This application claims priority to German Patent Application No. DE 10 2017 216 841.2, filed on Sep. 22, 2107, the contents of which are hereby incorporated by reference in its entirety.
The present invention relates to a battery system. In addition, the invention relates to a vehicle in particular a hybrid or electric vehicle having such a battery system.
Battery systems in hybrid or electric vehicles are usually constructed of individual battery modules or battery cell modules. The individual battery modules can be employed in a module carrier with a battery system housing and preferentially mechanically connected to the battery system housing using multiple screw connections. Following this, the individual battery modules can be connected to the module carrier in separate assembly steps via a fluidic and electrical connection, wherein the fluidic connection is provided for cooling and the electrical connection for electrically contacting the individual battery modules.
Here it is disadvantageous in particular that the assembly is relatively expensive and involves major time expenditure. It is disadvantageous, furthermore, that the screw connections, the interconnections of the individual battery modules as well as the fluidic and electrical connection of the individual battery modules to the module carrier are often defective because of the complicated assembly. Constructions, which include a multiplicity of different operations, which additionally have to be executed sequentially one after the other and have to be mostly performed manually are highly susceptible to error in this case. The electrical connection of the individual battery modules to the module carrier is dangerous for the worker because of the danger of electrocution. A defective fluidic connection of the individual battery modules to the module carrier can result in a leakage and because of this in a battery system short circuit.
The present invention therefore deals with the problem of stating an improved or at least an alternative embodiment for a battery system, which in particular overcomes the above mentioned disadvantages.
According to the invention, this problem is solved through the subject matter of the independent claim(s). Advantageous embodiments are subject of the dependent claim(s).
The present invention is based on the general idea of providing a battery system with a battery system housing, at least one module carrier, at least one battery cell module and at least one locking lever, in the case of which the respective battery cell module contains a fluidic module cooling circuit and comprises a fluidic first module interface, which for fluidically connecting the module cooling circuit can be coupled to a fluidic first carrier interface formed on the module carrier. The respective battery cell module comprises an electrical second module interface for the electrical contacting, which can be coupled to an electrical second interface formed on the module carrier and serves for electrically connecting the individual battery module to the module carrier. The locking lever is pivotably mounted on the module carrier about a pivot axis between an open position and a locking position. In the open position of the locking lever, the respective battery cell module is insertable into the module carrier and removable there from, and in the locking position of the locking lever, the respective battery cell module is fixed on the module carrier. The respective battery cell module is insertable into the module carrier in a first assembly direction running transversely to the pivot axis. When inserting the battery cell module, the respective battery cell module assumes an intermediate position relative to the module carrier, in which the first module interface and the second module interface are orientated in a second assembly direction extending transversely to the first assembly direction and transversely to the pivot axis aligned with the carrier interface and with the second carrier interface and arranged spaced therefrom. In this intermediate position, the respective battery cell module is in engagement with the respective locking lever adjusted into its open position. By pivoting the locking lever, the respective battery cell module is adjusted in the second assembly direction relative to the module carrier into an end position. In this end position, the first module interface is coupled to the first carrier interface and the second module interface is coupled to the second carrier interface, as a result of which a fluidic and electrical connection of the respective battery cell module to the module carrier is ensured. The use of a battery system according to the invention is advantageous since for the assembly of the individual battery modules only a single operation instead of multiple operations is necessary, for which ideally no further operating facilities are necessary. This does not only ensure a quick and cost-effective assembly but also a quicker and more cost-effective exchange of defective battery cell modules in the event of maintenance. It is advantageous, furthermore, that the individual battery cell modules do not make possible any direct access to live parts, as a result of which a hazard to assembly and/or service personnel is reduced.
A possible embodiment proposes that the battery cell module comprises at least one pin projecting parallel to the pivot axis. The pin is arranged on the end of the battery cell module facing the module carrier.
Practically it can be provided, furthermore, that the locking lever comprises at least one pin receptacle. The pin receptacle is designed in such a manner that the pin can dip into the pin receptacle. When the locking lever is located in its open position, the respective battery cell module can be inserted in the module carrier with the pin in the first assembly direction. The respective battery cell module is in engagement in the intermediate position with the respective locking lever adjusted into its open position, wherein the pin of the battery cell module has dipped into the pin receptacle of the locking lever. When the locking lever comprises at least one pin receptacle, into which the pin of the battery cell module can dip, this is advantageous since by way of this it is ensured that the battery cell module is securely mounted in the module carrier against lateral slipping by the locking lever.
In a further configuration of the invention it can be provided that the locking lever comprises a slotted link which joins the pin receptacle. During the pivoting of the locking lever the slotted link guides the pin away from the pin receptacle of the locking lever. This is practical since by way of this it is ensured that by guiding the pin away from the pin receptacle the battery cell module, on which the pin is formed, is guided in the direction of the first and second carrier interface formed on the module carrier. The first fluidic module interface or the second electrical module interface of the battery cell module is/are correspondingly guided in the direction of the first and second carrier interface. When the pin, at the end of the pivot movement of the locking lever, is located at the end of the slotted link facing away from the pin receptacle, the first fluidic module interface is in contact with the first carrier interface of the module carrier and the second electrical module interface is in contact with the second carrier interface of the module carrier. In this case, the battery cell module is electrically and fluidically coupled to the module carrier.
A further advantageous embodiment proposes that the slotted link defines a curved track having a radius which decreases from the front end of the slotted link on the pin receptacle to the rear end of the slotted link to the pivot axis. It is advantageous that the slotted link defines a curved track since a curved track guides the pin with a lower resistance from the front end to the rear end of the slotted link than other geometries. By way of this it is ensured that the pin can be guided with as low as possible a force expenditure from the front end of the slotted link to the rear end of the slotted link. Because of this it is likewise ensured that the battery cell module can be moved with as low as possible a force expenditure in the second movement direction in the direction of the module carrier. The slotted link formed as a curved track and/or the pin formed on the battery cell module, furthermore, can be formed from a material having as low as possible a friction resistance or be coated with a material having as low as possible a friction resistance.
Preferentially it can be provided, furthermore, that the respective pin in the locking position of the locking lever is located parallel to the second assembly direction and aligned with the pivot axis.
In a further configuration of the invention it can be provided, furthermore, that the locking lever comprises a grip, by way of which the locking lever can be transferred into the locking position by exerting mechanical force. When the locking lever is in its open position and a battery cell module is inserted in the module carrier in a first assembly direction, the pin of the battery cell module in the pin receptacle is located at the front end of the slotted link. When a mechanical force is exerted on the locking lever in order to pivot the same, the pin is moved away from the pin receptacle to the rear end of the slotted link facing away from the front end. When the locking lever is transferred into the locking position, the pin is located at the rear end of the slotted link. When the locking lever is in the locking position, the battery cell module can be electrically and fluidically coupled to the module carrier. In other words: by exerting mechanical force on the locking lever, the battery cell module is moved in the second assembly direction in the direction of the module carrier and is fixed on the module carrier in the locking position of the locking lever.
Practically it can be provided, furthermore, that the grip of the locking lever rests on the battery system housing parallel to the second assembly direction when the locking lever is located in the locking position. This is advantageous since by way of this it is ensured that the grip of the locking lever does not obstruct the closing of the battery system housing when the locking lever is located in the locking position and the battery system is ready for operation.
A further possible embodiment proposes that the battery system housing has a geometry which prevents a closing of the battery system housing when the locking lever is not located in the locking position. Accordingly it is possible for example that the battery system housing is designed in such a manner that the battery system housing cannot be closed when the locking lever is located in the open position. When the locking lever is located in the open position or an intermediate position between the open position and the locking position, the grip of the locking lever prevents a closing of the battery system housing which has the consequence that the battery system cannot be operated. Alternatively, a safety signal could also be provided via an electrical switch which prevents “activating” the battery system, when the locking lever is located in the open position or an intermediate position and not in the locking position. When the battery system housing has a geometry which prevents a closing of the battery system housing when the locking lever is not located in the locking position, this is advantageous since by way of this it is ensured that the battery system housing can only be closed in particular when the locking lever is located in the locking position and thus the battery cell module can be electrically and fluidically coupled to the module carrier and the battery system is accordingly ready for operation.
Further important features and advantages of the invention are obtained from the subclaims, from the drawings and from the associated figure description by way of the drawings.
It is to be understood that the features mentioned above and still to be explained in the following cannot only be used in the respective combination stated but also in other combinations or by themselves without leaving the scope of the present invention.
Preferred exemplary embodiments of the invention are shown in the drawings and are explained in more detail in the following description, wherein same reference characters relate to same or similar or functionally same components.
It shows, in each case schematically,
According to
The respective battery cell module 3 contains a fluidic module cooling circuit which is not noticeable here in more detail, which for example comprises a fluid line and a heat exchanger region incorporated therein, and comprises a fluidic first module interface 8 that is complementary to the first carrier interface 5, via which the battery cell module 3 can be coupled to the module carrier 2 and is fluidically connected to the same. The respective battery cell module 3, furthermore, comprises an electrical second module interface 9 that is complementary to the second carrier interface 6, via which the battery cell module 3 can be coupled to the module carrier 2 and can be electrically contacted.
The locking lever 4 is pivotably mounted on the module carrier 2 about a pivot axis 10 at the attachment points 7. When the locking lever 4 is located in the open position (see
The battery cell module 3 comprises at least one pin 13 projecting parallel to the pivot axis 10. The locking lever 4 comprises a pin receptacle 14 that is complementary to the pin 13, into which the pin 13 in the open position of the locking lever 4 dips in the first assembly direction 11 (see
A battery system 19 according to the invention is arranged in a vehicle 20, in particular in a hybrid or electric vehicle and consists of any number of battery cell modules 3 and module carriers 2, wherein the any number of battery cell modules 3 and module carriers 2 are enclosed by the battery system housing 1.
Number | Date | Country | Kind |
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102017216841.2 | Sep 2017 | DE | national |