Enhanced safety battery module
The battery module with a high-expandable top plate and controlled venting mechanism addresses thermal event risks in lithium secondary batteries, enhancing safety by containing and managing thermal events.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-07-08
- Publication Date
- 2026-04-07
AI Technical Summary
Lithium secondary batteries used in battery modules and packs are vulnerable to thermal events, which can lead to uncontrolled thermal propagation, fires, and explosions, posing safety risks, especially in densely packed modules and large battery packs like those in electric vehicles.
A battery module with a module case featuring a top plate with higher expandability and elasticity than other components, vent holes, and a module valve that opens at specific pressure/temperature levels, allowing controlled expansion and venting to manage thermal events.
The solution effectively buffers and contains high-temperature gases, reducing the risk of explosions and thermal propagation, providing time for evacuation and minimizing damage to surrounding components.
Smart Images

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Abstract
Description
Technical Field
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[0001] This application claims priority based on Korean Patent Application No. 10-2021-0090553 filed on July 9, 2021, and all the contents disclosed in the specification and drawings of the application are incorporated herein.
[0002] The present invention relates to a battery, and more particularly, to a battery module with enhanced safety, a battery pack including the same, and an automobile.
Background Art
[0003] In recent years, as the demand for portable electronic products such as notebook computers, video cameras, and mobile phones has rapidly increased, and the commercialization of robots, electric vehicles, etc. has been in full swing, research on high-performance secondary batteries that can be repeatedly charged and discharged has been actively conducted.
[0004] Currently, commercially available secondary batteries include nickel-cadmium batteries, nickel-metal hydride batteries, nickel-zinc batteries, lithium secondary batteries, etc. Among them, lithium secondary batteries are attracting attention because they have almost no memory effect compared to nickel-based secondary batteries, so they can be freely charged and discharged, have a very low self-discharge rate, and have a high energy density.
[0005] Such lithium secondary batteries mainly use a lithium-based oxide and a carbon material as a positive electrode active material and a negative electrode active material, respectively. A lithium secondary battery includes an electrode assembly in which a positive electrode plate and a negative electrode plate coated with such a positive electrode active material and a negative electrode active material are arranged with a separator interposed therebetween, and an exterior material that encloses the electrode assembly together with an electrolytic solution, for example, a battery case.
[0006] Generally, lithium secondary batteries can be roughly classified into a can-type secondary battery in which an electrode assembly is built in a metal can and a pouch-type secondary battery in which an electrode assembly is built in a pouch of an aluminum laminate sheet according to the shape of the exterior material.
[0007] Recently, secondary batteries are widely used not only in small devices such as portable electronic devices, but also in medium and large devices such as electric vehicles and energy storage systems (ESS) for propulsion and energy storage. Multiple such secondary batteries can be electrically connected and housed together inside a module case to form a single battery module. Furthermore, multiple such battery modules can be connected to form a single battery pack.
[0008] However, when multiple secondary batteries (battery cells) or battery modules are densely packed into a small space, there are concerns that they become vulnerable to thermal events. In particular, if an event such as thermal runaway occurs in one battery cell, there is a risk of generating high-temperature gases, flames, and heat. If such gases, flames, and heat cannot be properly controlled, it could not only cause a fire or explosion in the battery module in question, but also potentially cause fires or explosions in other battery modules. Furthermore, in the case of medium to large battery packs, such as those in electric vehicles, a large number of battery cells and battery modules may be included to increase output and / or capacity. Moreover, in the case of battery packs installed in electric vehicles, there may be people such as the driver nearby. Therefore, if a thermal event occurring in a particular battery module cannot be properly controlled and a chain reaction such as thermal propagation occurs, there is a risk of not only significant property damage but also loss of life. [Overview of the Initiative] [Problems that the invention aims to solve]
[0009] Therefore, the present invention was devised to solve the above-mentioned problems, and one of its objectives is to provide a battery module with an improved structure so that safety is enhanced when a thermal event occurs inside the battery module, as well as a battery pack including the same and an automobile, etc.
[0010] However, the technical problems that this invention aims to solve are not limited to those described above, and other problems not mentioned will be clearly understood by those skilled in the art from the detailed description of the invention below. [Means for solving the problem]
[0011] To achieve the above objectives, a battery module according to one aspect of the present invention may include a cell assembly comprising one or more battery cells, and a module case comprising a top plate, a base plate, and side plates defining an internal space, housing the cell assembly in the internal space, wherein the top plate is configured to have at least partially higher expandability than at least one of the base plate and the side plates.
[0012] Furthermore, the top plate may have a lower modulus of elasticity or a higher coefficient of thermal expansion than at least one of the base plate and the side plate, at least in part.
[0013] Furthermore, the module case may have vent holes formed in a shape that penetrates from the internal space to the external space.
[0014] Furthermore, the module case may further include a module valve positioned in the vent hole and configured to open only when the temperature or pressure of the internal space is above a certain level.
[0015] Furthermore, the vent holes may be configured to be opened by deformation of the top plate.
[0016] Furthermore, the top plate may be configured to have partially different expansion properties.
[0017] Furthermore, the top plate may be configured so that its central portion has greater expandability than its peripheral portion.
[0018] Furthermore, the top plate may be formed with asymmetrical expansion properties.
[0019] Furthermore, in order to achieve the above-mentioned objectives, a battery pack according to another aspect of the present invention includes a battery module according to the present invention.
[0020] Furthermore, an automobile according to yet another aspect of the present invention for achieving the above-mentioned objectives includes a battery module according to the present invention. [Effects of the Invention]
[0021] According to one aspect of the present invention, if a thermal event occurs inside a particular battery module, it becomes possible to appropriately control the gas and / or heat.
[0022] In particular, according to one aspect of the present invention, if a high-temperature gas is generated inside the battery module, it becomes possible to secure a space capable of containing the high-temperature gas.
[0023] Therefore, in this case, the pressure and / or heat from the high-temperature gas can be buffered. Thus, according to this embodiment, the possibility of the battery module exploding is reduced, and the temperature of the emitted gas can also be lowered.
[0024] Furthermore, according to one aspect of the present invention, it is possible to effectively prevent a thermal chain reaction from occurring in surrounding battery modules due to gases and heat generated in a specific battery module.
[0025] In addition to these, the present invention can have various other effects, which will be described in the column of each implementation configuration, or the description will be omitted for effects that can be easily inferred by those skilled in the art.
[0026] The following drawings attached to this specification illustrate desirable embodiments of the present invention and serve to further understand the technical idea of the present invention together with the detailed description of the invention to be described later. Therefore, the present invention should not be construed as being limited only to the matters described in the drawings.
Brief Description of the Drawings
[0027] [Figure 1] It is a perspective view in a combined state schematically showing the configuration of a battery module according to an embodiment of the present invention. [Figure 2] It is an exploded perspective view of the battery module of FIG. 1. [Figure 3] It is a perspective view schematically showing a configuration in which a top plate is expanded in a battery module according to an embodiment of the present invention. [Figure 4] It is a cross-sectional view schematically showing a configuration in which a top plate is expanded in a battery module according to an embodiment of the present invention. [Figure 5] It is a perspective view schematically showing the configuration of a battery module according to another embodiment of the present invention. [Figure 6] It is a perspective view schematically showing the configuration of a battery module according to still another embodiment of the present invention. [Figure 7] It is a perspective view schematically showing the configuration of a battery module according to still another embodiment of the present invention. [Figure 8] It is a cross-sectional view showing with emphasis on the C1 portion of the top plate in FIG. 7. [Figure 9] It is a cross-sectional view schematically showing the deformed state configuration of the top plate in FIG. 8. [Figure 10]This is a schematic top view showing the configuration of a top plate included in a battery module according to yet another embodiment of the present invention. [Figure 11] This is a schematic top view showing the configuration of a top plate included in a battery module according to yet another embodiment of the present invention. [Figure 12] This is a perspective view showing the coupling portion in the module case of a battery module according to one embodiment of the present invention. [Modes for carrying out the invention]
[0028] Preferred embodiments of the present invention will be described in detail below with reference to the attached drawings. Prior to this, terms and words used in this specification and claims are not to be interpreted in their usual or dictionary sense, but rather in a sense and concept that corresponds to the technical idea of the present invention, in accordance with the principle that the inventor himself may appropriately define the concepts of terms in order to best describe the invention.
[0029] Therefore, the embodiments described herein and the configurations shown in the drawings represent only one of the most preferred embodiments of the present invention and do not represent the entire technical concept of the invention. It should be understood that there are various equivalents and modifications that can be substituted for these at the time of filing this application.
[0030] Figure 1 is a schematic perspective view showing the assembled configuration of a battery module according to one embodiment of the present invention, and Figure 2 is an exploded perspective view of the battery module of Figure 1.
[0031] Referring to Figures 1 and 2, the battery module according to the present invention includes a cell assembly 100 and a module case 200.
[0032] The cell assembly 100 may comprise one or more battery cells, where each battery cell may refer to a secondary battery. A secondary battery may comprise an electrode assembly, an electrolyte, and a battery case. In particular, the battery cells provided in the cell assembly 100 may be pouch-type secondary batteries. However, other forms of secondary batteries, such as cylindrical batteries and prismatic batteries, can also be used in the cell assembly 100 of the present invention.
[0033] Multiple secondary batteries can be stacked to form a cell assembly 100. For example, multiple secondary batteries can be stacked in a horizontal direction (Y-axis direction in the figure) with each battery standing upright in the vertical direction (Z-axis direction in the figure). Each battery cell may be equipped with electrode leads, which may be located at both ends of each battery cell or at only one end. A secondary battery with electrode leads protruding in both directions may be called a bidirectional cell, and a secondary battery with electrode leads protruding in one direction may be called a unidirectional cell. The present invention is not limited in any way by the specific type or shape of such secondary batteries, and a wide variety of forms of secondary batteries known at the time of filing the present invention can be used in the cell assembly 100 of the present invention.
[0034] The module case 200 may comprise a top plate 210, a base plate 220, and side plates 230, as shown in Figure 2. The module case 200 can define its internal space using these components, namely the top plate 210, the base plate 220, and the side plates 230. The top plate 210 is located at the top of the module case 200, and the base plate 220 may be positioned below the top plate 210, separated from it by a predetermined distance. The side plates 230 may be positioned such that their upper and lower ends are connected to the top plate 210 and the side plates 230, respectively.
[0035] The top plate 210, base plate 220, and / or side plates 230 may be made of thin sheets, i.e., plates, but may also be made of polyhedra with a thickness above a certain level, such as a rectangular parallelepiped. Furthermore, the side plates 230 may comprise a left plate 231, a right plate 232, a front plate 233, and a rear plate 234. Such top plates 210, base plates 220, and / or side plates 230 may be made of metal material in whole or in part. Also, at least a part of them may be made of plastic material.
[0036] At least some of the top plate 210, base plate 220, and side plates 230 can be configured to be integrated with each other. For example, as shown in Figure 2, of the four side plates 230, the left plate 231 and the right plate 232 can be configured to be integrated with the base plate 220. In this case, the left plate 231, the right plate 232, and the base plate 220, which are integrated with each other, may be referred to as a U-frame due to their shape. In this case, the front plate 233 and the rear plate 234 are end plates and can be connected to the open portions at the front and rear ends of the U-frame, respectively. The top plate 210 can be connected to the open portion at the upper end of the U-frame.
[0037] However, the module case 200 can be configured in various other shapes. For example, the base plate 220 and the four side plates 230 can be integrated to form a box-shaped lower case. In this case, the top plate 210 can be connected to the open upper end of the box-shaped lower case.
[0038] On the other hand, for components that are not manufactured as a single integrated shape in the module case 200 but are joined during the assembly process of the battery module, various joining methods can be employed. For example, the top plate 210, the front plate 233, and the rear plate 234 can be joined to the U-frame by laser welding or ultrasonic welding. Alternatively, each component of such a module case 200 may be joined to each other by bolting or other methods.
[0039] The module case 200 can thus accommodate the cell assembly 100 in the internal space defined by the top plate 210, the base plate 220, and the side plate 230.
[0040] In a battery module according to one embodiment of the present invention, the module case 200 may be configured to have different expansion properties for at least some of its components, namely the top plate 210, the base plate 220, and the side plates 230. In particular, the top plate 210 may be configured to have a higher expansion property, at least in part, compared to the other components, namely the base plate 220 and / or the side plates 230. Furthermore, the top plate 210 may be configured to include a material with a higher expansion rate compared to the other parts of the module case 200. For example, the base plate 220 and the side plates 230 may be made of aluminum, and the top plate 210 may be made of a material with better expansion properties than such aluminum, such as zinc. As another example, the base plate 220 and the side plates 230 may be made of iron, and the top plate 210 may be made of a material with better expansion properties than such iron, such as aluminum. Here, good expandability of the top plate 210 can mean that the volume of the top plate 210 itself expands, or it can mean that the volume of the space located below the top plate 210 expands due to deformation or sagging of the top plate 210.
[0041] According to this aspect of the present invention, when gas and / or heat are generated inside the battery module due to thermal runaway or the like, a highly expandable part, particularly the top plate 210, can expand. This expansion allows gas and / or heat to accumulate in the expanded internal space of the module case 200, thus providing a buffer against the gas and / or heat. This will be explained in more detail with further reference to Figures 3 and 4.
[0042] Figures 3 and 4 are a schematic perspective view and a cross-sectional view, respectively, showing a configuration in which the top plate 210 is expanded in a battery module according to one embodiment of the present invention. In particular, Figure 4 can be said to show the shape of the cross section along the line A1-A1' in Figure 3.
[0043] Referring to Figures 3 and 4, if gas and / or heat are generated and discharged from the cell assembly 100, the top plate 210 may expand first because it is configured to expand more smoothly than other parts of the module case 200. In particular, the top plate 210 may become curved upward due to expansion caused by gas and / or heat. That is, the top plate 210 may maintain a flat state under normal conditions and bend upward when the internal pressure and / or internal temperature of the module case 200 increases. Due to this bending of the top plate 210, an expanded empty space may be formed inside the top plate 210, as shown by the part indicated by reference numeral B1 in Figure 4. Gas and / or heat discharged from the cell assembly 100 may accumulate in this thus formed empty space B1.
[0044] In this case, the safety of the battery module can be further improved. For example, if gas is released from the cell assembly 100 side, the internal pressure of the battery module may increase, but the expansion of the top plate 210 can cause the gas to accumulate in the attached internal space B1. Therefore, the increase in internal pressure due to gas release is mitigated, and the possibility of the module exploding due to gas is reduced.
[0045] In particular, the module case 200 may be formed in a shape where the internal space is completely sealed. In this case, if the internal pressure of the battery module increases, the risk of explosion increases even further. However, according to the above implementation configuration, the expansion of the internal space due to the deformation of the top plate 210 can buffer the increase in internal pressure. Therefore, the risk of explosion is reduced.
[0046] In addition, the module case 200 may be configured in a shape where the internal space is not completely sealed. For example, module terminals and communication connectors for connecting to other external components may be provided on the front plate 233 and / or rear plate 234. In this case, gas and heat generated inside the module case 200 can be discharged to the outside of the module case 200 through gaps present in the module terminals and communication connectors themselves or around them. However, if gas and heat are discharged through such parts at an excessively high speed or volume, there is a risk of damage to other battery modules, other surrounding equipment, the driver, or passengers. Furthermore, if gas and heat are generated in an amount or speed exceeding what can be discharged through such parts, the possibility of explosion or fire of the battery module still exists. However, according to the above aspects of the present invention, the expanded space provided inside the top plate 210 acts as a buffer, significantly reducing the possibility of explosion and other incidents.
[0047] Furthermore, although the gas discharged from the cell assembly 100 may be relatively hot, according to the above embodiment, the volume of the gas expands in the space where it is located, thus lowering the temperature of the gas. Therefore, the problem of heat being transferred from a battery module experiencing a thermal event to other battery modules or other surrounding equipment can be reduced. Moreover, in the case of a battery module included in an automotive battery pack, there may be people such as the driver or passengers around it, for example, on the upper side, but according to the above embodiment, it is possible to prevent or reduce the transfer of heat to the driver or passengers.
[0048] In addition, when a thermal event occurs in the cell assembly 100, a flame may be generated along with the gas. However, according to the above implementation configuration, the flame can also be accumulated in the internal space formed by the expansion of the top plate 210, thus preventing or delaying the discharge of the flame to the outside. Therefore, in the case of automotive battery packs, etc., it is possible to ensure that the driver and passengers have enough time to escape. Thus, from this perspective as well, the safety of the battery module can be said to be further improved.
[0049] The top plate 210 may be configured such that its modulus of elasticity or coefficient of thermal expansion differs from that of the other parts of the module case 200, so that it has higher expandability compared to the other parts of the module case 200.
[0050] In particular, the top plate 210 may be configured to have a lower elastic modulus than the base plate 220 and / or side plates 230, at least in part. That is, the top plate 210 may have a material or shape that is more easily deformed than the base plate 220 and side plates 230, even when subjected to the same force. For example, if the base plate 220 and side plates 230 are made of materials such as titanium or stainless steel (SUS), the top plate 210 may be made of a material with a lower elastic modulus, such as aluminum.
[0051] In this case, if gas is generated on the cell assembly 100 side and the internal pressure of the module case 200 increases, even if the base plate 220 and side plates 230 are not deformed, the top plate 210 may deform into an upward-bent shape, as shown in Figures 3 and 4. Then, as described above, gas can be accumulated in the internal space formed by this deformation of the top plate 210. Therefore, it becomes possible to prevent problems caused by high and rapidly increasing internal pressure in the module case 200, such as the explosion of the battery module.
[0052] Furthermore, the top plate 210 may be configured to have a higher coefficient of thermal expansion than the base plate 220 and / or side plates 230, at least in part. For example, if the base plate 220 and side plates 230 are made of stainless steel (SUS), the top plate 210 may be made of aluminum, aluminum-zinc alloy, or zinc, which have a higher coefficient of thermal expansion.
[0053] In this case, if heat or high-temperature gas is generated on the cell assembly 100 side and discharged therefrom, the top plate 210 may deform into an upward-bending shape due to the heat, as shown in Figures 3 and 4. This deformation expands the volume of the inner space B1 of the top plate 210, thereby lowering the temperature of the heat. Therefore, it is possible to prevent problems that may occur due to a sudden increase in heat inside the module case 200, such as the propagation of thermal runaway or fire.
[0054] Figure 5 is a schematic perspective view showing the configuration of a battery module according to another embodiment of the present invention. For this embodiment and the following embodiments, detailed descriptions of parts that are identical or similar to those described above will be omitted, and the descriptions will focus on the parts that differ.
[0055] Referring to Figure 5, the module case 200 may have vent holes, indicated by the symbol H. For example, vent holes H may be formed in the left plate 231 and the right plate 232 of the module case 200, respectively. Such vent holes H may be configured to penetrate the internal and external spaces of the module case 200. In this case, the module case 200 can be said to be configured in a way that the internal space is not sealed.
[0056] In this configuration, if vent gas is generated and ejected from the cell assembly 100 housed in the internal space of the module case 200, the generated vent gas can be discharged to the outside through the vent hole H. However, if the gas is discharged from the vent hole H at high pressure and speed, the discharged gas may apply high heat and pressure to other surrounding components, such as other battery modules, pack housings, and battery management systems (BMS). Such application of heat and pressure may cause thermal runaway, damage to surrounding components, and fire. In addition, if the gas ejection speed from the cell assembly 100 is even higher than the level that the vent hole H can handle, there is a possibility of explosion or fire of the battery module. However, according to the above embodiment of the present invention, the internal space of the top plate 210 expands due to the gas and / or heat, acting as a buffer, thereby reducing the risk of such explosion or fire. Furthermore, according to the above embodiment, the gas discharge rate per unit time can be reduced, so the temperature of the part from which the gas is discharged can be lowered. Furthermore, according to the above implementation configuration, the discharge of high-temperature gases and flames through the vent hole H can be delayed, thereby providing more time for the driver and others to escape.
[0057] Figure 6 is a schematic perspective view showing the configuration of a battery module according to yet another embodiment of the present invention.
[0058] Referring to Figure 6, the module case 200 may further include a module valve 240. Here, the module valve 240 may be fitted into a vent hole H of the module case 200. In particular, when fitted into the vent hole H, the module valve 240 can seal the internal space of the module case 200. The module valve 240 may be configured to open when the temperature or pressure of the internal space of the module case 200 is above a certain level.
[0059] In particular, the vent hole H may be formed in the top plate 210. The module valve 240 may be configured to fit into such a vent hole H in the top plate 210. Therefore, under normal conditions, the module valve 240 can seal the internal space of the module case 200 by closing the vent hole H. However, if a certain level of gas, heat, flame, etc. is generated on the cell assembly 100 side and ejected into the inside of the module case 200, the module valve 240 may not be able to further close the vent hole H and may open it.
[0060] In this case, the module valve 240 can open the vent hole H in various ways when heat or gas is generated. For example, the module valve 240 can open the vent hole H by melting or deforming in shape at temperatures above a certain level. Alternatively, the module valve 240 can be configured to open the vent hole H by detaching from it when the pressure inside the module case 200 exceeds a certain level. The module valve 240 can be made of a wide variety of materials such as plastic, aluminum, and / or stainless steel, depending on the method of opening the vent hole H and the specifications of the cell assembly 100.
[0061] According to the above embodiment of the present invention, the safety of the battery module can be further improved. Specifically, if gas, flame, heat, etc. are generated on the cell assembly 100 side, the vent hole H is initially closed by the module valve 240, so that the expansion (deformation) of the top plate 210 can be reliably caused to widen the inner space. Then, the initial gas, flame, heat, etc. can be accumulated in this widened inner space, delaying their discharge to the outside. Therefore, it becomes possible to secure time for countermeasures in the initial stages when a thermal event occurs, for example, time for the driver to escape.
[0062] Furthermore, as shown in the embodiment of Figure 6, if a vent hole H is formed in the top plate 210 and the module valve 240 is installed in such a vent hole H, it becomes possible to discharge gas, heat, flames, etc., more stably. In particular, most of the gas, flames, heat, etc., present inside the module case 200 may be accumulated in the space expanded by the expansion of the top plate 210, but after a predetermined time has passed, if the vent hole H is opened due to the detachment or deformation of the module valve 240, the gas, flames, heat, etc., can be discharged to the outside through the vent hole H of the top plate 210. Therefore, it is possible to minimize the impact of energy from heat and gases accumulated in the internal space on other normal cells or other components such as busbars inside the module case 200. In this case, it is possible to more effectively prevent heat propagation between cells and damage to parts.
[0063] The aforementioned vent holes may be configured to be opened by deformation (expansion) of the top plate 210. This will be explained in more detail with reference to Figures 7 to 9.
[0064] Figure 7 is a schematic perspective view showing the configuration of a battery module according to yet another embodiment of the present invention. Figure 8 is a cross-sectional view focusing on the C1 portion of the top plate 210 in Figure 7, and Figure 9 is a schematic cross-sectional view showing the configuration of the top plate 210 in a deformed state as shown in Figure 8.
[0065] Referring to Figures 7 and 8, the top plate 210 may be configured with a cutout shape, at least a portion of which is indicated by the part labeled C1. Furthermore, the top plate 210 may be configured in a state where the cutout is closed when it is in a normal state, i.e., when it is not deformed by heat or gas. And such a cutout may be configured to remain closed even if the top plate 210 is slightly deformed, as long as the degree of deformation does not fall below a certain level. Therefore, if gas or heat is generated on the cell assembly 100 side, the top plate 210 may expand and deform into a shape that is bent upwards, as shown in Figure 9.
[0066] When the deformation of the top plate 210 exceeds a certain level, the notch may expand, as shown by the part indicated by the symbol C2 in Figure 9. This expansion of the notch forms a vent hole H, making it possible to discharge gases, heat, and other substances accumulated in the lower part of the top plate 210 to the outside.
[0067] With this configuration of the present invention, even without components such as the module valve 240, the risk of explosion or fire of the battery module, or heat propagation between cells or modules, can be prevented or reduced by discharging heat and pressure accumulated inside the module case 200 to the outside when they exceed a certain level.
[0068] Furthermore, as in the above-described embodiment, the notch, which is a component that opens up when the top plate 210 deforms and serves as a vent hole, may be located on the top plate 210. In this case, as explained earlier in the embodiment of the module valve 240, the vent direction can be controlled when gas or heat is discharged, reducing the impact on other battery cells or components.
[0069] Figure 10 is a schematic top view showing the configuration of a top plate 210 included in a battery module according to yet another embodiment of the present invention.
[0070] Referring to Figure 10, the top plate 210 may be configured such that parts of it have different expansion properties (deformation rates). In particular, the top plate 210 may be configured such that materials with different expansion properties are located at different positions. For example, the top plate 210 may consist of parts indicated by reference numeral T1 and T2 in Figure 10, which are made of different materials. In this case, the parts with different expansion properties can be joined by a wide variety of methods, such as welding, bolting, and bonding.
[0071] According to this embodiment of the present invention, when the pressure and temperature inside the module case 200 increase, the position and shape of the expansion and deformation of the top plate 210 can be controlled with greater precision. For example, the top plate 210 can be made to expand and deform into an appropriate shape depending on the position and shape of the empty space formed above the battery module that allows for expansion, or depending on the arrangement of components that can appropriately dissipate heat accumulated below the top plate 210, such as a cooling device, or depending on the position where other battery modules are arranged.
[0072] In particular, the top plate 210 may be configured so that the central portion has even higher expansion properties than the peripheral portion. For example, as shown in Figure 10, the top plate 210 may be made of different materials for the central portion indicated by the symbol T1 and the peripheral portion indicated by the symbol T2, where the central portion may be made of a material with even better expansion properties than the peripheral portion. That is, in the top plate 210, the central portion indicated by the symbol T1 may be a high-expansion portion where relatively more expansion occurs, and the peripheral portion indicated by the symbol T2 may be a low-expansion portion where relatively less expansion occurs.
[0073] However, the peripheral portion may be made of a material with good properties other than the central portion, even though its expansion properties are not as good. In particular, the top plate 210 can be welded to the side plate 230, and the portion of the top plate 210 that is welded to the side plate 230 can be said to be the peripheral portion. Therefore, the peripheral portion may be made of a material that has good weldability rather than expansion properties. For example, the top plate 210 may have a high-expansion portion indicated by T1 made of a zinc material with good expansion properties, and a low-expansion portion indicated by T2 made of an aluminum material with good weldability. Furthermore, the low-expansion portion T2 of the top plate 210 may be made of the same material as the side plate 230. For example, if the side plate 230 in the module case 200 is made of iron or aluminum, the low-expansion portion T2 of the top plate 210 may similarly be made of iron or aluminum.
[0074] According to this embodiment of the present invention, both expandability and weldability can be ensured for the top plate 210. Specifically, the high-expansion portion T1 located in the center of the top plate 210 deforms upward when the internal pressure and temperature increase to secure the internal space, while the low-expansion portion T2 located at the periphery of the top plate 210 does not deform significantly despite the increase in internal pressure and temperature, resulting in excellent weldability with the upper end of the side plate 230 and the ability to stably maintain the welded state.
[0075] Here, the top plate 210 may have vent holes H formed around the high-expansion portion T1, as shown in Figure 10. Such vent holes H may be configured to penetrate the inside and outside of the module case 200, as described in other embodiments above, and may serve to discharge internal gases to the outside. Furthermore, the vent holes H may be formed at the boundary between the central portion and the peripheral portion. In addition, multiple such vent holes H may be formed around the high-expansion portion T1 of the top plate 210.
[0076] According to this configuration of the present invention, vent holes H are formed along the outer edge of the portion of the top plate 210 where expansion occurs relatively more. This prevents physical bending or heat from being applied to other battery cells, busbars, electrode lead connections, etc., when gas and / or heat contained in the inner space of the central part of the top plate 210 is discharged to the outside through the vent holes H. On the other hand, although not shown in Figure 10, as described in the embodiment of Figure 6, modular valves 240 for opening and closing each vent hole H may be further provided on the top plate 210.
[0077] The top plate 210 may be configured such that its expansion properties are formed asymmetrically. This will be explained in more detail with reference to Figure 11.
[0078] Figure 11 is a schematic top view showing the configuration of a top plate 210 included in a battery module according to yet another embodiment of the present invention.
[0079] Referring to Figure 11, the top plate 210 includes a high-expansion portion T1 and a low-expansion portion T2, where the high-expansion portion T1 may be formed in an asymmetrical shape and / or position. In particular, the high-expansion portion T1 may not be located exactly in the center of the top plate 210, but may be configured in a shape that is offset in a particular direction. For example, if the central point of the top plate 210 is the portion indicated by the symbol O, the high-expansion portion T1 may be positioned offset in the -X axis direction relative to such a central point.
[0080] With this configuration of the present invention, processes such as the expansion of the top plate 210 and the accumulation or release of gas and heat can be carried out effectively and stably. In particular, these processes can be carried out stably depending on other components included inside or outside the battery module, such as battery cells, vent holes, and the shape and arrangement of other battery modules.
[0081] For example, if a vent hole H is formed in the area indicated by the symbol D1 in Figure 11, the high-expansion section T1 may be located in the top plate 210 in a location close to such a vent hole H. As another example, if the area indicated by the symbol D2 in Figure 11 contains the connection points of electrode leads between battery cells, busbars, control components, etc., the high-expansion section T1 may be located relatively far from the D2 area. This prevents damage to these components from gas and heat during gas and heat accumulation and discharge. As yet another example, if other battery modules or control devices such as BMS are located in the area indicated by the symbol D3 in Figure 11, the high-expansion section T1 may be located relatively far from the D3 area. This prevents heat from being transferred to other battery modules or control devices during gas and heat accumulation and discharge.
[0082] Figure 12 is a perspective view showing the coupling portion in the module case 200 of a battery module according to one embodiment of the present invention.
[0083] Referring to Figure 12, the module case 200 may be equipped with a top plate 210, a base plate 220, and side plates 230, and these components may be configured to be joined together to seal the internal space. In particular, the ends of the top plate 210 and the side plate 230, and / or the side plate 230 and the base plate 220, may be joined together, as shown in the parts indicated by reference numerals F1 to F4 and F1' to F2'. For example, the top plate 210 and the side plate 230, and / or the side plate 230 and the base plate 220 may be joined together by welding.
[0084] Thus, in a configuration where the inside of the module case 200 is sealed, when gas or flames are generated inside the cell assembly 100, the expansion of the top plate 210 further secures internal space up to a certain level, preventing the gas or flames from being released to the outside. However, if the internal pressure of the module case 200 exceeds a certain level, at least a portion of the joint between the top plate 210 and the side plate 230, and / or between the side plate 230 and the base plate 220, can be broken. For example, if the parts indicated by the reference numerals F1 to F4 and F1' to F2' in Figure 12 are welded, at least a portion of such welded areas can be broken, allowing gas or flames to be released to the outside through the broken portion.
[0085] Furthermore, in the configuration described above, the multiple joints between the top plate 210 and the side plate 230, and / or between the side plate 230 and the base plate 220, may be configured so that the joining force (welding force) differs in some parts. For example, among the parts indicated by symbols F1 to F4 and F1' to F2' in Figure 12, the module case 200 may be configured such that the welding is intentionally weaker at the part indicated by symbol F3 compared to the other parts. In this case, when the internal pressure of the module case 200 rises above a certain level, the part indicated by symbol F3 is the first to break. Therefore, gas, flames, heat, etc., can be discharged to that part, and it becomes possible to control the direction of such discharge.
[0086] The battery pack according to the present invention may include one or more of the battery modules according to the present invention as described above. In addition to such battery modules, the battery pack according to the present invention may further include various other components, such as battery management systems (BMS), busbars, pack cases, relays, current sensors, and other battery pack components that are known at the time of filing the application of the present invention.
[0087] The battery module according to the present invention can be applied to automobiles such as electric vehicles and hybrid vehicles. That is, an automobile according to the present invention may include the battery module or battery pack according to the present invention. In addition to such battery modules or battery packs, an automobile according to the present invention may further include various other components included in the automobile. For example, an automobile according to the present invention may further include, in addition to the battery module according to the present invention, a vehicle body, a motor, an electronic control unit (ECU), and other control devices.
[0088] On the other hand, while directional terms such as up, down, left, right, front, and back may be used in this specification, these terms are used merely for ease of explanation, and it will be obvious to those skilled in the art that they may vary depending on the position of the object in question, the observer's position, etc.
[0089] Although the present invention has been described above with reference to limited embodiments and drawings, it goes without saying that the present invention is not limited thereto, and that various modifications and variations can be made by persons with ordinary skill in the art to which the present invention pertains, within the equivalent scope of the technical concept and claims of the present invention. [Explanation of symbols]
[0090] 100 cell assembly 200 Module Case 210 Top Plate 220 Base Plate 230 Side Plate 231 Left side plate 232 Right side plate 233 Front Plate 234 Rear plate 240 Module Valves
Claims
1. A cell assembly comprising one or more battery cells, A module case comprising a top plate, a base plate, and side plates to define an internal space, housing the cell assembly in the internal space, wherein the top plate is configured to have at least partially higher expandability than at least one of the base plate and the side plates, Includes, In a battery module in which, when the internal pressure and / or internal temperature of the module case increases, the top plate bends upward, forming an expanded empty space inside the top plate, and gas and / or heat discharged from the cell assembly accumulates in the formed empty space, The aforementioned top plate is configured such that the central portion has greater expandability than the peripheral portion, in this battery module.
2. The battery module according to claim 1, wherein the top plate has at least partially a lower modulus of elasticity or a higher coefficient of thermal expansion than at least one of the base plate and the side plate.
3. The battery module according to claim 1, wherein the module case has vent holes formed in a shape that penetrates from the internal space to the external space.
4. The battery module according to claim 3, wherein the module case further comprises a module valve disposed in the vent hole and configured to open only when the temperature or pressure of the internal space is above a certain level.
5. The battery module according to claim 3, wherein the vent hole is configured to be openable by deformation of the top plate.
6. The battery module according to claim 1, wherein the top plate is configured to have partially different expansion properties.
7. A battery pack comprising a battery module according to any one of claims 1 to 6.
8. An automobile comprising a battery module according to any one of claims 1 to 6.
Citation Information
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