BATTERY MODULE AND BATTERY PACK
Patent Information
- Application Number
- DE602018083736
- Authority / Receiving Office
- DE · DE
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2018-02-06
- Filing Date
- 2018-12-05
- Publication Date
- 2025-07-16
- Estimated Expiration
- 2038-12-05
AI Technical Summary
Existing lithium secondary batteries face the risk of flames spreading from one battery cell to others when one cell explodes or ignites due to overcurrent and overheating, posing safety hazards and potential damage to connected devices.
A battery module design featuring a flame spread prevention member made of mica with heat insulation and resistance properties, which covers each battery cell and is slidably coupled to a frame, preventing flame propagation.
Effectively prevents flames from spreading between battery cells, ensuring safety and simplifying manufacturing through a straightforward structure.
Description
TECHNICAL FIELD
[0001] The present application claims priority to Korean Patent Application No. 10-2018-0014621 filed on February 6, 2018 in the Republic of Korea.
[0002] The present disclosure relates to a battery module and a battery pack including the battery module, and more particular, to a battery module capable of preventing a flame generated at any one battery cell from spreading to other battery cells, and a battery pack including the battery module.BACKGROUND ART
[0003] As technology development and demand for a mobile device have increased, demand for a secondary battery as an energy source has rapidly increased. Conventionally, a nickel-cadmium battery or a hydrogen ion battery has been used as the secondary battery. However, a lithium secondary battery is recently widely used because charging and discharging is free due to rare memory effect in comparison with a nickelbased secondary battery, a self-discharge rate is very low, and an energy density is high.
[0004] The lithium secondary battery mainly uses a lithium oxide and a carbonaceous material as a positive electrode active material and a negative electrode active material, respectively. The lithium secondary battery includes an electrode assembly in which a positive electrode plate and a negative electrode plate, respectively coated with the positive electrode active material and the negative electrode active material, are arranged with a separator therebetween, and an outer member, that is a battery case, which seals and receives the electrode assembly together with an electrolyte solution.
[0005] The lithium secondary battery includes a positive electrode, a negative electrode, and a separator interposed therebetween and an electrolyte. Depending on which material is used for the positive electrode active material and the negative electrode active material, the lithium secondary battery is classified into a lithium ion battery (LIB) and a polymer lithium ion battery (PLIB). Generally, an electrode of the lithium secondary battery is prepared by applying the positive or negative electrode active material to a current collector made of aluminum or copper sheet, mesh, film, foil, or the like and then drying the same.
[0006] The lithium secondary battery is spotlighted due to its high operating voltage and very high energy density. However, since the lithium secondary battery uses an organic electrolyte, when being overcharged, the lithium secondary battery may cause overcurrent and overheating, which may lead to explosion or ignition in server cases.
[0007] Regarding the secondary battery, in case of a conventional battery module in which a plurality of battery cells are stacked, if any one battery cell explodes or ignites due to overcurrent and overheat, the flame spreads to other battery cells that operates normally, so that a plurality of battery cells explode in series. This may damage various devices equipped with the battery module, and a user may be exposed to the risk of a safety accident.
[0008] EP 2 571 092 A1, according to its Abstract, concerns a secondary battery module in which heat can be uniformly radiated with high efficiency and the temperature of a cell can be uniformly maintained. An NaS battery module includes a container, a plurality of cells for an NaS battery, sand, and a mica plate. The container includes a main body provided with side walls and a lower wall, and a cover provided with an upper wall. The side walls partition the inside and outside of the container in a direction in which the arrangement plane of the cells extends. The upper wall and the lower wall partition the inside and outside of the container in a direction perpendicular to the direction in which the arrangement plane of the cells extends. The lower wall and the side walls are high heat insulating walls whereas the upper wall is a solid low heat insulating wall having a heat insulating property lower than that of the high heat insulating wall. The cells, the sand, and the mica plate are housed inside of the container. A variable louver is disposed outside of the upper wall so as to cover the outer surface of the upper wall.
[0009] EP 3 624 214 A1 discloses in its Abstract a cylindrical secondary battery module. The cylindrical secondary battery module includes: a plurality of cylindrical secondary battery cells respectively having a battery case in which an electrode assembly and an electrolyte are accommodated; a cell frame at which the plurality of cylindrical secondary battery cells are disposed; and a lid coupled to the cell frame and having a flame outlet. The cell frame includes: a plurality of plate members bent and coupled to intersect each other; and a space formed between the plurality of plate members so that the cylindrical secondary battery cells are disposed therein.
[0010] CN107425222 A concerns, according to its Abstract, an explosionproof and flame-retardant structure of a lithium battery comprising a shell and a surface cover, wherein accommodating cavities are formed in the shell, a plurality of lithium battery packs are arranged in the accommodating cavities and are connected with an electrode, the electrode is arranged on the surface cover, the explosionproof and flame-retardant structure is characterized in that fire extinguishing layers are arranged between the accommodating cavities and the lithium battery packs, each fire extinguishing layer comprises a low-melting-point isolation bag and a fluid flame retardant, and the fluid flame retardant is arranged in the low-melting-point isolation bag. The explosionproof and flame-retardant structure has the beneficial effects that 1) the explosionproof and flame-retardant structure is simple and is low in production cost, and the market competitiveness is improved; 2) the lithium battery is wrapped by fire extinguishing agents internally arranged in the low-melting-point isolation bags, the isolation bags are molten at a high temperature when the lithium battery is heated and combusted, so that effects of temperature reduction and electrolyte dilution can be achieved by the flame retardants in the isolation bags, the lithium battery is prevented from being on fire and combustion and even an explosion accident is prevented, and the application safety of the battery is improved; and 3) with regard to batteries having different parameters, the positions and the numbers of the fire extinguishing layers can be correspondingly adjusted, and the explosionproof and flame-retardant structure is adaptive to different occasions to the greatest extent.
[0011] KR 2012 0132341 A pertains to a secondary battery provided to prevent ignition by absorbing generated heat as much as possible even in the case of heat generated due to misuses by nailing or crushing. This secondary battery comprises: an electrode assembly, and at least one safety element connected to the electrode assembly. The safety element comprises a safety layer comprising the material which absorbs heat by a short. The heatabsorbing material comprises polyethylene material. The polyethylene material is polyethylene wax. The safety layer comprises a conductive material arranged in the polyethylene wax. The safety element comprises a substrate layer, and a first adhesive layer for attaching safety element to the electrode assembly and substrate layer. The safety layer is interposed between the substrate layer and the first adhesive layer.DISCLOSURETechnical Problem
[0012] It is an object of the present disclosure to provide a battery module, which may prevent a flame generated at any one battery cell among a plurality of battery cells from spreading to other battery cells, and a battery pack including the battery module.
[0013] Also, a further object of the present disclosure is to provide a battery module, which may be easily manufactured due to a simple flame spread prevention structure, and a battery pack including the battery module.Technical Solution
[0014] In one aspect of the present disclosure, there is provided a battery module, comprising: a battery cell stack in which a plurality of battery cells are stacked; a flame spread prevention member configured to cover at least a portion of each battery cell; and a case configured to accommodate the battery cell stack covered by the flame spread prevention member. The battery cell is a pouch-type battery cell having a section of a rectangular shape, and the flame spread prevention member has a hexahedral shape. In addition a hollow is formed in the flame spread prevention member so that the battery cell is inserted into the frame spread prevention member. Also, the flame spread prevention member includes a mica plate containing mica with both heat insulation and heat resistance.
[0015] In addition, the battery module may further comprise a frame coupled to the case and having a plurality of insert grooves formed with a preset interval, wherein the flame spread prevention member may be slidably coupled to each of the insert grooves of the frame, and the battery cell may be interposed between the flame spread prevention members adjacent to each other.
[0016] Also, the frame may be provided in a pair, the pair of frames may be respectively coupled to an upper side and a lower side of the case so that the insert grooves thereof face each other, and both ends of the flame spread prevention member may be respectively inserted into the insert grooves of the pair of frames.
[0017] In addition, the frame may include a mica plate containing mica with both heat insulation and heat resistance.
[0018] Meanwhile, in another aspect of the present disclosure, there is also provided a battery pack, which comprises the battery module described above.Advantageous Effects
[0019] According to the embodiment of the present disclosure, since the flame spread prevention member covers the plurality of battery cells entirely, even though explosion or fire occurs at any one battery cell among the plurality of battery cells, it is possible to prevent the flame from spreading to other battery cells.
[0020] In addition, since a flame spread prevention member made of mica having both heat insulation and heat resistance properties is formed to simplify the flame spread prevention structure, the battery module may be manufactured easily.DESCRIPTION OF DRAWINGS
[0021] FIG. 1 is a cross-sectioned view showing a battery module according to an embodiment of the present disclosure. FIG. 2 is a perspective view showing the battery module according to the embodiment of the present disclosure, from which a flame spread prevention member and a battery cell are exploded. FIG. 3 is a schematic perspective view showing the battery module according to the embodiment of the present disclosure, in which an individual battery cell is covered by the flame spread prevention member. BEST MODE
[0022] Hereinafter, preferred embodiments of the present disclosure will be described in detail with reference to the accompanying drawings. Prior to the description, it should be understood that the terms used in the specification and the appended claims should not be construed as limited to general and dictionary meanings, but interpreted based on the meanings and concepts corresponding to technical aspects of the present disclosure on the basis of the principle that the inventor is allowed to define terms appropriately for the best explanation. Therefore, the description proposed herein is just a preferable example for the purpose of illustrations only, not intended to limit the scope of the disclosure, so it should be understood that other equivalents and modifications could be made thereto without departing from the scope of the disclosure.
[0023] In the drawings, the size of each element or a specific part of the element may be exaggerated, omitted, or schematically illustrated for convenience and clarity of a description. Thus, the size of each element does not entirely reflect the actual size of the element. A detailed description of well-known functions or elements associated with the present disclosure will be omitted if it unnecessarily obscures the subject matter of the present disclosure.
[0024] The term, 'combine' or 'connect' as used herein, may refer not only to a case where one member and another member are directly combined or directly connected but also a case where one member is indirectly combined with another member via a connecting member or is indirectly connected.
[0025] FIG. 1 is a cross-sectioned view showing a battery module according to the first embodiment of the present disclosure, FIG. 2 is a perspective view showing the battery module according to the first embodiment of the present disclosure, from which a flame spread prevention member and a battery cell are exploded, and FIG. 3 is a schematic perspective view showing the battery module according to the first embodiment of the present disclosure, in which an individual battery cell is covered by the flame spread prevention member.
[0026] Referring to FIGS. 1 to 3, a battery module 10 according to an embodiment of the present disclosure includes a battery cell stack 100, a flame spread prevention member 200, and a case 300.
[0027] The battery cell stack 100 includes a plurality of stacked battery cells 110. The battery cell 110 may have a structure in which a plurality of unit cells, in each of which a positive electrode plate, a separator and a negative electrode plate are arranged in order, or a plurality of bi-cells, in each of which a positive electrode plate, a separator, a negative electrode plate, a separator, a positive electrode plate, a separator and a negative electrode plate are arranged in order, are stacked suitable for a battery capacity. The battery cell 110 includes electrode leads 113. The electrode leads 113 are a kind of terminal exposed to the outside and connected to an external device and are made of a conductive material. The electrode leads 113 include a positive electrode lead and a negative electrode lead. The positive electrode lead and the negative electrode lead may be disposed at opposite sides of the battery cell 110 in the longitudinal direction, or the positive electrode lead and the negative electrode lead may be disposed at the same side the battery cell 110 in the longitudinal direction.
[0028] The flame spread prevention member 200 individually coversthe plurality of battery cells 110. Here, although the flame spread prevention member 200 contacts the battery cell 110 in order to cover the battery cell 110, the flame spread prevention member 200 covers the battery cell 110 in a state of being spaced apart from the battery cell 110 by a predetermined interval. In this case, the flame spread prevention member 200 is supported by the case 300. Meanwhile, in the first embodiment of the present disclosure, as shown in FIGS. 1 and 3, it is described that the flame spread prevention member 200 surrounds all side surfaces of the individual battery cell 110 except side surfaces where the electrode lead 113 is formed, namely all of four side surfaces of the battery cell 110 except the side surfaces where the electrode lead 113 is formed.
[0029] The flame spread prevention member 200 is provided as a mica plate containing mica with both heat insulation and heat resistance. In addition, as shown in FIG. 2, the flame spread prevention member 200 is formed in a hexahedral shape in which four mica plates are coupled to form a hollow 210 therein. Here, the four mica plates may be integrally formed, or the four mica plates may be prepared separately and then coupled to each other. However, the number and shape of the mica plates are not limited to the above. The battery cell 110 is a pouch-type battery cell 110 having a section of a rectangular shape, and the flame spread prevention member 200 is formed in a hexahedral shape having a hollow 210 formed therein, and as shown in FIG. 2, the pouch-type battery cell 110 is inserted into and placed in the hollow 210 of the flame spread prevention member 200. Here, the flame spreading prevention member 200 is made of a mica with having heat insulation and heat resistance. Even if an explosion or ignition occurs in any one battery cell 110, the flame is blocked by the mica plate and prevented from spreading to other battery cells 110. That is, referring to FIG. 1, since all of the plurality of battery cells 110 are individually covered by the flame spread prevention members 200, respectively, even if an ignition occurs in any of the battery cells 110, it is possible to prevent the flame from spreading, and so it is possible to prevent the flame from causing a larger fire. Meanwhile, the flame spread prevention member 200 is formed of a thin mica plate that is lighter than aluminum, which facilitates the fabrication and simplifies the structure.
[0030] The case 300 accommodates the battery cell stack 100 covered by the flame spread prevention member 200. The case 300 surrounds the battery cells 110, thereby protecting the battery cells 110 from external vibration or shock. The case 300 is formed in a shape corresponding to the shape of the battery cell stack 100. For example, if the battery cell 110 or the battery cell stack 100 has a hexahedral shape with a section of a rectangular shape, the case 300 also has a hexahedron shape corresponding thereto. The case 300 can be manufactured, for example, by bending a plate made of metal, and thus the case 300 may be manufactured in an integrated form. If the case 300 is manufactured in an integrated form, the coupling process is simplified. Alternatively, the case 300 may be prepared as separated parts, which are coupled to each other by welding or the like.
[0031] Hereinafter, the operation and effect of the battery module 10 according to the first embodiment of the present disclosure will be described with reference to the drawings.
[0032] Referring to FIGS. 1 to 3, the battery cell 110 is formed in a substantially hexahedral shape, and the flame spread prevention member 200 formed of a mica plate is provided to surround four surfaces of the battery cell 110 except two surfaces where the electrode leads 113 are formed. That is, one flame spread prevention member 200 surrounds one of the plurality of battery cells 110, and the plurality of flame spread prevention members 200 respectively cover the battery cells 110 in this manner. In addition, the battery cell stack 100 covered by the flame spread prevention members 200 is accommodated in the case 300.
[0033] In this way, according to the embodiment of the present disclosure, since the flame spread prevention members 200 cover all of the plurality of battery cells 110, respectively, even though explosion or ignition occurs in any one of the plurality of battery cells 110, it is possible to prevent the flame from spreading to other battery cells 110.
[0034] Meanwhile, a battery pack (not shown) according to an embodiment of the present disclosure, may include one or more battery modules 10 according to an embodiment of the present disclosure as described above. Also, in addition to the battery modules 10, the battery pack (not shown) may further includes a housing for accommodating the battery modules 10, and various devices for controlling charge and discharge of the battery modules 10, such as a BMS, a current sensor, a fuse, and the like.
[0035] The present disclosure has been described in detail. However, it should be understood that the detailed description and specific examples, while indicating preferred embodiments of the disclosure, are given by way of illustration only.
Claims
1. A battery module (10), comprising: a battery cell stack (100) in which a plurality of battery cells (110) are stacked; a flame spread prevention member (200) configured to cover at least a portion of each battery cell (110); and a case (300) configured to accommodate the battery cell stack (100) covered by the flame spread prevention member (200), characterized in that the battery cell (110) is a pouch-type battery cell (110) having a section of a rectangular shape, and the flame spread prevention member (200) has a hexahedral shape; wherein a hollow (210) is formed in the flame spread prevention member (200) so that the battery cell (110) is inserted into the flame spread prevention member (200), wherein the flame spread prevention member (200) includes a mica plate containing mica with both heat insulation and heat resistance.
2. The battery module (10) according to claim 1, further comprising: a frame coupled to the case (300) and having a plurality of insert grooves formed with a preset interval, wherein the flame spread prevention member (200) is slidably coupled to each of the insert grooves of the frame, and the battery cell (110) is interposed between the flame spread prevention members adjacent to each other.
3. The battery module according to claim 2, wherein the frame is provided in a pair, the pair of frames are respectively coupled to an upper side and a lower side of the case (300) so that the insert grooves thereof face each other, and both ends of the flame spread prevention member (200) are respectively inserted into the insert grooves of the pair of frames.
4. The battery module (10) according to claim 2, wherein the frame includes a mica plate containing mica with both heat insulation and heat resistance.
5. A battery pack, comprising a battery module (10) defined in any one of claims 1 to 4.