Battery pack and automobile including said battery pack

The battery pack design with overlapping protective covers guides vent gas and sparks through a bent path, addressing safety concerns by minimizing external discharge and enhancing reliability.

JP7848415B2Active Publication Date: 2026-04-20LG ENERGY SOLUTION LTD
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
LG ENERGY SOLUTION LTD
Filing Date
2025-02-06
Publication Date
2026-04-20

AI Technical Summary

Technical Problem

Existing battery packs face safety issues due to the external discharge of ignition factors such as high-temperature particles and sparks, which can lead to fires and potential spread to adjacent equipment, especially in vehicles.

Method used

A battery pack design featuring a pack case with a first and second protective cover that overlap and are spaced apart, guiding vent gas and sparks through a bent path to minimize external discharge, using materials with low thermal conductivity and fire resistance.

Benefits of technology

The design effectively suppresses the external discharge of ignition factors, enhancing safety and reliability by disrupting the straightness of vent gas and physically blocking sparks, thereby preventing fires and ensuring the pack's integrity.

✦ Generated by Eureka AI based on patent content.

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Abstract

A battery pack according to one embodiment of the present invention includes a plurality of battery cells, a pack case that houses the plurality of battery cells and is provided with a discharge hole for discharging gas generated inside to the outside, a first protective cover that covers a first region which is a part of the discharge hole, and a second protective cover that is provided at a position closer to the discharge hole than the first protective cover and covers a second region which is another part of the discharge hole, and has a cover area that overlaps with the first protective cover.
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Description

Technical Field

[0001] The present invention relates to a battery pack and the like, and more specifically, to a battery pack and the like in which safety is further enhanced through structural improvements such as suppressing the external discharge of ignition factors.

[0002] This application claims priority based on Korean Patent Application No. 10-2024-0021861 filed on February 15, 2024, and all the contents disclosed in the specification and drawings of the application are incorporated into this application.

Background Art

[0003] The demand for portable electronic products such as notebook computers, video cameras, mobile phones, etc. that use electricity as a driving source has been growing rapidly. With the commercialization of mobile robots, electric bicycles, electric carts, electric vehicles, etc., research on high-performance secondary batteries that can be repeatedly charged and discharged has been actively conducted.

[0004] Currently, secondary batteries such as nickel-cadmium batteries, nickel-metal hydride batteries, nickel-zinc batteries, and lithium secondary batteries are in commercial use. Among them, lithium secondary batteries have almost no memory effect compared to nickel-based secondary batteries, so they can be freely charged and discharged, have the advantage of a very low self-discharge rate, and also have the characteristics of high energy density and high operating voltage. Therefore, they are not only more intensively studied compared to other types of secondary batteries but are also more extensively applied to actual products.

[0005] Recently, secondary batteries are widely used not only in small devices such as portable electronic devices but also in medium and large-sized devices such as electric vehicles and energy storage systems (ESS).

[0006] In this case, battery modules, in which multiple electrically connected secondary batteries are housed together inside a module case, are primarily used. Furthermore, when higher power or capacity is required, battery packs, in which multiple battery modules are electrically connected, are used. In recent years, cell-to-pack battery packs, in which multiple battery cells are not modularized but directly housed in a pack housing, have also been manufactured.

[0007] While secondary batteries, possessing these advantages, are seeing increased use in various forms, their inherent characteristics may lead to issues such as swelling, inrush current application, overheating due to Joule heating, or thermal runaway due to electrolyte decomposition reactions.

[0008] Furthermore, if an event such as a short circuit or excessive temperature rise occurs in a secondary battery, a large amount of vent gas may be generated. In severe cases, this could result in flames, breakage of electrode plates or active materials, or the release of high-temperature particles containing aluminum particles in the form of sparks. Therefore, ensuring the safety of the battery pack is even more important.

[0009] In the case of medium to large battery packs applied to vehicles such as electric cars that users ride in, the concentration of numerous battery cells and battery modules in an attempt to increase output and capacity can not only trigger large fires but also potentially cause loss of life. Therefore, thermal events generated in battery modules and battery packs must be suppressed and controlled more reliably from the initial stages.

[0010] Conventional battery packs employ a structure that discharges high-temperature gases generated inside through vents provided in the pack case when an abnormal situation occurs. However, during the discharge process, high-temperature particles may escape to the outside in the form of sparks or other phenomena.

[0011] When ignition factors such as sparks leak out of the pack case along with gas, there is a high probability that flames or a fire will occur outside the battery pack due to various ignition environments, such as reactions with oxygen outside the battery pack. If a fire occurs outside the battery pack in this way, it can spread to other adjacent battery packs or the equipment to which the battery pack is attached, potentially leading to a fatal and serious safety problem.

[0012] Therefore, there is an urgent need for technology that can effectively suppress the occurrence or spread of flames or fires outside the battery pack by preventing sparks or flames from being discharged outside the battery pack through the vents. [Overview of the project] [Problems that the invention aims to solve]

[0013] This invention was conceived to solve the aforementioned problems against this background, and aims to provide a battery pack and the like with further enhanced safety by applying an improved structure that can effectively suppress the external leakage of ignition factors such as high-temperature particles and sparks.

[0014] The technical problems that this invention aims to solve are not limited to those described above, and other problems not mentioned can be clearly understood by those skilled in the art from the following description. [Means for solving the problem]

[0015] To solve the above-mentioned problems, a battery pack according to one aspect of the present invention includes a plurality of battery cells, a pack case that houses the plurality of battery cells and is provided with a discharge hole for discharging gas generated inside to the outside, a first protective cover that covers a first region which is a part of the discharge hole, and a second protective cover that is provided at a position closer to the discharge hole than the first protective cover and covers a second region which is another part of the discharge hole, and has a cover area that overlaps with the first protective cover.

[0016] Here, the pack case may include a base frame on which a plurality of the battery cells are mounted, and a side frame on which the discharge holes are provided, in which case the first protective cover and the second protective cover may be configured to face the side frame.

[0017] Furthermore, the second protective cover is preferably provided at a distance from the first protective cover, and the first protective cover or the second protective cover may include a connecting portion that physically connects the first protective cover and the second protective cover so that they are separated from each other.

[0018] Depending on the embodiment, at least one of the first protective cover and the second protective cover may be in the form of a mesh with a porous structure.

[0019] Specifically, the first region of the present invention may be the upper region of the discharge hole, and the second region may be the lower region of the discharge hole.

[0020] Preferably, the lower end of the first protective cover may be positioned higher than the lower end of the discharge hole, and the upper end of the second protective cover may be positioned lower than the upper end of the discharge hole.

[0021] Furthermore, the first protective cover may be configured to be connected to the top frame of the pack case, and the second protective cover may be configured to be connected to the base frame of the pack case.

[0022] Further, the first protective cover may include a first protrusion having a shape protruding outward, and the second protective cover may include a second protrusion having a shape protruding outward.

[0023] Specifically, the first protrusion has a shape inclined upward. In this case, the second protrusion preferably has a shape inclined downward.

[0024] According to an embodiment, a battery pack according to an aspect of the present invention may further include a module case having an internal space in which a plurality of the battery cells are accommodated, and a vent hole communicating with the internal space formed at an upper portion.

Advantages of the Invention

[0025] According to an aspect of the present invention, by effectively discharging vent gas and the like to the outside and preventing ignition factors such as sparks from being discharged to the outside of the pack case, the safety and reliability of the battery pack can be ensured.

[0026] Further, according to an aspect of the present invention, by effectively discharging vent gas generated inside to the outside and guiding the movement path thereof to be bent, not only can the vent gas and the like be weakened, but also the straightness thereof can be disturbed, and various problems caused by the sudden discharge of the vent gas and the like can be solved.

[0027] In particular, according to an aspect of the present invention, the internal gas can be effectively guided to flow to the outside through the mesh structure formed on the protective cover, and physical blocking, restraint or collection, etc. against ignition factors such as high-temperature particles and sparks can be effectively realized, and the outflow of particles such as sparks to the outside can be effectively reduced and suppressed.

[0028] In addition, the present invention can exhibit various other effects. This will be described in each embodiment, but effects that can be easily inferred by those skilled in the art will be omitted from the description.

[0029] The following drawings attached to this specification illustrate preferred embodiments of the present invention and are provided to facilitate a better understanding of the technical concept of the present invention together with the detailed description of the invention. Therefore, the present invention should not be construed as being limited only to the matters described in the drawings.

Brief Description of the Drawings

[0030] [Figure 1] It is a perspective view showing an entire battery pack according to an embodiment of the present invention. [Figure 2] It is a view showing the internal configuration of the battery pack shown in FIG. 1. [Figure 3] It is an enlarged view of a part of the battery pack shown in FIG. 1. [Figure 4] It is a view showing the path and direction through which gas and the like are discharged from the inside of a battery pack according to an embodiment of the present invention. [Figure 5] It is a view showing an entire protective cover according to an embodiment of the present invention. [Figure 6] It is a view for explaining the interrelationship among a first protective cover, a second protective cover, and a discharge hole according to an embodiment of the present invention. [Figure 7] It is a view for explaining the interrelationship among a first protective cover, a second protective cover, and a discharge hole according to an embodiment of the present invention. [Figure 8] It is a view for explaining the main function of a protective cover according to an embodiment of the present invention. [Figure 9] It is a view for explaining the structure of a first protective cover and a second protective cover according to an embodiment of the present invention. [Figure 10] It is a view for explaining the structure of a first protective cover and a second protective cover according to an embodiment of the present invention. [Figure 11] It is a view for explaining a protective cover according to an embodiment of the present invention realized in a mesh form. [Figure 12] It is a view showing an example of a protective cover provided with a protrusion. [Figure 13] This figure shows examples of the shape of the protective cover of the present invention. [Figure 14] This diagram shows an example of the arrangement relationship between the first protective cover and the second protective cover. [Figure 15] This diagram schematically shows an automobile containing a battery pack according to one embodiment of the present invention. [Modes for carrying out the invention]

[0031] 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 in the claims shall not be interpreted in a manner limited to their general and dictionary meanings, but in accordance with the principle that inventors themselves may appropriately define the concepts of terms in order to best describe their invention, and shall be interpreted in a manner and concept corresponding to the technical idea of ​​the present invention.

[0032] Therefore, the embodiments and illustrated configurations described herein 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 substitute for them at the time of filing this application.

[0033] Furthermore, in describing the present invention, if it is determined that a specific description of a related known configuration or function would obscure the gist of the present invention, such detailed description will be omitted.

[0034] When a part of the specification "includes" a certain component, unless otherwise specified, this does not exclude other components, but rather means that it may include other components.

[0035] Furthermore, when a part of the specification is described as being "connected" to another part, this includes not only "direct connections" but also "indirect connections" mediated by other elements.

[0036] Figure 1 is a perspective view showing an overall battery pack 1000 according to one embodiment of the present invention, Figure 2 is a diagram showing the internal configuration of the battery pack 1000 shown in Figure 1, and Figure 3 is an enlarged view of a part of the battery pack 1000 shown in Figure 1.

[0037] As shown in the figure, a battery pack 1000 according to one embodiment of the present invention may consist of a battery cell 100 and a pack case 200.

[0038] The multiple battery cells 100 may include an electrode assembly, a cell case housing the electrode assembly, and electrode leads connected to the electrode assembly and extending to the outside of the cell case to function as electrode terminals. Of course, the multiple battery cells 100 can be electrically connected to each other through at least one combination of series and parallel connections.

[0039] The battery cell 100 may be a pouch-type rechargeable battery. The cell case of such a pouch-type rechargeable battery may be constructed in a pouch form in which a metal layer containing aluminum material is sandwiched between polymer layers.

[0040] Multiple battery cells 100 can be arranged in a front-to-back direction (Y-axis direction) while standing upright in the vertical direction (Z-axis direction), as shown in Figure 2.

[0041] The present invention is not limited by the specific type or form of the battery cell 100, and various battery cells 100 known at the time of filing the application of the present invention can be used in the configuration of the battery pack 1000 of the present invention. In this embodiment, as shown in the figure, a pouch-type secondary battery with high energy density and easy stacking is targeted, but of course, cylindrical secondary batteries or prismatic secondary batteries can also be applied as battery cells 100.

[0042] The multiple battery cells 100 can be modularized as one or more battery modules 10, as shown in Figure 2, and multiple battery modules 10 can be provided inside the pack case 200.

[0043] In other words, the battery pack 1000 according to the present invention includes a plurality of battery modules 10, and the plurality of battery cells 100 included in the battery pack 1000 may be divided and included in the plurality of battery modules 10.

[0044] The battery module 10 may include a module case 11 configured to house at least a portion of a plurality of battery cells 100 in its internal space, and may include a busbar assembly and / or module terminals electrically connected to the plurality of battery cells 100 housed inside.

[0045] Furthermore, the battery module 10 may include vent holes H. The vent holes H guide gases and other substances generated by the battery cells 100 housed inside the module case 11 to be discharged to the outside of the module case 11.

[0046] As shown in Figure 2, if a vent hole H is provided at the top of the module case 11, vent gas and / or sparks can be guided to be discharged to the upper side of the battery module 10 (see Figure 4).

[0047] The pack case 200 provides the basic skeletal structure of the battery pack 1000, and the battery cells 100 are housed in its internal space.

[0048] A pack case 200 according to one embodiment of the present invention may comprise a base frame 210, a side frame 220, and a top frame 230. The top frame 230, also referred to as a pack lid, may be configured to connect with the base frame 210 and the side frame 220 at their upper parts (relative to the Z axis) so as to cover the tops of a plurality of battery cells 100.

[0049] The top frame 230 protects components such as the battery cells 100 housed inside, and prevents vent gas and / or sparks generated by the battery cells 100 from being discharged to the outside of the pack case 200, particularly upwards.

[0050] In particular, as shown in Figure 4, the top frame 230 can work in conjunction with the vent holes H of the battery module 10 described above to realize a type of directional venting, which guides the vent gas and sparks generated inside toward the vent device 300 and the like.

[0051] At least one of the base frame 210, side frame 220, and top frame 230 may be made in a plate-like form and be made in the shape of a polyhedron (e.g., a rectangular parallelepiped) having a certain thickness or greater.

[0052] Depending on the embodiment, at least a portion of the side frame 220 and the base frame 210 may be configured as an integrated unit, and of course, adjacent frames may be joined by a variety of methods such as bolt fastening, laser welding, or ultrasonic welding.

[0053] At least one of the base frame 210, side frame 220, and top frame 230 may have its inner surface made of clad metal, or a flame-retardant material such as GFRP attached to its inner surface.

[0054] At least one of the frames constituting the pack case 200 (base frame 210, side frame 220, top frame 230) may be made of a metal material such as high-strength SUS (stainless steel) or a plastic material such as ABS resin (acrylonitrile-butadiene-styrene copolymer) which has high heat resistance, temperature resistance, and impact resistance, in order to effectively provide physical protection for internal components, and depending on the embodiment, different parts may be made of different materials.

[0055] Depending on the embodiment, the pack case 200 may further include partition-shaped crossbeams 240 extending in the vertical (Y-axis direction) or horizontal (X-axis direction), as shown in the figure. In this case, battery modules 10 can be housed in each of the compartmentalized spaces formed by the crossbeams 240, etc.

[0056] The aforementioned compartmentalized space functions as a kind of independent chamber or partition, and can not only physically protect the individual battery modules 10, but also temporarily prevent thermal events generated in the battery modules 10 from spreading or propagating to other adjacent battery modules 10.

[0057] Of course, it is preferable that the crossbeams 240 forming the partitioned space are made of materials with high heat resistance and physical rigidity, just like the frames that make up the pack case 200.

[0058] The crossbeam 240 may be provided so as to be separated from the top frame 230 by a predetermined distance. That is, the entire upper end (relative to the Z-axis direction) of the crossbeam 240 may be configured to be separated from the top frame 230 by a predetermined distance without contacting the lower surface of the top frame 230.

[0059] According to this embodiment, as shown in Figure 4, a space for the movement of gas and the like is provided between the crossbeam 240 and the pack lid (top frame 230), and gas and the like generated inside can be more effectively guided toward the vent device 300 or the discharge hole 221 due to rising behavior due to high temperature, pressure difference inside and outside the pack case 200, behavioral characteristics of fluid flowing along the surface, physical reflection paths, etc.

[0060] When the flame is discharged along with the vent gas, a guide or venting rib, or a bent member for changing direction, such as a bent shape, may be provided on the top frame 230, etc., to disrupt the strong straight-line characteristic of the flame's behavior and thereby weaken the flame. (Not shown in the illustration.)

[0061] The battery pack 1000 of the present invention may include a vent section for discharging gases and other substances generated inside to the outside.

[0062] In some embodiments, the vent portion may be realized as a discharge hole 221 that penetrates the pack case 200, preferably the side frame 220 of the pack case 200, so as to connect the inside and outside of the pack case 200.

[0063] The vent section can be implemented as a vent device 300 configured to release vent gas to the outside of the pack case 200 when vent gas is generated inside the pack case 200 and the internal pressure rises. The vent device 300 can be provided in a form that is attached to the discharge hole 221.

[0064] For example, the vent device 300 is configured to normally maintain a closed state at its inlet by the elastic restoring force of an elastic body, so as not to allow foreign matter, moisture, etc., to flow into the pack case 200. If the internal pressure exceeds a reference critical value set by the elastic restoring force, the inlet may be configured to open.

[0065] The present invention is not limited by the specific type or form of such vent device 300, and it goes without saying that a variety of vent devices 300 known at the time of filing of the present invention can be used in the configuration of the battery pack 1000 of the present invention.

[0066] The protective covers of the present invention (first protective cover 500A, second protective cover 500B) are configured to cover the discharge hole 221 or a vent device 300 attached to the discharge hole 221, and are configured to effectively discharge vent gas generated inside to the outside of the pack case 200, while suppressing or minimizing the discharge to the outside of debris, particles, sparks, etc. (hereinafter referred to as "sparks, etc.") that may be produced along with the vent gas.

[0067] The specific contents and functions of the protective covers (first protective cover 500A, second protective cover 500B) according to preferred embodiments of the present invention will be described in detail below with reference to the attached drawings and other materials.

[0068] The illustrated axes, the terms used to refer to those axes, and the terms used to describe directions such as upper, lower, front, back, and vertical, which are based on those axes, are intended to provide relative reference points for describing embodiments of the present invention. It is self-evident that these reference points are not intended to specify any direction or position as an absolute reference, and that they can change relatively depending on the position of the object in question, the observer's position, the viewing direction, etc.

[0069] Hereinafter, embodiments of the present invention will be described by defining the Z-axis as the vertical or up-down reference point as described above, and by defining the Y-axis as the forward or backward reference point and the X-axis as the left or right reference point in a corresponding manner.

[0070] Figure 5 is an overall view of the protective cover (first protective cover 500A, second protective cover 500B) according to one embodiment of the present invention, Figures 6 and 7 are diagrams for explaining the interrelationship between the first protective cover 500A, the second protective cover 500B and the discharge hole 221 of the present invention, and Figure 8 is a diagram for explaining the main functions of the protective cover (first protective cover 500A, second protective cover 500B) according to one embodiment of the present invention.

[0071] As described above, the protective cover of the present invention (first protective cover 500A, second protective cover 500B) is configured to cover the discharge hole 221 or the vent device 300 attached to the discharge hole 221, and specifically includes the first protective cover 500A and the second protective cover 500B as shown in Figure 5 and the like.

[0072] The first protective cover 500A and the second protective cover 500B are each configured to cover a portion of the discharge hole 221, but as shown in the figure, the second protective cover 500B is configured to have a cover area S (see Figure 7, etc.) that overlaps with the area covered by the first protective cover 500A.

[0073] Hereinafter, the area of ​​the discharge hole 221 covered by the first protective cover 500A will be referred to as the "first area," and the area of ​​the discharge hole 221 covered by the second protective cover 500B will be referred to as the "second area." As shown in the figure, the second area is a part of the discharge hole 221 and is not the same as the first area, but includes an area that is partially common with the first area (hereinafter referred to as the "overlapping area").

[0074] As described above, when the vent device 300 is attached to the discharge hole 221, the first area covered by the first protective cover 500A and the second area covered by the second protective cover 500B can each be part of the vent device 300.

[0075] The protective covers of the present invention (first protective cover 500A, second protective cover 500B) basically perform the function of physically blocking sparks and the like so that they do not get discharged or leaked to the outside through the discharge hole 221 or the vent device 300 attached to the discharge hole 221.

[0076] The protective covers of the present invention (first protective cover 500A, second protective cover 500B) are preferably made of or contain a material (for example, mica) with low thermal conductivity and excellent heat resistance and / or fire resistance, so as to effectively block high-temperature sparks and minimize the effects of such sparks. Of course, depending on the embodiment, the protective covers (first protective cover 500A, second protective cover 500B) may be made of a metal material having rigidity and heat resistance.

[0077] The protective covers of the present invention (first protective cover 500A, second protective cover 500B) can be mounted facing the side frame 220 when the discharge hole 221 is provided on the side frame 220 of the pack case 200.

[0078] The second protective cover 500B is preferably positioned behind the first protective cover 500A, with reference to the path through which gases generated inside the unit are directed towards the discharge hole 221. In other words, with reference to the discharge hole 221, the second protective cover 500B is preferably positioned closer to the discharge hole 221 than the first protective cover 500A.

[0079] Furthermore, the second protective cover 500B of the present invention is provided in a position closer to the discharge hole 221 than the first protective cover 500A, but it is preferable that it is provided in a position D (see Figure 8) that is physically separated from the first protective cover 500A without being in contact with it, as shown in the figure.

[0080] In this way, when the first protective cover 500A and the second protective cover 500B are physically separated (D), and each has an individual area that it covers and an overlapping area S that they both cover, the venting path F through which gas and sparks are discharged can be a bent or curved path overall (for example, a zigzag-shaped path), as shown in Figure 8.

[0081] When the exhaust gas discharge path F is bent in this manner, the straightness of the vent gas can be disrupted, and the width over which sparks and other ignition factors are physically blocked or captured increases by the amount of the expansion or extension of the discharge path. As a result, the phenomenon of sparks and other ignition factors escaping from the discharge port 221 along with the vent gas can be significantly suppressed.

[0082] If the first protective cover 500A and the second protective cover 500B are configured to cover different areas such as the discharge hole 221, while also having a common overlapping area S, and are mounted spaced apart from each other, the technical concept of the present invention described above can be realized. Therefore, the first protective cover 500A and the second protective cover 500B can be composed of various shapes and structures, including the embodiment shown in Figure 13, and can have various positions or arrangement relationships, including the embodiment shown in Figure 14.

[0083] Furthermore, if a vent device 300 is attached to the discharge hole 221, and a nozzle or the like that protrudes into the pack case 200 is provided in the center of the vent device 300, then the first protective cover 500A and / or the second protective cover 500B may have arch-shaped or inverted arch-shaped mounting spaces 540A and 540B that avoid the nozzle or the like, or that the nozzle or the like can be placed on.

[0084] Since the gases generated in the battery cell 100 or battery module 10 are at a high temperature, they inherently have a tendency to rise. As explained with reference to Figure 4, a vent space is formed at the top of the battery pack 1000 by the structure of the vent holes H of the battery module 10, the top frame 230 of the pack case 200, the cross beam 240, etc., so the vent gases and sparks move towards the discharge holes 221 at the top of the battery pack 1000.

[0085] Therefore, if the first protective cover 500A, which covers a portion of the discharge hole 221, is configured to cover the upper part of the discharge hole 221, the possibility of collision with sparks and the like can be further effectively increased, thereby more reliably suppressing the external emission of sparks and the like.

[0086] On the other hand, since the vent gas is a fluid in a gaseous state, it behaves to avoid the first protective cover 500A and the like due to the internal pressure, and is smoothly discharged to the outside through the discharge hole 221 and the like.

[0087] Therefore, it is preferable that the first area covered by the first protective cover 500A of the present invention is configured to be the upper area of ​​the discharge hole 221, and correspondingly, the second area covered by the second protective cover 500B is configured to be the lower area of ​​the discharge hole 221.

[0088] Specifically, as shown in Figure 7, it is preferable that the lower end of the first protective cover 500A is positioned higher (Δh1) than the lower end of the discharge hole 221, and the upper end of the second protective cover 500B is positioned lower (Δh2) than the upper end of the discharge hole 221.

[0089] Furthermore, it is preferable that the lower end of the first protective cover 500A has a shape that extends downward (relative to the Z-axis) to a position lower than the center position of the discharge hole 221, and the upper end of the second protective cover 500B has a shape that extends to a position higher than the center position of the discharge hole 221, so that an overlapping region S is formed between the first region of the first protective cover 500A and the second region of the second protective cover 500B.

[0090] Although the drawing illustrates a configuration in which the protective cover is divided into a first protective cover 500A and a second protective cover 500B, there may be three or more protective covers as long as the discharge path F is guided in a bent shape or the like to physically block sparks and the like.

[0091] Figures 9 and 10 are diagrams illustrating the structure of the first protective cover 500A and the second protective cover 500B according to one embodiment of the present invention.

[0092] As shown in the figures, specifically, the first protective cover 500A of the present invention includes a first body portion 510A, a first coupling portion 520A, and a first connecting portion 530A, and the second protective cover 500B may include a second body portion 510B, a second coupling portion 520B, and a second connecting portion 530B.

[0093] The first body portion 510A of the first protective cover 500A is positioned to face the discharge hole 221 and is configured to cover the first area of ​​the discharge hole 221. It is a plate shape erected vertically (in the Z-axis direction) as shown in the figure and may be provided facing the side frame 220.

[0094] The first joint portion 520A of the first protective cover 500A is configured to be connected to the first body portion 510A or to extend horizontally (in the XY plane) from the first body portion 510A, and can be connected to the lower surface of the top frame 230 by methods such as bolting, welding, or bonding.

[0095] With this configuration, the first protective cover 500A is easily connected to the pack case 200, which not only improves the efficiency of the assembly process and space utilization, but also allows for more stable blocking of sparks flowing in from above.

[0096] Depending on the embodiment, the first protective cover 500A may further include a first connecting portion 530A. As shown in the figure, the first connecting portion 530A has a shape that extends toward the side frame 220 from at least one of the left end and right end of the first body portion 510A and can be connected to the side frame 220 by means of adhesive, bolting or welding.

[0097] As described above, the first protective cover 500A has a structure that allows it to be folded in opposite directions at the top and sides, and these are physically supported by the top frame 230 and side frame 220 respectively. Therefore, it not only has structural rigidity but can also prevent the discharge of sparks and other elements to the outside from multiple directions.

[0098] The second body portion 510B of the second protective cover 500B is positioned to face the discharge hole 221 and is configured to cover the second region (lower region) of the discharge hole 221. Similar to the first body portion 510A, it may be a plate shape erected vertically (in the Z-axis direction) and provided to face the side frame 220.

[0099] The second connecting portion 520B of the second protective cover 500B is configured to be connected to the second body portion 510B or to extend horizontally (in the XY plane) from the second body portion 510B, and can be connected to the base frame 210 by methods such as bolting, welding, or bonding.

[0100] When the second protective cover 500B is physically connected to the base frame 210 through the second joint 520B in this manner, it is possible to more stably block sparks and other airflow from below, and as described above with reference to Figure 8, the vent gas discharge path F can be guided into a zigzag shape or similar.

[0101] Depending on the embodiment, the second protective cover 500B may further include a second connecting portion 530B. The second connecting portion 530B has a shape that extends toward the side frame 220 from at least one of the left and right ends of the second body portion 510B, as shown in the figure, and can be connected to the side frame 220 by means of adhesive, bolting, or welding.

[0102] As shown in Figure 9, the second protective cover 500B may be configured to be partially inserted inside the first protective cover 500A so that an overlapping region S is formed between the first region of the first protective cover 500A and the second region of the second protective cover 500B.

[0103] When both the first connecting portion 530A of the first protective cover 500A and the second connecting portion 530B of the second protective cover 500B are in contact with or connected to the side frame 220, it is preferable that the width (Y-axis reference) of the second connecting portion 530B is smaller than the width of the first connecting portion 530A so that the second protective cover 500B is inserted inside the first protective cover 500A. From a similar viewpoint, the left-right length (X-axis reference) of the second body portion 510B may be shorter than the left-right length of the first body portion 510A.

[0104] In this case, the distance D between the first protective cover 500A and the second protective cover 500B, specifically the distance D between the first body portion 510A and the second body portion 510B, can be variably set based on the relationship between the width of the first connecting portion 530A (based on the Y axis) and the width of the second connecting portion 530B (based on the Y axis).

[0105] Depending on the embodiment, the second protective cover 500B of the present invention may be plate-shaped, as shown in Figure 10. In this case as well, it goes without saying that the second protective cover 500B must be positioned lower overall than the first protective cover 500A so that an overlapping region S of the first protective cover 500A and the second protective cover 500B is formed.

[0106] According to this embodiment, not only is the separation distance D between the first protective cover 500A and the second protective cover 500B effectively realized, but the overlapping region S between the first protective cover 500A and the second protective cover 500B can also be effectively realized, while the protective covers (first protective cover 500A, second protective cover 500B) can be realized with a simpler structure.

[0107] According to this embodiment, not only can the first protective cover 500A and the second protective cover 500B be manufactured as a single, unified object, but the protective covers of the present invention (first protective cover 500A, second protective cover 500B) can be attached to the battery pack 1000 by simply connecting the first coupling portion 520A of the first protective cover 500A, which functions as a kind of flange, to the top frame 230 of the pack case 200, thereby further improving the efficiency of the assembly process.

[0108] When the structure of the protective covers (first protective cover 500A, second protective cover 500B) is realized according to this embodiment, the separation distance D between the first protective cover 500A and the second protective cover 500B can be variably determined by the width (Y-axis reference) of the first connecting portion 530A.

[0109] Furthermore, the overlapping region S between the first region of the first protective cover 500A and the second region of the second protective cover 500B can be variably determined by the relative placement height (based on the Z axis) of the second protective cover 500B and / or the vertical extension length of the second protective cover 500B.

[0110] Depending on the embodiment, the second connecting portion 530B may be provided on the second protective cover 500B instead of all or part of the first connecting portion 530A of the first protective cover 500A, unlike the illustrated form.

[0111] Figure 11 is a diagram illustrating a protective cover (first protective cover 500A, second protective cover 500B) according to one embodiment of the present invention, which is implemented in a mesh form, and Figure 12 is a diagram showing an example of a protective cover (first protective cover 500A, second protective cover 500B) provided with protrusions.

[0112] As shown in Figure 11, at least one of the first protective cover 500A and the second protective cover 500B of the present invention may be configured in a mesh form having a porous structure. The mesh structure may be formed only on the first body portion 510A of the first protective cover 500A, but may also be formed on the first connecting portion 530A depending on the embodiment. The same applies to the second protective cover 500B.

[0113] When the protective covers (first protective cover 500A, second protective cover 500B) are constructed in a mesh form, it is possible to improve the efficiency of vent gases and other substances that should be discharged to the outside, and at the same time, a screening function can be performed to separate particles (discharged substances) such as sparks through physical contact with the numerous holes.

[0114] Even if the mesh structure formed on the surface of the protective cover (first protective cover 500A, second protective cover 500B) becomes clogged with particles such as sparks, the protective cover (first protective cover 500A, second protective cover 500B) can still act as a resistor that physically blocks or prevents the discharge of sparks and other particles, as described above.

[0115] The first protective cover 500A of the present invention may, depending on the embodiment, include a first projection 50A as shown in Figure 12.

[0116] The first protrusion 50A may be configured to protrude from the first body portion 510A in a direction away from the side frame 220, that is, in the direction of the inside of the pack case 200 (-Y axis direction). Preferably, it may be configured to have an upward-sloping shape as shown in the figure. In addition, a plurality of the first protrusions 50A may be provided and arranged vertically on the first body portion 510A with respect to the vertical direction.

[0117] As described above with reference to Figure 4, the gas generated inside moves towards the first protective cover 500A of the present invention at the top, and after the gas physically collides with the first protective cover 500A, it moves downward.

[0118] Therefore, when the first protrusion 50A has an upward-inclined shape, it can provide a blocking direction opposite to the direction of movement, which not only more effectively weakens the force of sparks and flames that travel in a straight line, but also further improves the collection or capture efficiency of sparks and the like.

[0119] As described above, after passing through the first protective cover 500A, the gas and the like move upward again due to the second protective cover 500B. Therefore, if the second protrusion 50B provided on the second protective cover 500B is configured to be inclined downward as shown in the figure, it is possible to provide more effective physical blocking against sparks and the like moving in the upward direction.

[0120] A battery pack 1000 according to one embodiment of the present invention may further include a battery management system (not shown). The battery management system (BMS) may be installed in the internal space of the pack case 200 and configured to comprehensively control the charging and discharging operations and data transmission and reception operations of the battery cells 100 or battery modules 10.

[0121] Furthermore, the battery pack 1000 according to one embodiment of the present invention may further include a battery disconnect unit. The battery disconnect unit (BDU) may be configured to control the electrical connections of the battery cells in order to manage the power capacity and function of the battery pack 1000. Therefore, the battery disconnect unit may include a power relay, a current sensor, a fuse, and the like. The battery disconnect unit may also be provided on a pack basis rather than on a module basis, and a variety of disconnect units known at the time of filing of the present invention may be employed.

[0122] In addition, the battery pack 1000 according to one embodiment of the present invention may further include a variety of battery pack components known at the time of filing of the present invention. For example, it may further include a manual service disconnector (MSD) that allows an operator to manually disconnect the service plug and shut off the power supply.

[0123] Figure 15 is a schematic perspective view of an automobile containing a battery pack 1000 according to one embodiment of the present invention.

[0124] Referring to Figure 15, an automobile 3 according to one embodiment of the present invention may include at least one battery pack 1000 according to the embodiments described above. The automobile 3 according to the present invention may be, for example, an electric vehicle, a hybrid vehicle, or a plug-in hybrid vehicle. The automobile 3 includes four-wheeled vehicles and two-wheeled vehicles. The automobile 3 can be operated by receiving power from a battery pack 1000 or battery module 10 according to one embodiment of the present invention.

[0125] As described above, the present invention has been explained with limited embodiments and drawings, but it goes without saying that the present invention is not limited thereto, and that various modifications and variations are possible within the equivalent scope of the technical idea and claims of the present invention by persons with ordinary skill in the art to which the present invention belongs.

[0126] The descriptions of the present invention and the accompanying drawings illustrating the embodiments thereof may be presented in a somewhat exaggerated manner to emphasize or highlight the content of the invention. However, considering the above-mentioned content and the illustrated details, it should be understood that a variety of modified and applied examples are possible for those with an ordinary level of skill in the art.

[0127] Furthermore, it is self-evident that in the description of the present invention, expressions such as first, second, upper, lower, or top and bottom are merely instrumental conceptual terms used to relatively distinguish each component (element) from one another, and are not terms used to indicate specific procedures, priorities, etc., or to physically distinguish each component (element) by absolute criteria.

Claims

1. Multiple battery cells, A pack case that houses multiple of the aforementioned battery cells and is provided with a discharge hole for discharging gas generated inside to the outside, A first protective cover covers a first region which is a part of the discharge hole, The system includes a second protective cover provided at a position closer to the discharge hole than the first protective cover, covering a second region which is another part of the discharge hole, and having a covering region that overlaps with the first protective cover, The first protective cover or the second protective cover is A battery pack including a connecting portion that physically connects the first protective cover and the second protective cover such that the first protective cover and the second protective cover are separated from each other.

2. The aforementioned pack case is A base frame on which multiple battery cells are mounted, The side frame includes the aforementioned discharge hole, The battery pack according to claim 1, wherein the first protective cover and the second protective cover are configured to face the side frame.

3. The battery pack according to claim 1, wherein the second protective cover is provided at a distance from the first protective cover.

4. The battery pack according to claim 1, wherein at least one of the first protective cover and the second protective cover is in the form of a mesh with a porous structure.

5. The first region is the upper region of the discharge hole, The battery pack according to claim 1, wherein the second region is the lower region of the discharge hole.

6. The lower end of the first protective cover is positioned higher than the lower end of the discharge hole. The battery pack according to claim 5, wherein the upper end of the second protective cover is positioned lower than the upper end of the discharge hole.

7. The battery pack according to claim 1, wherein the first protective cover is connected to the top frame of the pack case.

8. The battery pack according to claim 1, wherein the second protective cover is connected to the base frame of the pack case.

9. The battery pack according to claim 1, wherein the first protective cover includes a first protruding portion having a protruding shape.

10. The battery pack according to claim 9, wherein the second protective cover includes a second protruding portion having a protruding shape.

11. The first protrusion has a shape that is inclined toward the top frame of the pack case, The battery pack according to claim 10, wherein the second protrusion has a shape that is inclined toward the base frame of the pack case.

12. The battery pack according to claim 1, further comprising a module case having an internal space for housing a plurality of the battery cells, and having a vent hole formed at the top that communicates with the internal space.

13. An automobile comprising a battery pack according to any one of claims 1 to 12.

Citation Information

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