally, the system comprises a (redundant) vehicle communication network. At least one of the logic circuits of the power management units may be adapted to provide status information about the storage units to the vehicle communication network.
Further embodiments relate to a vehicle, in particular to a commercial vehicle, with at least one vehicle component and a system as defined before which is suitable for providing redundant electric power to the least one vehicle component.
Further embodiments relate to a method for providing redundant electric power to at least one vehicle component. The method comprises:
This method or part thereof may also be implemented or caused by software or a computer program product. Embodiments of the present invention can, in particular, be implemented by software or a software module in an ECU of the vehicle.
Embodiments of the present invention overcome issues of the conventional systems by providing an intelligent electric energy management solution that meets high levels of security by enabling a continuous information flow regarding the condition of the energy storage units for the vehicle via a redundant communication network. Therefore, embodiments provide a board network system which is in particular suitable for safety relevant applications (for example in braking or steering systems).
Some examples of the systems and/or methods will be described in the following by way of examples only, and with respect to the accompanying figures.
The power management unit 3 comprises a charging unit 4 which is adapted to carry out the charging of the storage units 7. The power management unit 3 further comprises a logic circuit 5 that monitors the charging as well as determines status information about the storage units 7 (for example the charge level of the storage cells 9 within the storage units 7) and may provide this information to the vehicle communication network 2. The power management unit 3 finally comprises at least one switching unit 6 which is configured to interrupt the connection between the power management unit 3 to one or more of the storage cells 9. The interruption is controlled by the logic circuit 5 and ensures that in case of a malfunctioning, for example within the storage units 7, the respective storage unit 7 or at least the storage cell 9 can be disconnected from the system. For this, each storage unit 7 may include a further logic circuit 8.
Each of the storage units 7 or a subset thereof may comprise one or more terminals to connect vehicle components 10, 11 to the respective storage unit(s) 7. The vehicle components 10, 11 may relate to safety relevant vehicle components 10 and other vehicle components that consume the stored power. As a result, a safety relevant vehicle component 10 can be connected different storage units 7 so that even in case of a malfunctioning of one or some of the storage units 7, the power supply to the safety relevant vehicle component 10 can still be maintained. Even if one storage unit 7 is down, the logic circuits 5, 8 will replace the “missing” power through the other storage units 7 connected to the vehicle component 10. Hence, a safe power supply can be maintained up to a needed level.
In the embodiment of
Again, safety relevant vehicle components 10 can be connected to various storage cells 7 in order to ensure a redundant power supply to the safety relevant vehicle component(s) 10. The redundant voltage supply through the various terminals of the storage units 7 may also enable a supply for different voltage values.
Both embodiments are powered by the electric board network 1 of the vehicle and can provide energy storage status information over a redundant vehicle communication network 2.
It is understood that not all of the storage cells 9 need to be connected to the vehicle component(s) by respective terminals. Instead a grouping of storage units 7 or storage cells 9 can be arranged. For example, a connection can be provided between different storage units 7 to keep the voltages at the different storage units at the same or at a desired level. Likewise, an active charge balancing unit can be formed between the different storage units 7. The storage cells 9 can be any electrical component that is able to store electric energy and may include one or more battery cells.
The power management unit(s) 3 in both embodiments is/are responsible for keeping a charge level of the energy storage cells 9 in each electric energy storage circuit at a target level to guarantee the availability for the safety relevant consumers 10. Moreover, the power management unit 3 is responsible for monitoring the energy storage and provides respective status information about the available energy and remaining functionality (for example the number or amount of remaining braking cycles or steering maneuvers that are still possible).
The intelligent electric energy storage units 7 are responsible for providing energy for safety relevant consumers 10 and other consumers 11—even on different/mixed voltage levels if needed. These voltage levels are produced from electrical components that store the potential energy. The further logic circuit 8 monitors the circuit outputs and charge levels of the storage components 9, collects the respective data and provides it to the power management unit 3. According to further embodiments, it is also possible to provide different voltage levels at the output terminals for different consumers (vehicle components) from the same circuit (the same power supply).
In the embodiment of
Through the constant monitoring using the logic circuits 5, 8 embodiments are able to provide likewise a protection with respect to overcharging, overcurrent or a pre-charge protection. Furthermore, an energy storage charge balancing made possible by corresponding connections via charge balancing units between the output terminals.
The safety switches (for example the switch unit 6) provide another advantage of embodiments, because they are able to separate immediately some or a single circuit or component in case of any failure or malfunctioning. As a result, the failure will not have an adverse effect on any other component and the system according to embodiments is actually a fail-operational power supply suitable in particular for safety relevant applications. The power supply according to embodiments is thus particularly suited as backup energy that can be provided to any safety relevant consumer in case any single failure occurs in the electric energy supply system.
Further advantageous embodiments relate to the following subject matters:
The description and drawings merely illustrate the principles of the disclosure. It will thus be appreciated that those skilled in the art will be able to devise various arrangements that, although not explicitly described or shown herein, embody the principles of the disclosure and are included within its scope.
Furthermore, while each embodiment may stand on its own as a separate example, it is to be noted that in other embodiments the defined features can be combined differently, i.e. a particular feature descripted in one embodiment may also be realized in other embodiments. Such combinations are covered by the disclosure herein unless it is stated that a specific combination is not intended.
1 vehicle power network
2 vehicle communication network
3 power management unit(s)
4 charging unit(s)
5 logic circuit(s)
6 switching unit(s)
7 storage units
8 further logic circuit(s)
9 storage elements/battery cells
10, 11 vehicle components (consumers)
Number | Date | Country | Kind |
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18195131.0 | Sep 2018 | EP | regional |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2019/073671 | 9/5/2019 | WO | 00 |