This application claims priority to and the benefit of Korean Patent Application No. 10-2020-0127973, filed on Oct. 5, 2020, the entire contents of which are incorporated herein by reference.
The present disclosure relates to a battery module including a stacked structure in which a plurality of battery cells is stacked.
The statements in this section merely provide background information related to the present disclosure and may not constitute prior art.
Recently, in accordance with the global trend of reducing carbon dioxide emissions, there has been increasing demand for electric vehicles that generate driving power by driving a motor using electric energy stored in an energy storage device such as a battery instead of a typical internal combustion engine vehicle that generates driving power through combustion of fossil fuels.
The performance of electric vehicles is highly dependent upon the capacity and performance of the battery corresponding to an energy storage device that stores electrical energy provided to a driving motor.
A battery for a vehicle for storing electrical energy supplied to a motor in order to generate driving power of the vehicle needs to have excellent electrical properties, such as excellent charge and discharge performance and long use lifespan, and to also ensure performance at a high level in terms of a mechanical aspect, which is robust to a severe driving environment, such as high temperature and high vibration.
We have discovered that it is advantageous for manufacturers of vehicles to use a module type battery with a standardized size and capacity so as to be consistently applied to various types of vehicles.
The contents described as the related art have been provided only to assist in understanding the background of the present disclosure and should not be considered as corresponding to the related art known to those having ordinary skill in the art.
The present disclosure provides a battery module having a standardized size and capacity to be consistently applied to various types of vehicles.
In particular, the present disclosure provides a battery module for maintaining the durability of a cell by applying a uniform pressure to a battery cell stacked structure while preventing a battery cell module from being damaged when swelling of a battery cell occurs.
According to one form of the present disclosure, a battery module includes: a plurality of battery cells stacked on one another in a first direction and respectively including electrodes arranged in a second direction perpendicular to the first direction, a pair of end plates that are respectively surface-bonded to opposite ends of a stacked structure of the plurality of battery cells in the first direction, a first clamp including opposite ends that are respectively bonded to the pair of end plates across a first surface of the stacked structure, and a second clamp including opposite ends that are respectively bonded to the pair of end plates across a second surface of the stacked structure which faces the first surface adjacent to the first clamp.
The battery module may further include a first cover for covering the stacked structure of the plurality of battery cells in a third direction perpendicular to the first direction and the second direction, wherein the first clamp may be bonded to the first cover.
The opposite ends of the first clamp may be bent to face the pair of end plates and respectively come into contact with outer surfaces of the pair of end plates.
In one form, each of the opposite ends of the first clamp, which are bent to face the end plates, may include: a bonding surface bonded to a corresponding outer surface among the outer surfaces of the pair of end plates, and an extension that extends from opposite ends of the bonding surface in the second direction and is positioned closer to the stacked structure in the first direction than the bonding surface. In particular, the bonding surface may come into a contact with the corresponding outer surface of the pair of end plates and the extension is positioned inside the pair of end plates.
The opposite ends of the second clamp may be bent to face the pair of end plates and are bonded to outer surfaces of the pair of end plates.
In another form, each of the opposite ends of the first clamp, which are bent to face the end plates, may include: a bonding surface bonded to a corresponding outer surface among the outer surfaces of the pair of end plates, and an extension that extends from opposite ends of the bonding surface in the second direction and is positioned closer to the stacked structure in the first direction than the bonding surface. In particular, the bonding surface may come into a contact with the corresponding outer surface of the pair of end plates and the extension is positioned inside the pair of end plates.
The battery module may further include: a plurality of long nuts extending in the first direction between regions adjacent to corners of the pair of end plates, and a plurality of bolts configured to respectively couple the regions adjacent to the corners of the pair of end plates to opposite ends of the plurality of long nuts.
The end plate may include a convex portion extending from a fixed point to which the bolt is coupled to a fixed point to which the first clamp or the second clamp is coupled.
The battery module may further include a pair of bus bar assemblies arranged at opposite ends of the stacked structure in the second direction and for connecting the electrodes of the plurality of battery cells located at opposite ends in the second direction to each other, and second and third covers for covering the stacked structure in the second direction at an outside of the pair of bus bar assemblies, respectively.
The stacked structure may include a plurality of cell assemblies including a pair of battery cells stacked across a surface pressure pad interposed therebetween, and the plurality of cell assemblies may be stacked in the first direction.
In the cell assembly, the battery cells may be stacked to position respective electrodes having the same polarity adjacent to each other.
The cell assemblies in the stacked structure may be stacked on one another to arrange respective electrodes having different polarities adjacent to each other.
The plurality of cell assemblies may be stacked on one another by interposing hot melt therebetween.
Each of the pair of end plates may include an internal plate that surface-contacts the stacked structure and is formed of an insulation material and an external plate that covers the internal plate at an outside of the internal plate and has higher rigidity than the internal plate.
The external plate may include an insert space that is formed at an end adjacent to the first cover and into which a temperature sensor spaced apart from the stacked structure at a predetermined interval is inserted.
The bus bar assembly may include a bus bar including a plurality of slits, and regions of the electrodes of the plurality of battery cells, which are positioned through the slits, may be bent and are connected to the bus bar.
The bus bar assemblies may include a circuit for detecting a voltage of the battery cell.
Further areas of applicability will become apparent from the description provided herein. It should be understood that the description and specific examples are intended for purposes of illustration only and are not intended to limit the scope of the present disclosure.
In order that the disclosure may be well understood, there will now be described various forms thereof, given by way of example, reference being made to the accompanying drawings, in which:
The drawings described herein are for illustration purposes only and are not intended to limit the scope of the present disclosure in any way.
The following description is merely exemplary in nature and is not intended to limit the present disclosure, application, or uses. It should be understood that throughout the drawings, corresponding reference numerals indicate like or corresponding parts and features.
Hereinafter, a battery module according to exemplary forms of the present disclosure will be described in detail with reference to the attached drawings.
Referring to
In another form of the present disclosure, the battery module may include second and third covers 60 that cover the stacked structure 100 of the battery cells 110 in the second direction at the outside of the bus bar assemblies 30, respectively.
The battery module may include bolts 21 and long nuts 70 as coupling devices for instrumental coupling between components.
As shown in
In one cell assembly 11 of a battery, the battery cells 110 may be arranged to position respective electrodes having the same polarity (e.g., positive electrodes 111a or negative electrodes 111b) adjacent to each other.
The surface pressure pad 120 may be an element for preventing the structure of the module from being deformed by providing flexibility when swelling of the battery cells 110 occurs.
The plurality of cell assemblies 11 may be stacked on one another by interposing hot melt H therebetween. The hot melt H may be a kind of liquid binder for achieving adhesion when applied with heat, and may be coated in a preset pattern on a surface of the battery cell 110 before the plurality of cell assemblies 11 is stacked on one another, and in this regard, the desired positional relationship between the battery cells may be achieved by aligning the battery cells and applying heat at one time after stacking the cell assemblies 11.
The cell assemblies 11 in the stacked structure may be stacked on one another to arrange respective electrodes having different polarities adjacent to each other in order to achieve an electrical connection relationship in series between cell assemblies when the electrodes of the battery cells and bus bars of the bus bar assemblies 30, which will be described below, are connected to each other. That is, the battery cells in the cell assembly 11 may be electrically connected in series, and the cell assemblies 11 may be electrically connected in series.
Hereinafter, for convenience of description, a direction in which the battery cells 110 are stacked will be referred to as a first direction (an x-axis direction) and a direction perpendicular to the first direction, in which the electrodes of the battery cell 110 are connected to each other, will be referred to as a second direction (a y-axis direction). In addition, a direction perpendicular to the first direction and the second direction, that is, a direction in which sides on which electrodes of the battery cells 110 are not formed are connected to each other will be referred to as a third direction (a z-axis direction).
As shown in
The pair of end plates 20 may be an element for maintaining an interval therebetween to prevent the battery module from being deformed and to uniformly maintain surface pressure between the stacked battery cells 110 due to the rigidity of the end plates 20 itself when swelling of the battery cells 110 occurs. Thus, the end plates 20 may also include an additional device that has sufficient rigidity to prevent the battery module from being deformed while maintaining surface-contact with the battery cells 110 and achieves the uniformity of surface pressure.
As shown in
According to another form, an insert space T into which a temperature sensor 80 spaced apart from the stacked structure 100 at a predetermined interval is inserted may be formed at a side positioned in the second direction of the external plate 201 of the end plate 20 using various metal molding technologies. A region in which the insert space T is formed may correspond to a portion ‘A’ shown in
One battery pack may be embodied by arranging the plurality of battery modules 10 in a case designed according to a vehicle type. In general, it is important to recognize an internal temperature in order to manage a battery pack and a battery module is manufactured to have a temperature sensor installed therein. The battery module according to one form of the present disclosure may provide the space T for installing a temperature sensor therein after a plurality of battery modules is arranged in a case rather than having a temperature sensor in the module itself.
In particular, the battery module 10 according to one form of the present disclosure may not include a separate covering element on an opposite surface to a surface on which the first cover 40 is installed, a battery cell is exposed out of the opposite surface, and the surface through which the battery cells is exposed may be arranged to face a bottom surface of the case. Accordingly, the insert space T of the temperature sensor may be formed to ensure a predetermined space between the stacked structure of the battery cells and the external plate 201 at an end of the external plate 201 adjacent to the first cover 40.
As shown in
The bus bar assembly 30 may be an electrode including a bus bar for forming electrical connection between the electrodes 111a and 111b of the battery cells 110 in the stacked structure 100.
As shown in
The bus bar assembly 30 may include a circuit 34 for monitoring a voltage of the battery cell 110 included in the battery module. Here, the circuit 34 may include a circuit board such as a PCB, an electric device installed thereon, and the like.
As shown in
In the case of a conventional battery module, electrical connection of a stacked structure of battery cells may be achieved by bending electrodes of a unit battery cell in advance and performing primary welding and then stacking the plurality of unit battery cells and performing secondary welding gain. Such a conventional method has a problem in that a plurality of bending and welding processes is performed and it is difficult to ensure uniformity thereof, thus causing a step difference at a welding target during secondary welding.
However, as shown in
As shown in
The first clamp 51 configured in the form of a bar extending in the first direction may be disposed across the stacked structure 100 outside the first cover 40, and opposite ends of the first clamp 51 may be bonded to the pair of end plates 20, respectively.
The second clamp 52 configured in a bar extending in the first direction may be disposed adjacent to one surface facing the other surface of the stacked structure 100, on which the first cover 40 is disposed, across the stacked structure 100, and opposite ends of the second clamp 52 may be bonded to the pair of end plates 20, respectively.
The first clamp 51 may be fixed to the first cover 40 using a method such as thermal fusion, and the opposite ends of the first clamp 51 may be bonded to the two end plates 20, respectively, and thus a distance between the end plates 20 may also be maintained when swelling of the battery cells 110 occurs. The second clamp 52 may be spaced apart from the exposed surface of the stacked structure 100 (which is a lower surface in the drawing) adjacent thereto and may also maintain a distance between the two end plates 20 when swelling of the battery cells occurs, like the first clamp 51.
As shown in
The battery module 10 may be lastly completed by installing the second and third covers 60 to cover the bus bar assemblies 30. The second and third covers 60 may include through holes for exposing elements therethrough (e.g., a portion of a bus bar that needs to be exposed for external electrical connection or a connector for providing information on detection of a cell voltage) which need to be exposed out of the battery module among elements included in the bus bar assemblies 30.
As shown in
Although not clearly shown in
Protrusions 61 protruding in the first direction may be formed on the lateral portion of the second and third covers 60, and an edge of the end plate 20 may be caught by the protrusions 61 to achieve assembly therebetween.
In the battery module 10 according to another form of the present disclosure, the battery module may be inhibited or prevented from being damaged while providing appropriate surface pressure even if swelling of the battery cells 110 occurs by disposing the end plates 20 having rigidity on the opposite surfaces of the stacked structure 100 in a stack direction of the stacked structure 100 having the battery cells 110 stacked in the first direction and maintaining a constant interval between the two end plates 20.
Referring to
As described above, the first clamp 51 and the second clamp 52 may prevent the stacked structure 100 disposed between the end plates from expanding at the center of the opposite surfaces of the end plates 20 in the second direction.
In addition, the end plates may be prevented from expanding at the opposite ends of the end plate 20 in the second direction by coupling the bolts 21 at the opposite ends of the long nuts 70 by interposing the long nuts 70 at a position adjacent to corners of the end plate 20.
That is, four points P1 to P4 adjacent to four corners of the end plate 20 and two points P5 and P6 at a central portion of a side of the end plate 20 in the second direction may be fixed points for maintaining a constant interval between the two end plates 20.
In order to provide a load path based on the aforementioned fixed points, a foaming structure having connectivity between the fixed points, that is, a convex portion F may be formed in the external plate 201 of the end plate 20. Although the convex portion F may have various patterns, the convex portion F may extend from the fixed point adjacent to one corner of the external plate 201 toward the fixed point at the center of a long side in the second direction, at which the corresponding corner is formed, as shown in
That is, the convex portion F may be formed to extend from the first fixed point P1 toward the fixed point P6 at the center of the lower surface of the external plate 201 based on the drawing, and the convex portion F may be formed to extend from the second fixed point P2 toward the fixed point P5 at the center of the upper surface of the external plate 201 based on the drawing. Similarly, the convex portion F may be formed to extend from the third fixed point P3 toward the fixed point P6 at the center of the lower surface of the external plate 201 based on the drawing, and the convex portion F may be formed to extend from the fourth fixed point P4 toward the fixed point P5 at the center of the upper surface of the external plate 201 based on the drawing.
As shown in
Thus, the bonding surface 511 may prevent the end plate 20 from expanding outward when swelling of the battery cells occurs, and the extension 512 may prevent the center of the end plate 20 in the second direction from being bent inside the module.
The bonding surface 511 may be bonded to an outer surface of the external plate 201 using a welding method by applying energy for welding such as a laser to a surface of the bonding surface 511 (‘W’: welding region). However, any other bonding methods that are known in the art and replace welding may be applied. In addition, the bonding structure shown in
As described above, in the battery module according to the various forms of the present disclosure, the clamps may be welded to opposite end plates in a stack direction of the battery cells at the center of the battery module and the two end plates may be coupled to each other by the long nuts and the bolts at regions corresponding to corners of the end plates, and accordingly, the battery cells may be prevented from being damaged and the durability thereof may be ensured by applying an appropriate pressure to the stacked structure of the battery cells while being maintained in a predetermined shape to prevent the battery cells from being damaged even if swelling of the battery cells occurs.
In the battery module according to the various forms of the present disclosure, the electrical connection between electrodes may be achieved through a single bending process and a single welding process by applying the bus bar assemblies, and accordingly, a manufacturing process may be simplified and a result deviation between battery cells may be removed, thereby improving product quality.
In the battery module according to the various forms of the present disclosure, battery cells included in a battery pack may be manufactured in the form of a module, and thus, even if specifications of the battery pack are changed depending on a vehicle type, a standardized battery cell may be applied to battery packs of various specifications, and accordingly, a separate design process for arranging the battery cells in the battery pack may be omitted, thereby reducing a development period and development cost.
As described above, in the battery module according to the various forms of the present disclosure, the clamps may be welded to opposite end plates in a stack direction of the battery cells at the center of the battery module and the two end plates may be coupled to each other by the long nuts and the bolts at regions corresponding to corners of the end plates, and accordingly, the battery cells may be prevented from being damaged and the durability thereof may be ensured by applying an appropriate pressure to the stacked structure of the battery cells while being maintained in a predetermined shape to prevent the battery cells from being damaged even if swelling of the battery cells occurs.
In the battery module according to the various forms of the present disclosure, the electrical connection between electrodes may be achieved through a single bending process and a single welding process by applying the bus bar assemblies, and accordingly, a manufacturing process may be simplified and a result deviation between battery cells may be removed, thereby improving product quality.
In the battery module according to the various forms of the present disclosure, battery cells included in a battery pack may be manufactured in the form of a module, and thus, even if specifications of the battery pack are changed depending on a vehicle type, a standardized battery cell may be applied to battery packs of various specifications, and accordingly, a separate design process for arranging the battery cells in the battery pack may be omitted, thereby reducing a development period and development cost.
It will be appreciated by those skilled in the art that the effects achievable through the present disclosure are not limited to those that have been particularly described hereinabove and that other unmentioned effects of the present disclosure will be more clearly understood from the above detailed description.
Although the present disclosure has been shown and described with respect to exemplary forms, it will be apparent to those having ordinary skill in the art that the present disclosure may be variously modified and altered without departing from the spirit and scope of the present disclosure.
Number | Date | Country | Kind |
---|---|---|---|
10-2020-0127973 | Oct 2020 | KR | national |