Energy accumulator module
An energy storage module having a plurality of stacked flat cells. The energy storage module has an interconnection formed in such a way that the energy storage module can be connected mechanically, electrically and/or for exchanging coolant with at least one other energy storage module of the same kind.
1. An energy storage module comprising:
a plurality of flat cells arranged in a flat-cell stack;
a plurality of resilient elements; and
a plurality of pressure plates, each of the pressure plates comprising a plurality of attachment brackets, ones of the attachment brackets protruding from an edge of the pressure plate in a first direction and others of the attachment brackets protruding from an opposite edge of the pressure plate in a second direction opposite to the first direction, the pressure plates being arranged at opposing ends of the flat-cell stack and being connected to each other via the resilient elements respectively connected to the attachment brackets such that the pressure plates exert pressure on the flat-cell stack,
wherein the ones of the attachment brackets protruding from the edge and the ones of the attachment brackets protruding from the opposite edge are alternately arranged at different heights along the pressure plate in a third direction, the third direction being perpendicular to the first and second directions.
2. The energy storage module of claim 1 , wherein each of the pressure plates comprises a plurality of attachment flanges protruding from the edge and the opposite edge of the pressure plate, the attachment flanges being configured to be connected to other attachment flanges of an other energy storage module.
3. The energy storage module of claim 2 , wherein one of the attachment flanges and one of the attachment brackets protruding from the edge form a first space configured to accommodate an attachment bracket of the other energy storage module when the attachment flange is connected to the other attachment flange.
4. The energy storage module of claim 3 , wherein the first space is arranged at the height of the attachment bracket protruding from the opposite edge.
5. The energy storage module of claim 2 , wherein the resilient elements connected to the attachment brackets protruding from the edge are spaced from each other to form a second space configured to receive an other resilient element of the other energy storage module when the attachment flange is connected to the other attachment flange.
6. The energy storage module of claim 1 , wherein a portion of each of the attachment brackets extends parallel to a stacking direction of the flat-cell stack.
7. The energy storage module of claim 1 , further comprising a cooling system through which a coolant passes, the cooling system comprising a plurality of connectors configured to be connected to a cooling system of an other energy storage module.
8. The energy storage module of claim 1 , further comprising an interconnection board comprising a plurality of slots, each of the slots being configured to receive an electrode tab of one of the flat cells.
9. The energy storage module of claim 8 , wherein the interconnection board is arranged above the flat-cell stack in the third direction.
10. The energy storage module of claim 9 , wherein each of the flat cells comprises a depressed portion, the depressed portion being beneath the interconnection board and above the pressure plates in the third direction.
11. The energy storage module of claim 1 , further comprising a resilient plate coupled to the pressure plates,
wherein the resilient plate is arranged at a height different from the heights of the attachment brackets protruding from the edge in the third direction.