The invention relates to a battery module comprising a plurality of battery cells, wherein each battery cell comprises an individual voltage value, wherein the battery module comprises an output voltage value, wherein a connection of the battery cells is done such that each battery cell is assigned to a group, wherein each group contains the same number of battery cells, wherein the battery cells belonging to a group are connected in parallel, wherein the groups are connected in series, wherein various connection schemes with groups connected in series are possible.
The invention further relates to a method for producing a battery module, wherein the battery module comprises a plurality of battery cells, wherein each battery cell comprises an individual voltage value, wherein the battery module comprises an output voltage value, wherein the battery cells are electrically connected to each other such that each battery cell is assigned to a group, wherein each group contains the same number of battery cells, wherein the battery cells belonging to a group are connected in parallel, and wherein the groups are connected in series.
DE 10 2016 207 572 A1 discloses a battery module with a plurality of battery cells whose cell contacts are variably connectable to each other by cell connectors for generating a module voltage.
Often, a defined output or module voltage is required. In order to provide a module voltage that is lower than the maximum module voltage, in DE 10 2016 207 572 A1 the voltage is not tapped at all battery cells that are connected in series. At times, many battery cells are not in use at all in this context.
It is the object of the invention to further develop a battery module of the aforementioned kind such that different module voltages can be made available by utilizing all battery cells of the battery module.
In accordance with the invention, this is achieved by a battery module comprising a plurality of battery cells, wherein each battery cell comprises an individual voltage value, wherein the battery module comprises an output voltage value, wherein a connection of the battery cells is done such that each battery cell is assigned to a group, wherein each group contains the same number of battery cells, wherein the battery cells belonging to a group are connected in parallel, wherein the groups are connected in series, wherein various connection schemes forming groups connected in series are possible, wherein the battery module comprises in total precisely 144 battery cells that are connected to each other.
A further object of the invention resides in providing a method for producing a battery module with which different module voltages can be achieved by utilizing all battery cells of the battery module.
This object is solved by a method for producing a battery module, wherein the battery module comprises a plurality of battery cells, wherein each battery cell comprises an individual voltage value, wherein the battery module comprises an output voltage value, wherein the battery cells are electrically connected to each other such that each battery cell is assigned to a group, wherein each group contains the same number of battery cells, wherein the battery cells of a group are connected in parallel, and wherein the groups are connected in series, wherein the battery module comprises in total precisely 144 battery cells connectable to each other.
In respect to the battery module, the invention provides that the battery module comprises in total precisely 144 battery cells that are connected to each other. A connection of the battery cells is configured such that each battery cell is assigned to a group. Each group of battery cells contains the same number of battery cells. Each group of battery cells contains a battery number of battery cells. In this way, a simple configuration of the connection scheme is provided. The battery cells belonging to a group of battery cells are connected in parallel. The groups are connected in series. The battery module comprises a group number of groups of battery cells. For constructively identical battery cells that each have comparable voltage values, the groups that are connected in series will discharge in comparable time periods because each group contains the same number of battery cells. Various connection schemes are possible for providing groups that are connected in series.
Since precisely 144 battery cells are provided in total, the battery cells can be connected such that very many different output voltages of the battery module can be achieved. The invention is based on the recognition that the number 144 has a particularly large number of divisors. For a total number of battery cells of 144 in the battery module, despite the boundary conditions that each group must contain the same number of battery cells, very many combinations of battery numbers and group numbers are possible. In this context, every individual battery cell of the battery module is utilized.
Advantageously, the battery module provides different output voltage values as a function of the connection schemes. In this way, the battery module can be produced with the same spatial configuration in regard to the arrangement of the battery cells and still can provide different output voltages by a different connection scheme of the battery cells to each other. Many electrically different battery modules can be produced based on the same configuration in respect to the spatial arrangement of the battery cells. This saves production costs and increases the flexibility.
Advantageously, a total of precisely 15 different connection schemes of the 144 battery cells to groups that are connected in series are possible. Advantageously, precisely 15 different output voltages can be produced due to the different connection schemes. In this way, 15 different output voltages can be achieved while the arrangement of the battery cells in regard to the spatial configuration of the battery module remains the same.
Expediently, all battery cells of the battery module that are connected to each other are identical in configuration. An average voltage value of all battery cells results based on the individual voltage values of all battery cells that are connected to each other. In particular, the individual voltage values of all battery cells of the battery module that are connected to each other deviate by less than 10%, in particular by less than 5%, from the average voltage value of all battery cells.
Advantageously, the connection of the battery cells can be done such that the output voltage value amounts to one to 144 times the average voltage value of all battery cells. In this way, a large range of output voltage values can be produced with the battery module.
Expediently, the output voltage value corresponds to the product of the average voltage of all battery cells multiplied by 1, 2, 3, 4, 6, 8, 9, 12, 16, 18, 24, 36, 48, 72 or 144.
Advantageously, the battery number of battery cells of a group amounts to 1, 2, 3, 4, 6, 8, 9, 12, 16, 18, 24, 36, 48, 72 or 144. In particular, a group comprises precisely one battery number of battery cells. Expediently, the group number of groups amounts to 1, 2, 3, 4, 6, 8, 9, 12, 16, 18, 24, 36, 48, 72 or 144. In particular, the battery cells that are connected to each other are divided into precisely one group number.
Expediently, the product of battery number multiplied by group number amounts to 144.
Advantageously, the battery module comprises a battery cell support. In particular, the battery cells are arranged spatially unchanged in the battery cell support, independent of the different connection schemes. Even for a different selection of the connection scheme, the spatial arrangement of the battery cells in the battery cell support remains the same.
In an advantageous further embodiment of the invention, the battery module comprises contact paths. In particular, the connection of the battery cells is realized by means of contact paths. The contact paths can be arranged on a contact support. It is also possible to provide two contact supports. The positive pole of a battery cell is then facing the first contact support and the negative pole of the same battery cell is then facing the second contact support.
Expediently, all battery cells of the battery module are connected to each other. In this way, no resources are wasted and the entire power potential of the battery module can be tapped.
In an advantageous further embodiment of the invention, it is provided that the positive poles of 72 battery cells face in one pole direction and that the positive poles of the other 72 battery cells are facing in the opposite pole direction. In this way, the different groups of battery cells can be connected in a simple manner in series. For this purpose, a positive pole of a battery cell which is facing in pole direction can be connected with a negative pole of another battery cell that is also facing in pole direction. In this way, a contact path must not be guided in the pole direction or opposite to the pole direction along a battery cell.
Expediently, the battery cells are round cells.
Advantageously, the individual voltage values of all battery cells of the battery module that are connected to each other amounts to 2 V to 5 V, respectively, in particular 3 V to 4 V. For battery cells with such individual voltage values and a battery module with 144 battery cells, a battery module with a beneficial size is provided. For battery cells with such individual voltage values and a battery module with 144 battery cells, a battery module with a beneficial energy content is provided. In particular, the output voltage value amounts to 2 V to 720 V, preferably 3 V to 576 V.
According to the method of the present invention for producing a battery module with a plurality of battery cells, wherein each battery cell comprises an individual voltage value and wherein the battery module comprises an output voltage value, it is provided that the battery cells are connected electrically to each other such that each battery cell is assigned to a group. Each group contains the same number of battery cells. The battery cells of a group are connected in parallel. The groups are connected in series. The battery module in total comprises precisely 144 battery cells that are connected to each other. In this way, the battery module can be produced always in the same manner in regard to spatial arrangement of the battery cells. In spite of this, by means of different connection schemes of the individual battery cells very many different output voltage values can be achieved. In this way, costs can be saved for producing the battery module. Battery modules with very many different output voltages can be produced on the basis of the same configuration of the battery module with respect to the spatial arrangement of the battery cells.
In particular, different output voltage values of the battery module can be generated by different connection schemes of the battery cells with each other with a spatially unchanged arrangement of the battery cells.
Advantageously, the battery cells can be electrically connected in such a way with each other that a total of precisely 15 different output voltage values can be generated.
Embodiments of the invention will be explained in the following with the aid of the drawings.
The battery cell support 4 and the battery cells 2 form the basic shape of the battery module 1 with different output voltage values. The different output voltage values of the battery module 1 are achieved by differently connecting the individual battery cells 2 with each other. The spatial arrangement of the battery cells 2 in the battery cell support 4 remains unchanged in this context. All battery cells 2 of the battery module 1 that are connected to each other are of identical configuration. The individual voltages of all battery cells 2 of the battery module 1 that are connected to each other deviate respectively by less than 10%, in particular by less than 5%, preferably by less than 2%, from an average voltage value of all battery cells 2. The average voltage value of the battery cells 2 is the average value of the individual voltage values of 144 battery cells 2. The individual voltage values of all battery cells 2 of the battery module 1 that are connected to each other amount to 2 V to 5 V, in particular 3 V to 4 V, respectively.
The connection of the battery cells 2 with each other is realized in the embodiment by first contact paths 6 illustrated in
Due to the first contact paths 6 and the second contact paths 8, a connection scheme 11 of the battery cells 2 is realized which is illustrated schematically in
The connections of the battery cells 2 are configured such that each battery cell 2 is assigned to a group 3 (
The connection scheme via the first contact paths 6 and the second contact paths 8 according to
The battery module 1 comprises a total of precisely 144 battery cells 2 that are connected to each other. In the embodiments, all battery cells 2 of the battery module 1 are connected to each other. There are no battery cells provided that are not contributing to the output power of the battery module 1.
In
As can be seen in
Due to the alternate arrangement of the electrical poles of the battery cells 2 of neighboring rows, the first contact paths 6 and the second contact paths 8 can extend in a plane, respectively. It is not necessary that electrical poles of the battery cells 2 are connected by electrical connections in the direction of the pole direction 50. The electrical connection of the electrical poles in pole direction 50 in the embodiments is realized by the battery cells 2 themselves. In another arrangement of the poles of the battery cells 2, it can however also be provided that the connection of the battery cells 2 is realized by connecting lines which extend in pole direction 50 along the battery cells 2.
The battery module 1 provides different output voltage values as a function of the connection schemes. In total, precisely 15 different connection schemes of the 144 battery cells 2 to groups 3 connected in series are possible. Due to the different connection schemes, a total of precisely 15 different output voltages can be generated. In the embodiments according to
In the connection scheme 11 according to
Independent of the different types of connection schemes 11, 12, 13, the battery cells 2 are arranged spatially unchanged in the battery cell support 4 (
The output voltage value of the battery module 1 corresponds to the product of the average voltage value of all battery cells 2 multiplied by the number 1, 2, 3, 4, 6, 8, 9, 12, 16, 18, 24, 36, 48, 72 or 144. In the embodiment according to
One group 3 comprises a battery number of battery cells 2. The battery number amounts to 1, 2, 3, 4, 6, 8, 9, 12, 16, 18, 24, 36, 48, 72 or 144. Each group 3 of a battery module 1 contains the same battery number of battery cells 2. In the embodiment according to
The battery cells 2 that are connected to each other are divided into precisely one group number of groups 3. The group number amounts to 1, 2, 3, 4, 6, 8, 9, 12, 16, 18, 24, 36, 48, 72 or 144. In the embodiment according to
The battery cells 2 of the battery module 1 can be connected such that the group number is 1 and the battery number is 144. The battery cells 2 of the battery module 1 can be connected such that the group number is 2 and the battery number is 72. The battery cells 2 of the battery module 1 can be connected such that the group number is 3 and the battery number is 48. The battery cells 2 of the battery module 1 can be connected such that the group number is 4 and the battery number is 36. The battery cells 2 of the battery module 1 can be connected such that the group number is 6 and the battery number is 24. The battery cells 2 of the battery module 1 can be connected such that the group number is 8 and the battery number is 18. The battery cells 2 of the battery module 1 can be connected such that the group number is 9 and the battery number is 16. The battery cells 2 of the battery module 1 can be connected such that the group number is 12 and the battery number is 12. The battery cells 2 of the battery module 1 can be connected such that the group number is 16 and the battery number is 9. The battery cells 2 of the battery module 1 can be connected such that the group number is 18 and the battery number is 8. The battery cells 2 of the battery module 1 can be connected such that the group number is 24 in the battery number is 6. The battery cells 2 of the battery module 1 can be connected such that the group number is 36 and the battery number is 4. The battery cells 2 of the battery module 1 can be connected such that the group number is 48 and the battery number is 3. The battery cells 2 of the battery module 1 can be connected such that the group number is 72 and the battery number is 2. The battery cells 2 of the battery module 1 can be connected such that the group numbers is 144 in the battery number is 1.
The group number is proportional to the output voltage value of the battery module 1.
The battery number of battery cells 2 in a group 3 is proportional to the group current of this group 3. The battery number is proportional to the module current of the battery module 1.
The product of battery number multiplied by group number results is 144. This applies to all 15 connecting possibilities.
In the method for producing the battery module 1, the battery cells 2 are electrically connected to each other such that each battery cell 2 is assigned to a group 3. Each group 3 of battery cells 2 contains the same number of battery cells 2. The battery cells 2 of a group 3 are connected electrically in parallel to each other. The groups 3 are connected electrically in series. In total, 144 battery cells 2 are connected to each other. In total, precisely 144 battery cells 2 are connected to each other. The battery module 1 comprises precisely 144 battery cells 2.
Different output voltage values of the battery module 1 can be generated by different connection schemes 11, 12, 13 (
The connection is realized by the electrical connection of the positive poles of the battery cells 2 of the same group with a respective positive busbar 14 (
By producing the battery module 1 with the described method, based on a single battery support 4, battery modules 1 with 15 different output voltages can be produced. The manufacture of the battery support 4 is always the same. Its shape remains unchanged independent of the output voltage. The physical arrangement of the battery cells 2 in the battery support 4 remains unchanged. Only the connection scheme of the battery cells 2 is embodied differently.
The specification incorporates by reference the entire disclosure of European priority document 20 195 812.1 having a filing date of Sep. 11, 2020.
While specific embodiments of the invention have been shown and described in detail to illustrate the inventive principles, it will be understood that the invention may be embodied otherwise without departing from such principles.
Number | Date | Country | Kind |
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20 195 812.1 | Sep 2020 | EP | regional |