1. Field of the Invention
The present invention relates to a battery pack assembly for providing electrical power.
2. Description of the Prior Art
It is well known to combine a number of stacks, each including a number of individual cells, for providing electrical power. Heat is generated as electrical current flows into and out of the cells. If the heat is not effectively managed, it can have a significant negative impact on the performance and lifetime of the cells and of the battery pack assembly as a whole. Limiting the temperature difference along the exterior of each of the cells in the stacks can be important in maximizing the performance and lifetime of the entire battery pack assembly.
To maintain the battery packs and the cells at a desired temperature, a cooling system is often provided within the battery pack assembly. Conventionally, these cooling systems pass air over and around the battery packs and the cells. In this type of system, the cooling air absorbs heat as it passes over the cells. Co-pending Delphi patent application docket number DP-316597 in the name of the same inventor herein, discloses a cooling system including an air inlet chamber and a slot. The air flows circumferentially around the walls of the cells from the air inlet chamber to the slot to cool the cells.
U.S. Patent Application No. 2007/0046259 to Hideo Shimizu discloses a battery pack assembly including a plurality of stacks and a casing enclosing the stacks. The gap between the slots of the casing and the cells of the stacks serially decreases as the air flows in series circumferentially along a plurality of stacks. The velocity of the flow of air increases as the gap between the casing and the cells decreases.
As the cooling air warms, its capacity to pick up heat decreases, thereby creating cooler temperatures near the air inlet chamber and warmer temperatures near the exit.
The invention provides for such a battery pack assembly and including a plurality of flow interrupters disposed on either the cell wall or the plastic casing around the cell. The flow interrupters are circumferentially spaced from each other and extend radially in the gap between the cell wall and plastic casing to disrupt the flow of air from the air inlet chamber to the exit.
The primary function of the flow interrupters is to provide a boost to the heat transfer coefficient of the air thereby increasing the amount of heat transferred from the cells to the air adjacent those flow interrupters at low overall pressure drop penalty. In addition, they can also serve as weight bearing posts to support the weight of the cells and can act as spacers to maintain the gap between the cell wall and the plastic case to permit airflow.
Other advantages of the present invention will be readily appreciated, as the same becomes better understood by reference to the following detailed description when considered in connection with the accompanying drawings wherein:
Referring to the Figures, wherein like numerals indicate corresponding parts throughout the several views, the invention includes a battery pack 20 assembly for providing electrical power.
The battery pack assembly includes a battery pack 20, generally shown, including an upper stack 22 and a lower stack 24 extending in spaced and parallel relationship along a cell axis A. The battery pack 20 defines an air path extending along and between the stacks 22, 24 for cooling. Each of the stacks 22, 24 includes a plurality of cylindrical cells 26 for storing and transmitting electrical power, and each of the cells 26 has an anode 28 disposed at one end and a cathode 30 disposed at the other end. The cells 26 are arranged in cathode-to-anode relationship as is well known in the art. As such, the cells 26 of each of the stacks 22, 24 are connected to one another in electrical series connection. The anodes 28 of the cells 26 in the upper stack 22 face in one direction while the anodes 28 in the lower stack 24 face in the opposite direction, as is illustrated in
The battery pack 20 further includes a casing 32, generally indicated, nesting and enclosing the upper and lower stacks 22, 24 and having a front and a back. As best shown in
The semi-cylindrical section 42 adjacent the upper stack 22 defines a plurality of upper slots 44 and the semi-cylindrical section 42 adjacent the lower stack 24 defines a plurality of lower slots 46. The upper and lower slots 44, 46 discharge the flow of air from the casing 32.
The casing 32 defines a plurality of reverse-L-shaped pieces 56, generally indicated, each having a long leg 48 extending tangentially from one of the semi-cylindrical sections 42 to a short leg 50 extending transversely and spaced from a remainder portion 52 of the stack for creating an enclosed space around the perimeter of each of the stacks 22, 24 to define an air inlet chamber 54 extending axially from the air inlet 40 of the front end cover 36 to the closed back end cover 38. Each of the air inlet chambers 54 is defined by the long leg 48 and the short leg 50 and the cylindrical cell walls 34 of the remainder portion 52 of the associated stack. The air inlet chambers 54 are in fluid communication with the air inlet 40 of the front cover to receive the flow of air therefrom. The semi-cylindrical sections 42 and the reverse-L-shaped pieces 56 of the casing 32 combine to completely enclose the upper and lower stacks 22, 24.
In operation, the flow of air enters the casing 32 through the air inlet 40 of the front end cover 36. The flow of air then flows axially through the air inlet chamber 54 and circumferentially through the gaps 37 between the cell walls 34 and the casing 32 to be discharged through the upper and lower slots 44, 46 of the casing 32.
A plurality of flow interrupters 60 are disposed on either the cell walls 34 or the casing 32. The flow interrupters 60 are circumferentially spaced from each other and extend into the gap 37 toward the other of the cell walls 34 and the casing 32 for disrupting the flow of air from the air inlet chambers 54 to the upper and lower slots 44, 46. In other words, as the flow of air travels circumferentially along the cell 26 from the air inlet chamber 54 to the associated one of the upper and lower slots 44, 46, it is disrupted by the flow interrupters 60 to provide a boost in the heat transfer coefficient of the air and thus increase the amount of heat transferred from the cells 26 to the air adjacent those flow interrupters 60.
The flow interrupters 60 are spaced a predetermined distance from each other with the distance being greater adjacent the air inlet chamber 54, which is the remainder portion 52 of the cells 26, and serially decreasing circumferentially to the upper and lower slots 44, 46. The flow interrupters 60 are close together adjacent the upper and lower slots 44, 46 because the air is the warmest at those locations. Having a decreased distance between flow interrupters 60 increases the rate of heat transfer to the warmer air, thereby providing a more even cooling rate across the cell walls 34. In other words, the variable spacing between the flow interrupters 60 along the circumference of the stacks 22, 24 allows the flow of air to cool the cells 26 at a more even rate across the circumference of the cell walls 34. The flow interrupters 60 work more efficiently if made integral to the cell wall 34. However, sometimes due to OEM constraints, no enhancement to the cell wall 34 is possible, and one has to live with a flat cell wall surface 34. In that case, the flow interrupters 60 are molded onto the plastic case 32.
The flow interrupters 60 can be all in line, as shown in
Each of the gaps 37 may have a cross-section that varies in size. For example, as shown in
In the third embodiment of
As seen in
Flow interrupters 60 of the above embodiments are ribs placed perpendicular to the air stream to interrupt the flow and thus enhance heat transfer by increasing the local heat transfer coefficient of cooling air. The flow interrupters 60 can be employed in ways, built on the cell wall 34 (best shown in
While the invention has been described with reference to an exemplary embodiment, it will be understood by those skilled in the art that various changes may be made and equivalents may be substituted for elements thereof without departing from the scope of the invention. In addition, many modifications may be made to adapt a particular situation or material to the teachings of the invention without departing from the essential scope thereof. Therefore, it is intended that the invention not be limited to the particular embodiment disclosed as the best mode contemplated for carrying out this invention, but that the invention will include all embodiments falling within the scope of the appended claims.