The present disclosure relates to a battery cell including a case for bulging reduction and a battery device including the same. More specifically, the present document relates to a prismatic battery cell and a battery device including a case capable of improving strength and stability of the battery cell.
A battery cell includes an electrode assembly and a case accommodating the electrode assembly. In prismatic battery cells, bulging problems may occur when excessive heat and pressure are accumulated inside a can. For example, a battery cell and a battery device including the battery cell may be damaged due to swelling of the electrode assembly. In order to prevent damage due to bulging of the battery cell, a structure of the battery cell for enhancing durability of the battery cell has been researched.
A battery cell may include an electrode assembly and a case accommodating the electrode assembly. The case may be made of a can, to protect the electrode assembly from external impacts. Strength and weight of a case are trade-offs. As the case is formed to be thinner to reduce the weight of the battery cell, the strength of the case may be reduced. When swelling occurs in the electrode assembly, the case may be easily modified (e.g., bulging) as the strength of the case decreases.
An aspect of the present disclosure is to provide a battery cell including a case for preventing bulging and a battery device including the same.
According to an aspect of the present disclosure, a battery cell includes an electrode assembly and a case accommodating the electrode assembly. The case may include a plurality of corner portions and a planar portion disposed between the plurality of corner portions. The planar portion may be configured to press the electrode assembly, when the electrode assembly swells.
According to an embodiment, the case may include at least one support sleeve forming at least a portion of the planar portion.
According to an embodiment, the at least one support sleeve may include steel.
According to an embodiment, the planar portion may include a reinforcing portion protruding toward the electrode assembly.
According to an embodiment, the case may be manufactured by an impact extrusion process using a driving slug including a cutout.
According to an embodiment, the planar portion may include an ironing region and a protrusion extending from the ironing region and protruding outwardly of the case.
According to an embodiment, a thickness of at least a portion of the planar portion may be greater than a thickness of each of the plurality of corner portions.
According to an embodiment, the case may include a wide surface and a narrow surface. At least a portion of the wide surface may be configured to press the electrode assembly, when the electrode assembly swells.
According to an aspect of the present disclosure, the battery cell may include an electrode assembly and a case accommodating the electrode assembly. The case may include a plurality of corner portions and a planar portion disposed between the plurality of corner portions. A first thickness of the corner portion may be greater than a second thickness of the planar portion.
According to an embodiment, the corner portion may include a plurality of support rods.
According to an embodiment, the corner portion may include a plurality of support rods.
According to an embodiment, the case may be manufactured by an impact extrusion process using a driving slug having a corner deformation portion.
According to an embodiment, the case may include an ironing region formed on the planar portion, and a reinforcing region forming at least a portion of the corner portion and is thicker than the ironing region.
According to an embodiment, the buffer portion may include a first buffer portion and a second buffer portion located in parallel with the first buffer portion. A first distance between the first buffer portion and the second buffer portion may be shorter than a second distance between the plurality of corner portions.
According to an embodiment, the case may include a wide surface and a narrow surface, and the buffer portion may be formed on the wide surface.
The above and other aspects, features, and advantages of the present disclosure will be more clearly understood from the following detailed description, taken in conjunction with the accompanying drawings, in which:
Embodiments of the present disclosure will be more fully described below with reference to the accompanying drawings, in which like symbols indicate like elements throughout the drawings, and embodiments are shown. However, embodiments of the claims may be implemented in many different forms and are not limited to the embodiments described herein. The examples given herein are non-limiting and only examples among other possible examples.
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Each prismatic battery cell 100 may have an upper cap assembly 120 welded or otherwise bonded to the top of the can 104. The upper cap assembly 120 may include a base plate 122 attached to the can 104. The base plate 122 isolates the inside and outside of the cell by welding with the can 104. The base plate 122 may serve as a rigid support structure for elements within the upper cap assembly 120. The upper cap assembly 120 may include a plurality of upper insulators 124 to insulate the base plate 122. The upper insulator 124 may prevent leakage of an electrolyte from the prismatic battery cell 100. Additionally, the upper insulator 124 may isolate the can 104 from the cathode foil 112 and prevent penetration of moisture and gases from the outside of the cell. A portion of the upper insulator 124 may protect a current interrupting device. The upper cap assembly 120 includes a cathode terminal 128 electrically connecting the inside and outside of the prismatic battery cell 100. The upper cap assembly 120 includes an anode terminal 126 electrically connecting the inside and outside of the prismatic battery cell 100.
The upper cap assembly 120 may include a vent 130 allowing exhaust gases from the prismatic battery cell 100 to be discharged in a controlled direction and at a controlled pressure. The upper cap assembly 120 may include a vent guard 132 protecting the vent 130 from the inside of the prismatic battery cell 100 in order to prevent the vent 130 from malfunctioning. The upper cap assembly 120 may include an overcharge safety device 134 preventing an external current from being introduced using an internal gas pressure of the prismatic battery cell 100. The upper insulator 124 may be multi-component. In some embodiments, side portions of the upper insulator 124 may be mounted on the edges of the can 104 and the upper cap assembly 120. An electrolyte cap 138 may seal an electrolyte solution inside the prismatic battery cell 100.
The battery cell 100 may include an insulator 136 located between the upper cap assembly 120 and the can 104.
In this document, the electrode assembly of the battery cell 100 is described as the jelly roll 106, but the electrode assembly of the battery cell 100 is not limited to the jelly roll 106. For example, the jelly roll 106 may be replaced with a stack type electrode assembly or a Z-folding type electrode assembly. According to an embodiment, the jelly roll 106 described herein may refer to an electrode assembly.
In this document, the can 104 may be referred to as a case or housing.
The upper cap assembly 120 serving as a cover for the prismatic battery cell 100 is a complex assembly including a plurality of welded components. Adhesives may be used instead of welding specific components.
The prismatic battery cell 100 may include the vent 130. The vent 130 provides overpressure alleviation when temperature and corresponding pressure increase in the prismatic battery cell 100. For example, the vent 130 may be activated in a pressure range of 10 to 15 bar. The vent 130 may be laser-welded to the upper cap assembly 120.
The prismatic battery cell 100 may include the can 104. The can 104 may generally be formed of deep-drawn aluminum or stainless steel to prevent moisture from entering the cell, while providing diffusion resistance to organic solvents, such as liquid electrolytes. The most important reason the can 104 is typically formed of deep-drawn aluminum alloy or stainless steel is to reduce a welding point to improve the mechanical strength of the can 104. The prismatic battery cell 100 may be filled with an electrolyte. After electrolyte filling, the electrolyte cap 138 may be welded to the upper cap assembly 120 or a locking ball (not shown) may be forced into an opening of the electrolyte cap 138. The cell may have an overcharge safety device 134 that may disconnect current flow when high internal pressure is reached in the prismatic battery cell 100. A rise in pressure is usually a result of high temperatures.
According to an embodiment, the cathode terminal 128 may be provided in plural. For example, the cathode terminal 128 may include a first cathode terminal 128a in which at least a portion is exposed to the outside of the battery cell 100 and a second cathode terminal 128b connected to a cathode foil (e.g., the cathode foil 112 of
According to an embodiment, the anode terminal 126 may be provided in plural. For example, the anode terminal 126 may include a first anode terminal 126a in which at least a portion is exposed to the outside of the battery cell 100 and a second anode terminal 126b connected to an anode foil (e.g., the anode foil 110 of
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According to an embodiment, the battery cell manufacturing process 400 may include a wetting process of the jelly roll 106. For example, the jelly roll 106 may be initially wetted by an electrolyte delivered through an electrolyte injection port. For example, partial vacuum may be formed in the prismatic battery cell 100, and a predetermined amount of electrolyte may be injected through the electrolyte injection port. The partial vacuum may improve the distribution and wetting of all layers within the jelly roll 106. Wetting of all layers within the jelly roll 106 may require a rolling or spinning protocol to enhance wetting.
According to an embodiment, the battery cell manufacturing process 400 may include a quality check process for the initial wetting process, such as checking a weight of the prismatic battery cell 100 immediately after charging. For example, a second electrolyte charging operation in which an electrolyte is charged to achieve a desired weight may be applied to the battery cell. According to an embodiment, the battery cell manufacturing process 400 may include a pre-formation process of charging the prismatic battery cell 100 and discharging gas.
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According to an embodiment, the can 104 of the battery cell 100 may be modified due to pressure accumulated inside the battery cell 100 (e.g., the jelly roll 106 of
A first phase is an aluminum slug 600. The aluminum slug 600 may be extruded and transformed into a first workpiece 602.
The first workpiece 602 may be drawn into a second workpiece 604 through ironing. At least a portion of a second workpiece 604 may be cut and transformed into a third workpiece 606. The third workpiece 606 may be trimmed and polished to a final state of the can 104. For example, an unintended protrusion formed on a surface of the third workpiece 606 may be removed. The first workpiece 602, the second workpiece 604, and the third workpiece 606 may be formed during processing of the aluminum slug 600 into the can 104. In an embodiment, the first workpiece 602, second workpiece 604, and third workpiece 606 may be referred to as a first level, a second level, and a third level, respectively.
In
In an embodiment, the can 104 may be further formed through ironing after the impact extrusion process. For example, an ironing process may be further performed on the second workpiece 604 manufactured by the impact extrusion process of
The ironing process may refer to a process of pressing a first workpiece (e.g., the first workpiece 602 of
The iron 800 may press the can 104 to draw a material in a given direction, so that a thinner, larger, and more uniform can 104 may be produced. In an embodiment, an internal mold 806 may be disposed inside the can 104, and the iron 800 may apply pressure to the can 104 outside the can 104. An un-ironed portion of the prismatic cell can 104 is illustrated in the second workpiece 604b. Referring to
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The support rod 900 may be added to increase structural strength of can 104 of battery cell 100. In an embodiment, the support rod 900 may be referred to as a corner support rod. The description of the can 104 of
The support rod 900 may include a plurality of support rods 900a, 900b, 900c, and 900d. Each of the plurality of support rods 900a, 900b, 900c, and 900d may form a corner portion 104c of the can 104. The support rod 900 may be disposed on a corner portion of the frame 109. For example, the corner portion 104c of the can 104 may be referred to as a corner portion of frame 109 and a support rod 900.
A material of the support rod 900 may be selectively designed. In an embodiment, the support rod 900 may be formed of the same material (e.g., aluminum) as the remaining portion (e.g., the frame 109) of the can 104. Alternatively, the support rod 900 may be formed of a different material than the frame 109 (e.g., steel).
A shape of the support rod 900 may be selectively designed. For example, the support rod 900 may have a shape or geometry corresponding to an inner surface of the frame 109.
The can 104 may include a plurality of corner portions 104c and a planar portion 104d disposed between the plurality of corner portions 104c.
In an embodiment, as a thickness of the corner portion 104c is formed to be greater than a thickness of the planar portion 104d, structural strength of the can 104 may be improved. As the structural strength of the can 104 is improved, bulging and/or swelling of the battery cell 100 may be reduced.
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To increase the structural strength of the can 104 of the battery cell (e.g., the battery cell 100 of
A support sleeve 1000 may form at least a side surface of the can 104. For example, the support sleeve 1000 may be disposed between an inner surface of the frame 109 and the jelly roll 106.
According to an embodiment, the can 104 may include a wide surface 104a and a narrow surface 104b, shorter than the wide surface 104a.
The can 104 may form an accommodation space S for accommodating a jelly roll (e.g., the jelly roll 106 of
The can 104 may include a plurality of corner portions 104c and a planar portion 104d disposed between the plurality of corner portions 104c. The corner portion 104c may be disposed between the wide surface 104a and the narrow surface 104b. At least a portion of the wide surface 104a and at least a portion of the narrow surface 104b may form a planar portion 104d.
According to an embodiment the support sleeve 1000 may be disposed on at least a portion of the planar portion 104d of the can 104. For example, the support sleeve 1000 may be attached to both wide surfaces 104a. For example, the support sleeve 1000 may include a first support sleeve 1000a and a second support sleeve 1000b, facing each other.
In an embodiment, a support sleeve 1000 is added to a wall of the can 104 for the battery cell 100. Since the support sleeve 1000 is disposed on the can 104, structural strength of the can 104 may be improved. Both wide surfaces 104a of the can 104 may be provided with pressure by an electrode assembly (e.g., the jelly roll 106 of
A material of the support sleeve 1000 may be selectively designed. In an embodiment, the support sleeve 1000 may be formed of the same material (e.g., aluminum) as the remaining portion of the can 104 (e.g., a frame 109). Alternatively, support sleeve 1000 may be formed of a different material than frame 109 (e.g., steel).
A shape of the support sleeve 1000 may be selectively designed. For example, the support sleeve 1000 may have a shape corresponding to an inner surface of the frame 109 or geometry.
According to an embodiment (not shown), the support sleeve 1000 of
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According to an embodiment, the protective bag 1100 may surround at least a portion of the jelly roll 106. The protective bag 1100 may include holes for exposing a cathode terminal 128 and an anode terminal 126.
The protective bag 1100 may be formed of a non-conductive material. In an embodiment, the protective bag 1100 may be formed of a material such as Kevlar or other nanomaterial designs. The protective bag 1100 may protect the battery cell 100 in two ways. For example, the protective bag 1100 may protect an interior of the jelly roll 106 from puncture damage, such as may be seen in an auto accident involving an electric vehicle. By protecting the jelly roll 106, an internal short circuit of the jelly roll 106 can be prevented. As another example, the protective bag 1100 may accommodate the jelly roll 106 in a given volume, not exceeding a capacity of the can 104 of the prismatic battery cells 100, to prevent swelling of the jelly roll 106 and/or battery cell 100.
According to an embodiment (not shown), the protective bag 1100 of
The description of the configuration of the can 104 of
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In an embodiment, the modified driving slug 1200 may include two cutouts 1202. The cutout 1202 may be a groove or recess formed on a side surface of the driving slug 1200. For example, the cutout 1202 may be referred to as a side groove.
According to an embodiment, the can 104 may be manufactured using a driving slug 1200. For example, the cutout 1202 can create two reinforcing portions 104e in the can 104 of the prismatic battery cell (e.g., the battery cell 100 of
According to an embodiment, the can 104 may be formed to correspond to the shape of the driving slug 1200. For example, the can 104 may include a reinforcing portion 104e formed to correspond to the cutout 1202. The reinforcing portion 104e may protrude inwardly of the can 104 from the planar portion 104d of the can 104. For example, the reinforcing portion 104e may protrude toward a jelly roll (e.g., the jelly roll 106 of
According to an embodiment, a thickness of at least a portion of the planar portion 104d may be greater than a thickness of each of the plurality of corner portions 104c. For example, a first width w1 of the can 104 where the reinforcing portion 104e is located may be thicker than a second width w2 of the planar portion 104d where the reinforcing portion 104e is not located. The second width w2 may be substantially the same as the thickness of the corner portion. According to an embodiment, the reinforcing portion 104e may improve structural strength of the can 104. Bulging and/or swelling of the can 104 may be reduced by the reinforcing portion 104e. The reinforcing portion 104e may be provided with pressure by an electrode assembly (e.g., the jelly roll 106 of
According to an embodiment (not shown), together with the structure of the can 104 of
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For example, the driving slug 1300 of
According to an embodiment (not shown), together with a structure of the can 104 of
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For example, one portion of the can 104 pressed by the iron 800 may be referred to as an ironing region, and the other portion of the can 104, not pressed by the iron 800 may be referred to as a protrusion 104f. In an embodiment, the protrusion 104f may protrude from an outer surface of the can 104 outwardly of the can 104. A thickness of the protrusion 104f may be greater than other portions of the wide surface 104a of the can 104. For example, the protrusion 104f may extend from the ironing region 104g. The thickness of the protrusion 104f may be greater than that of the ironing region 104g.
In an embodiment, the protrusion 104f and the ironing region 104g may be formed on the wide surface 104a of the can 104. Since the protrusion 104f is formed on the wide surface 104a, structural rigidity of the can 104 may be improved. The protrusion 104f may be located at a center of the wide surface 104a of the can 104.
The first ironing process may refer to a process of forming the protrusion 104f on the can 104 by using a plurality of irons 801, 802, 803, and 804 moving from a rim of the can 104 toward the planar portion.
According to an embodiment (not shown), together with a structure of the can 104 of
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A thickness of a corner portion 104 may be increased by a second ironing process. For example, the can 104 may include an ironing region 812 pressed by the iron 800 and a reinforcing region 811 not facing the iron 800. The reinforcing region 811 may form at least a portion of the corner portion 104c of the can 104. The ironing region 812 may form at least a portion of a planar portion 104d of the can 104. A width of the iron 800 may be narrower than a width of the wide surface 104a of the can 104. A thickness and material amount of the reinforcing region 811 may be greater than a thickness and material amount of the ironing region 812.
As the reinforcing region 811 is formed in the corner portion 104c of the can 104, space utilization of the can 104 may be increased. For example, strength and/or structural integrity of the can 104 may be improved while minimizing a reduction in empty space for accommodating the electrode assembly (e.g., the jelly roll 106 of
According to an embodiment (not shown), together with the reinforcing region 811 and the ironing region 812 of
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The description of the battery cell 100, the can 104, and the jelly roll 106 of
According to an embodiment, at least a portion of the can 104 may be formed to be modified based on swelling of the jelly roll 106. For example, the can 104 may include at least one buffer portion 107 formed on a frame (e.g., the frame 109 of
When the jelly roll 106 swells, the buffer portion 107 may be in contact with the jelly roll 106. The planar portion 104d on which the buffer portion 107 is formed may be modified into a curved shape by the swelled jelly roll 106. The jelly roll 106 may be in contact with the planar portion 104d of the can 104, and apply pressure to the planar portion 104d.
According to an embodiment, the buffer portion 107 may be formed on a wide surface 104a and a narrow surface 104b. For example, the corner portion 104c of the can 104 may protrude from a planar portion 104d. In an embodiment, the corner portion 104c may include a first protruding region 109a extending substantially perpendicularly to a wide surface 104a from the planar portion 104d of the wide surface 104a, a second protruding region 109b extending substantially perpendicularly from the first protruding region 109a, a fourth protruding region 109d extending substantially perpendicularly to a narrow surface 104b, and a third protruding region 109c formed perpendicularly to the second protruding region 109b and the fourth protruding region 109d.
According to an embodiment, the buffer portion 107 may include a plurality of buffer portions 107a and 107b spaced apart from each other. For example, the buffer portion 107 may include a first buffer portion 107a and a second buffer portion 107b, disposed substantially parallel to the first buffer 107a. The buffer portion 107 may be closer to the jelly roll 106 than the corner portion 104c. For example, a first distance d1 between the first buffer portion 107a and the second buffer portion 107b may be shorter than a second distance d2 between the plurality of corner portions 104c.
According to an embodiment, the shape of the buffer portion 107 may be selectively designed.
According to an embodiment, the buffer portion 107 may absorb at least a portion of swelling of the jelly roll 106. Bulging of the battery cell 100 may be reduced by the buffer portion 107.
According to an embodiment (not shown), with a structure of the can 104 of
As set forth above, according to an embodiment of the present disclosure, a battery cell may reduce bulging or swelling of the battery cell by using a battery cell having improved structural strength.
According to an embodiment of the present disclosure, a case may press an electrode assembly to improve lifespan and performance of the battery cell.
The functions performed in the processes and methods may be implemented in a different order. Furthermore, the outlined steps and operations are only provided as examples, and some of the steps and operations may be optional, combined into fewer steps and operations, or expanded into additional steps and operations without detracting from the essence of the disclosed embodiments.
This patent document claims the benefit of U.S. Provisional Patent Application No. 63/427,671 filed on Nov. 23, 2022, the disclosure of which is incorporated herein by reference in its entirety.
Number | Date | Country | |
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63427671 | Nov 2022 | US |