WO2019045365A1 - Pouch type secondary battery including heat transfer member - Google Patents

Pouch type secondary battery including heat transfer member Download PDF

Info

Publication number
WO2019045365A1
WO2019045365A1 PCT/KR2018/009752 KR2018009752W WO2019045365A1 WO 2019045365 A1 WO2019045365 A1 WO 2019045365A1 KR 2018009752 W KR2018009752 W KR 2018009752W WO 2019045365 A1 WO2019045365 A1 WO 2019045365A1
Authority
WO
WIPO (PCT)
Prior art keywords
secondary battery
electrode assembly
heat transfer
transfer member
type secondary
Prior art date
Application number
PCT/KR2018/009752
Other languages
French (fr)
Korean (ko)
Inventor
문재원
한형석
유형균
팽기훈
Original Assignee
주식회사 엘지화학
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Priority claimed from KR1020180097286A external-priority patent/KR102630853B1/en
Application filed by 주식회사 엘지화학 filed Critical 주식회사 엘지화학
Priority to JP2019553888A priority Critical patent/JP6833253B2/en
Priority to EP18852100.9A priority patent/EP3582319B1/en
Priority to PL18852100T priority patent/PL3582319T3/en
Priority to US16/473,452 priority patent/US11183717B2/en
Priority to CN201880008025.2A priority patent/CN110226259B/en
Publication of WO2019045365A1 publication Critical patent/WO2019045365A1/en

Links

Images

Classifications

    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01MPROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
    • H01M50/00Constructional details or processes of manufacture of the non-active parts of electrochemical cells other than fuel cells, e.g. hybrid cells
    • H01M50/10Primary casings, jackets or wrappings of a single cell or a single battery
    • H01M50/102Primary casings, jackets or wrappings of a single cell or a single battery characterised by their shape or physical structure
    • H01M50/105Pouches or flexible bags
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01MPROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
    • H01M10/00Secondary cells; Manufacture thereof
    • H01M10/60Heating or cooling; Temperature control
    • H01M10/61Types of temperature control
    • H01M10/613Cooling or keeping cold
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01MPROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
    • H01M10/00Secondary cells; Manufacture thereof
    • H01M10/60Heating or cooling; Temperature control
    • H01M10/64Heating or cooling; Temperature control characterised by the shape of the cells
    • H01M10/647Prismatic or flat cells, e.g. pouch cells
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01MPROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
    • H01M10/00Secondary cells; Manufacture thereof
    • H01M10/60Heating or cooling; Temperature control
    • H01M10/65Means for temperature control structurally associated with the cells
    • H01M10/653Means for temperature control structurally associated with the cells characterised by electrically insulating or thermally conductive materials
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01MPROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
    • H01M10/00Secondary cells; Manufacture thereof
    • H01M10/60Heating or cooling; Temperature control
    • H01M10/65Means for temperature control structurally associated with the cells
    • H01M10/655Solid structures for heat exchange or heat conduction
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E60/00Enabling technologies; Technologies with a potential or indirect contribution to GHG emissions mitigation
    • Y02E60/10Energy storage using batteries

Definitions

  • the present invention relates to a pouch type secondary battery including a heat transfer member and, in the case of using a battery case made of a laminate sheet, in order to enhance heat dissipation of the secondary battery without adding a separate cooling member, And a heat transfer member for connecting the pouch type secondary battery to the pouch type secondary battery.
  • the rechargeable secondary battery is an electric vehicle (EV), a hybrid electric vehicle (HEV), a plug-in electric vehicle (HEV) and the like, which are proposed as solutions for the air pollution of existing gasoline vehicles and diesel vehicles using fossil fuels Hybrid electric vehicles (Plug-In HEVs) and the like, and are attracting attention as a power source for devices requiring high output large capacity.
  • EV electric vehicle
  • HEV hybrid electric vehicle
  • HEV plug-in electric vehicle
  • Plug-In HEVs Hybrid electric vehicles
  • the secondary battery can be classified into a cylindrical battery cell, a prismatic battery cell, and a pouch-shaped battery cell depending on its shape.
  • a pouch-type battery cell which can be stacked with a high degree of integration, has a high energy density per unit weight, and is inexpensive and easy to deform is attracting much attention.
  • the pouch-shaped battery cell means a battery cell having a battery case made of a laminate sheet, and an electrode assembly is built in the battery case.
  • Lithium rechargeable batteries are subject to high temperatures and high pressures within the battery, which can be caused by abnormal operating conditions of the battery, such as internal short circuits, overcharged conditions exceeding the permissible current and voltage, exposure to high temperatures, dropping, Explosion of the battery may be caused.
  • a method of increasing the heat capacity by using a thick current collector can be used.
  • the thickness of the current collector is increased, the thickness of the electrode assembly as a whole increases, which makes it difficult to design a high capacity battery cell.
  • a method of preventing the temperature from increasing by adding a cooling pipe or module to the pouch-shaped battery case can be used.
  • the cost of introducing a new cooling system is increased, and the size of the cooling system Therefore, it is necessary to redesign the application position and arrangement.
  • Korean Patent Registration No. 1697764 discloses a graphite structure; And at least one selected from the group consisting of low viscosity monomers, oligomers, resins, and combinations thereof impregnated in the graphite structure, to form a composite composite material.
  • Korean Patent Laid-Open Publication No. 2016-0040167 discloses a battery pack including a connection member to which dissimilar metals having different melting points are coupled
  • Korean Patent Publication No. 1520168 discloses a battery pack having a clad structure
  • Japanese Unexamined Patent Application Publication No. 2000-030975 discloses a lithium secondary battery including a structure in which a heat dissipating member is connected to a core of a metallic composite material in which ceramic particles or filler ceramic fibers or ceramic fibers are dispersed in a matrix metal
  • a method for increasing the heat dissipation performance of the secondary battery is not provided.
  • the present invention has been made to solve the above-mentioned problems of the related art and a technical problem which has been demanded from the past, in a pouch type secondary battery comprising a battery case of a laminate sheet including a metal layer and a resin layer,
  • the pouch type secondary battery can be provided with a high heat dissipation capability because the heat generated from the electrode assembly can be rapidly discharged toward the laminate sheet through the heat transfer member.
  • the heat generated in normal use such as charging and discharging of the secondary battery is rapidly discharged, the lifetime of the battery can be improved and occurrence of a high temperature phenomenon due to abnormal use of the secondary battery can be prevented. It is possible to provide a secondary battery having improved safety by preventing explosion.
  • a pouch-type secondary battery comprising an electrode assembly and a laminate sheet containing an electrolyte
  • the laminate sheet has a structure including an outer coating layer, a metal layer, and an inner adhesive layer,
  • a heat transfer member is positioned between the electrode assembly and the laminate sheet for the battery case, and the heat transfer member connects the electrode assembly and the metal layer of the laminate sheet. Thermal energy generated from the electrode assembly can be rapidly discharged through the metal layer of the laminate sheet have.
  • an electrode current collector having a general thickness is used, and a thick metal plate is conventionally used as an electrode current collector, thereby preventing an increase in thickness of the entire electrode assembly.
  • the heat transfer member is disposed between the electrode assembly and the battery case, the size of the secondary battery can be reduced as compared with a case where a cooling member is additionally provided outside the battery case, The cost of adding the cooling member can be reduced.
  • the heat transfer member has a structure in which the electrode assembly and the metal layer of the laminate sheet are connected to each other. Even if the laminate sheet and the electrode assembly are closely arranged with the heat transfer member interposed therebetween, Since the inner adhesive layer of the laminate sheet is located between the assemblies, the electrode assembly and the metal layer of the laminate sheet are not directly connected.
  • the heat transfer member may be configured to include a protruding structure penetrating the inner adhesive layer of the laminate sheet in order to make the structure of the electrode assembly directly communicate with the metal layer of the laminate sheet.
  • the heat transfer member positioned between the electrode assembly and the laminate sheet may have a structure attached to the laminate sheet so as to contact the outermost electrode of the electrode assembly.
  • a heat transfer member is placed on the outer surface of the inner adhesive layer and then laminated so that at least a part of the heat transfer member can contact the metal layer of the laminate sheet, and the heat transfer member and the laminate sheet are integrated .
  • the height of the electrode assembly receiving portion, the height of the electrode assembly, and the height of the heat transfer member May be configured to contact a metal layer.
  • the heat transfer member and the metal layer can be connected through the degassing process even if they are not connected to a part of the heat transfer member and the metal layer.
  • an electrode assembly having a structure in which a separator is interposed between an anode and a cathode is not coated with an electrode active material on the outer surface of the outermost electrode, so that the uncoated surface of the electrode active material is positioned on the outermost side of the electrode assembly , And when the heat transfer member is positioned between the laminate sheet and the electrode assembly, the heat transfer member may be in contact with the uncoated surface of the outermost electrode of the electrode assembly.
  • the heat transfer member may include a flat plate-like body and a protrusion extending in a vertical direction on one surface of the flat plate-like body, wherein the flat plate-like body is positioned between the inner adhesive layer of the laminate sheet and the outermost electrode of the electrode assembly,
  • the projecting portion may have a structure penetrating the inner adhesive layer.
  • the heat transfer member may have a protruding structure extending in the vertical direction at the outer surface of the outermost electrode of the electrode assembly, and an end of the protruding structure may be connected to the metal layer of the laminate sheet.
  • the protruding structure may be a structure combined with the outermost electrode of the electrode assembly, and may be a combination of the electrode and the heat transfer member.
  • the protruding structure may be a structure separable from the outermost electrode of the electrode assembly, and may be positioned in a plane orthogonal to the plane of the outermost electrode and the metal layer of the laminate sheet. It may be a needle-pillar structure.
  • the projecting structure may have a structure in which a plurality of projections are uniformly formed at regular intervals. Considering the efficiency for rapidly moving the thermal energy of the electrode assembly toward the laminate sheet, a plurality of projections may be formed, It is preferable that the protruding structures are formed at regular intervals in order to uniformly deliver the electrode assembly to the entire outer surface of the electrode assembly.
  • the projecting structure connects the electrode assembly and the metal layer of the laminate sheet through the inner adhesive layer of the laminate sheet.
  • the height of the projecting structure may be 100% to 120% based on the thickness of the inner adhesive layer of the laminate sheet. And preferably from 110% to 120%.
  • the electrode assembly When the height of the protruding structure is less than 100% of the thickness of the inner adhesive layer of the laminate sheet, the electrode assembly is not connected to the metal layer of the laminate sheet. When the height is more than 120%, the electrode assembly is separated from the laminate sheet The space is widened to widen unnecessarily wasted space, and the problem of lowering the heat dissipation effect may occur, which is not preferable.
  • the height of the protruding structure may be in the range of 20 ⁇ m to 140 ⁇ m, preferably in the range of 22 ⁇ m to 120 ⁇ m Lt; / RTI >
  • the electrode assembly When the height of the protruding structure is less than 20 ⁇ m, the electrode assembly is not connected to the metal layer of the laminate sheet. If the height is larger than 120 ⁇ m, the space between the electrode assembly and the laminate sheet is widened and unnecessarily wasted It is not preferable because space is increased.
  • the electrode assembly has a structure in which a separator is interposed between the positive electrode and the negative electrode to laminate the electrode assembly.
  • the assembly may be a stacked electrode assembly, a stacked / folded electrode assembly, or a lamination / stacked electrode assembly, or a structure in which one or more of the electrode assemblies are stacked.
  • each of the stacked electrode assembly, the stacked / folded electrode assembly, and the lamination / stacked electrode assembly is a unit cell
  • the planar size of the unit cells may be the same.
  • the cells may be stacked.
  • a pouch-type secondary battery having a structure in which an outermost electrode of an electrode assembly and a metal layer of a battery case are connected to each other.
  • the outermost electrodes of the electrode assembly may be composed of the same electrode.
  • the outermost electrodes of the electrode assembly are made of different electrodes.
  • the heat transfer member is a member for quickly discharging heat energy inside the battery cell to the outside of the battery cell, and the heat transfer member is preferably made of a metal having high thermal conductivity.
  • the heat transfer member may be a member made of aluminum (Al), copper (Cu), silver (Ag), gold (Au), nickel (Ni), tungsten (W), carbon (C) , And may be composed of aluminum or copper.
  • the present invention can also provide a battery pack including the pouch type secondary battery.
  • the battery pack may be used as a power source for devices requiring high-temperature safety, long cycle characteristics, and high rate characteristics.
  • devices include a mobile device, a wearable device A power tool powered by an electric motor; An electric vehicle including an electric vehicle (EV), a hybrid electric vehicle (HEV), a plug-in hybrid electric vehicle (PHEV), and the like; An electric motorcycle including an electric bike (E-bike) and an electric scooter (E-scooter); An electric golf cart; And an energy storage system, but the present invention is not limited thereto.
  • FIG. 1 is a vertical cross-sectional view of an electrode assembly according to one embodiment.
  • FIG. 2 is an exploded perspective view of a laminate sheet, a heat transfer member, and a portion of an electrode according to one embodiment.
  • Figure 3 is a vertical cross-sectional view of the laminate sheet, heat transfer member and electrode portion of Figure 2;
  • FIG. 4 is an exploded perspective view of a laminate sheet, a heat transfer member, and a part of an electrode according to another embodiment.
  • Figure 5 is a vertical cross-sectional view of a portion of the laminate sheet, heat transfer member and electrode of Figure 4;
  • FIG. 1 schematically shows a vertical sectional view of an electrode assembly used in a pouch-type secondary battery of the present invention.
  • the electrode assembly 100 includes a positive electrode coated with a positive electrode active material 101 on one side or both sides of a positive electrode current collector 102 and a negative electrode active material 103 on one side or both sides of the negative electrode current collector 104 And a separator 110 interposed between the anode and the cathode.
  • the cathode is located at the uppermost outermost electrode, and the anode is located at the lowermost outermost electrode.
  • the outermost electrodes at both ends of the electrode assembly 100 may be the same as each other, the same electrode may be positioned at the anode or the cathode.
  • the uppermost outermost electrode of the electrode assembly 100 is a single-sided negative electrode coated with the negative electrode active material 103 only on the inner surface of the negative electrode collector 104 and the outermost electrode of the lower electrode is formed only on the inner surface of the positive electrode collector 102 Side electrodes coated with an electrode active material, and the other central electrodes except for the outermost electrodes are composed of a double-sided electrode coated with an electrode active material on both sides of the electrode current collector.
  • the electrode current collector of the metal material is located at the outermost side of the electrode assembly facing the heat transfer member, the heat energy of the electrode assembly can quickly move toward the pouch case through the heat transfer member.
  • an uncoated electrode having no electrode active material is used as the outermost electrode, a lamination / stacked electrode assembly, a stack / folding type electrode assembly may be used instead of the stacked electrode assembly 100 of FIG. 1 .
  • FIG. 2 schematically shows an exploded perspective view of a laminate sheet, a heat transfer member, and a part of an electrode according to one embodiment
  • FIG. 3 is a vertical sectional view of the state in which the laminate sheet, heat transfer member, As shown in FIG.
  • the laminate sheet 210 is a layered structure in which an outer coating layer 201, a metal layer 202 and an inner adhesive layer 203 are sequentially laminated.
  • the inner surface of the laminate sheet 210 faces the heat transfer member 220 and the plate body 221 of the heat transfer member 220 is disposed between the inner adhesive layer 203 and the electrode 234 of the laminate sheet 210 And the protruding portion 222 is in contact with the metal layer 202 through the inside of the internal adhesive layer 203.
  • the projecting portion 222 is shown as a rectangular parallelepiped structure, it may have a hemispherical shape in the direction of the metal layer, a triangular pyramid structure as a whole, or a linear structure. However, in order to improve heat dissipation, It is preferable to make it wide.
  • the height h2 of the protrusion 222 is shown to be the same as the thickness h1 of the internal adhesive layer 203.
  • the height h2 of the protrusion 222 is in the range of 100% to 120% based on the thickness h1 of the internal adhesive layer 203 .
  • the protrusion 22 is a structure protruding in a direction perpendicular to the plane of the plate-like body 221, and the protrusions 222 are positioned to be spaced apart from each other at a uniform interval.
  • the thermal energy of the electrode assembly moves from the outermost electrode in the direction of the metal layer of the laminate sheet through the heat transfer member, and the heat energy can be uniformly and rapidly transferred throughout the entirety of the outermost electrode.
  • FIG. 4 schematically shows an exploded perspective view of a laminate sheet, a heat transfer member and a part of an electrode according to another embodiment
  • FIG. 5 is a cross-sectional view of a laminate sheet, a heat transfer member, As shown in FIG.
  • the laminate sheet 310 is a layered structure in which an outer coating layer 301, a metal layer 302, and an inner adhesive layer 303 are sequentially laminated.
  • a heat transfer member 332 is attached in a direction perpendicular to the upper surface of the electrode.
  • the metal layer 332 penetrates the internal adhesive layer 303 of the laminate sheet 310 as a battery case and contacts the metal layer 302 of the laminate sheet 310.
  • the shape and height of the heat transfer member 332 can be seen to be the same as the protrusion 222 of the heat transfer member 220, and a description thereof will be omitted.
  • the electrode assembly and the heat transfer member are combined, it is preferable to use the assembly in manufacturing the electrode assembly, considering the convenience of the process.
  • the heat transfer member 332 is used, There is an advantage that the capacity of the battery can be increased by the thickness of the plate-like body.
  • the pouch type secondary battery according to the present invention has a structure including a heat transfer member inside a battery case, and it is possible to provide a secondary battery with improved safety by allowing heat energy generated in the battery to be discharged.
  • the thermal conductivity was measured using a Mathis TC-30 at room temperature of 25 ° C. ASTM C 518 was referred to the relevant standard for thermal conductivity measurement. In addition, it is possible to measure thermal conductivity using equipment that can simultaneously measure the thermal conductivity of solids, liquids and pastes in addition to the above equipment.
  • the conductive base material has significantly lower thermal conductivity than the base material made of the heat conductive material.
  • Example 1 For example, comparing Example 1 and Comparative Example 1 where the base material is aluminum, it can be seen that the thermal conductivity of Example 1 is about 196 times the thermal conductivity of Comparative Example 1.
  • the pouch type secondary battery according to the present invention includes a heat transfer member for connecting the electrode assembly and the metal layer of the laminate sheet in the battery case, thereby minimizing an increase in the thickness of the entire secondary battery. , It is possible to prevent the capacity of the battery cell from being reduced.

Abstract

The present invention relates to a pouch type secondary battery comprising a laminate sheet for receiving an electrode assembly and an electrolyte, wherein the laminate sheet has a structure including an outer coating layer, a metal layer, and an inner adhesive layer, and includes a heat transfer member for connecting the electrode assembly to the metal layer of the laminate sheet.

Description

열전달 부재를 포함하는 파우치형 이차전지A pouch type secondary battery including a heat transfer member
본 출원은 2017년 8월 29일자 한국 특허 출원 제 2017-0109714 호에 기초한 우선권의 이익을 주장하며, 해당 한국 특허 출원의 문헌에 개시된 모든 내용은 본 명세서의 일부로서 포함된다.This application claims priority from Korean Patent Application No. 2017-0109714, filed on August 29, 2017, the entire contents of which are incorporated herein by reference.
본 발명은 열전달 부재를 포함하는 파우치형 이차전지에 대한 것으로서, 라미네이트 시트로 이루어진 전지케이스를 사용하는 경우에 별도의 냉각부재를 부가하지 않더라도 이차전지의 방열성을 높이기 위하여, 전극조립체와 라미네이트 시트의 금속층을 연결시키는 열전달 부재를 포함하는 파우치형 이차전지에 대한 것이다.The present invention relates to a pouch type secondary battery including a heat transfer member and, in the case of using a battery case made of a laminate sheet, in order to enhance heat dissipation of the secondary battery without adding a separate cooling member, And a heat transfer member for connecting the pouch type secondary battery to the pouch type secondary battery.
충방전이 가능한 이차전지는, 화석 연료를 사용하는 기존의 가솔린 차량, 디젤 차량 등의 대기오염 등을 해결하기 위한 방안으로 제시되고 있는 전기자동차(EV), 하이브리드 전기자동차(HEV), 플러그-인 하이브리드 전기자동차(Plug-In HEV) 등을 포함하여 고출력 대용량이 요구되는 디바이스의 동력원으로서 주목 받고 있다.The rechargeable secondary battery is an electric vehicle (EV), a hybrid electric vehicle (HEV), a plug-in electric vehicle (HEV) and the like, which are proposed as solutions for the air pollution of existing gasoline vehicles and diesel vehicles using fossil fuels Hybrid electric vehicles (Plug-In HEVs) and the like, and are attracting attention as a power source for devices requiring high output large capacity.
이차전지는, 그것의 형상에 따라 원통형 전지셀, 각형 전지셀, 파우치형 전지셀 등으로 구분할 수 있다. 그 중에서도 높은 집적도로 적층될 수 있고 중량당 에너지 밀도가 높으며 저렴하고 변형이 용이한 파우치형 전지셀이 많은 관심을 모으고 있다. The secondary battery can be classified into a cylindrical battery cell, a prismatic battery cell, and a pouch-shaped battery cell depending on its shape. Among them, a pouch-type battery cell which can be stacked with a high degree of integration, has a high energy density per unit weight, and is inexpensive and easy to deform is attracting much attention.
상기 파우치형 전지셀은 전지케이스가 라미네이트 시트로 이루어진 전지셀을 의미하며, 상기 전지케이스 내부에 전극조립체가 내장되는 구조이다.The pouch-shaped battery cell means a battery cell having a battery case made of a laminate sheet, and an electrode assembly is built in the battery case.
일반적으로 외피가 유연한 파우치형 전지의 주요 연구 과제 중의 하나는 안전성을 향상시키는 것이다. 리튬 이차전지는 내부 단락, 허용된 전류 및 전압을 초과한 과충전 상태, 고온에의 노출, 낙하 또는 외부 충격에 의한 변형 등 전지의 비정상적인 작동 상태로 인해 유발될 수 있는 전지 내부의 고온 및 고압에 의해 전지의 폭발이 초래될 수 있다.In general, one of the main tasks of pouch-type batteries with a flexible shell is to improve safety. Lithium rechargeable batteries are subject to high temperatures and high pressures within the battery, which can be caused by abnormal operating conditions of the battery, such as internal short circuits, overcharged conditions exceeding the permissible current and voltage, exposure to high temperatures, dropping, Explosion of the battery may be caused.
이에, 두꺼운 집전체를 사용하여 열용량을 증대시키는 방법을 사용할 수 있으나, 집전체의 두께가 증가함으로써 전체적으로 전극조립체의 두께가 증가하여 고용량의 전지셀을 설계하기 어려운 문제가 있다. 또는, 파우치형 전지케이스에 냉각용 관 또는 모듈을 추가로 부가함으로써 온도가 증가하는 것을 방지하는 방법을 사용할 수 있으나, 새로운 냉각 시스템을 도입에 따른 비용이 상승하게되고, 장착되는 냉각 시스템의 크기에 따라 적용 위치 및 배열에 대한 재설계가 필요하게 된다.Therefore, a method of increasing the heat capacity by using a thick current collector can be used. However, since the thickness of the current collector is increased, the thickness of the electrode assembly as a whole increases, which makes it difficult to design a high capacity battery cell. Alternatively, a method of preventing the temperature from increasing by adding a cooling pipe or module to the pouch-shaped battery case can be used. However, the cost of introducing a new cooling system is increased, and the size of the cooling system Therefore, it is necessary to redesign the application position and arrangement.
한편, 이차전지의 비정상적인 작동상태의 경우 전류의 흐름을 차단하는 방법을 사용할 수 있으나, 일정한 한계점 이상으로 온도가 상승하는 경우에는 발화 내지 폭발을 방지하기 어려운 문제가 있다.On the other hand, in the case of an abnormal operating state of the secondary battery, a method of shutting off the current flow can be used. However, if the temperature rises above a certain threshold, it is difficult to prevent ignition or explosion.
추가적으로, 한국 등록특허공보 제 1697764 호는 흑연 구조체; 및 상기 흑연 구조체에 함침된 저점도의 모노머, 올리고머, 수지 및 이들의 조합으로 이루어진 군에서 선택되는 적어도 하나;를 포함하는 예비 복합재료를 형성하는 고분자 복합재료를 개시하고 있다.In addition, Korean Patent Registration No. 1697764 discloses a graphite structure; And at least one selected from the group consisting of low viscosity monomers, oligomers, resins, and combinations thereof impregnated in the graphite structure, to form a composite composite material.
상기 기술은 방열성이 높은 소재를 개시하고 있으나, 파우치형 이차전지에 적용하기 위한 인식이 없으며, 고분자 복합재료가 전지케이스 내부에서 전해액과 반응할 우려가 있는 문제가 있다.Although the above-described technique discloses a material having high heat dissipation, there is a problem that there is no recognition for application to a pouch-type secondary battery, and there is a concern that the polymer composite material may react with an electrolyte solution inside the battery case.
다른 선행기술로서, 한국 공개특허공보 제 2016-0040167 호는 융점이 다른 이종 금속이 결합된 접속부재를 포함하는 전지팩을 개시하고, 한국 등록특허공보 제 1520168 호는 서로 다른 두께로 이루어진 클래드 구조의 전극 리드부를 포함하는 리튬 이차전지를 개시하며, 일본 공개특허공보 제 2000-030975 호는 필러인 세라믹 입자 또는 세라믹 섬유가 매트릭스인 금속 중에 분산되어 있는 금속계 복합 재료제의 권심에 방열 부재가 접속된 구조의 냉각 부품을 개시하나, 파우치형 이차전지 내부에 위치하면서 방열성을 높이기 위한 방법을 제시하지 못하고 있다.As another prior art, Korean Patent Laid-Open Publication No. 2016-0040167 discloses a battery pack including a connection member to which dissimilar metals having different melting points are coupled, and Korean Patent Publication No. 1520168 discloses a battery pack having a clad structure Japanese Unexamined Patent Application Publication No. 2000-030975 discloses a lithium secondary battery including a structure in which a heat dissipating member is connected to a core of a metallic composite material in which ceramic particles or filler ceramic fibers or ceramic fibers are dispersed in a matrix metal However, a method for increasing the heat dissipation performance of the secondary battery is not provided.
따라서, 전지셀의 두께 증가에 미치는 영향을 최소화하면서 추가적인 장비를 파우치형 이차전지 외부에 부착하지 않으면서, 이차전지 내부의 열을 빠르게 배출함으로서 안전성을 높일 수 있는 기술에 대한 필요성이 높은 실정이다.Accordingly, there is a high need for a technique that can enhance the safety by discharging the heat inside the secondary battery without adhering additional equipment to the outside of the pouch type secondary battery while minimizing the influence on the increase in thickness of the battery cell.
본 발명은 상기와 같은 종래기술의 문제점과 과거로부터 요청되어온 기술적 과제를 해결하기 위하여, 금속층 및 수지층을 포함하는 라미네이트 시트의 전지케이스로 이루어진 파우치형 이차전지에서, 전극조립체와 라미네이트 시트의 금속층을 연결시키기 위한 열전달 부재를 포함하는 경우, 전극조립체에서 발생하는 열이 열전달 부재를 통해 라미네이트 시트 방향으로 빠르게 배출될 수 있으므로 높은 방열성을 갖는 파우치형 이차전지를 제공할 수 있다.The present invention has been made to solve the above-mentioned problems of the related art and a technical problem which has been demanded from the past, in a pouch type secondary battery comprising a battery case of a laminate sheet including a metal layer and a resin layer, The pouch type secondary battery can be provided with a high heat dissipation capability because the heat generated from the electrode assembly can be rapidly discharged toward the laminate sheet through the heat transfer member.
또한, 이차전지의 충방전과 같은 정상적인 사용에서 발생하는 열의 배출도 빠르게 이루어지기 때문에 전지의 수명을 향상시킬 수 있으며, 이차전지의 비정상적인 사용에 의해 고온 현상이 발생하는 것을 방지할 수 있으므로, 발화 내지 폭발을 방지하여 안전성이 향상된 이차전지를 제공할 수 있다.In addition, since the heat generated in normal use such as charging and discharging of the secondary battery is rapidly discharged, the lifetime of the battery can be improved and occurrence of a high temperature phenomenon due to abnormal use of the secondary battery can be prevented. It is possible to provide a secondary battery having improved safety by preventing explosion.
이러한 목적을 달성하기 위한 본 발명에 따른 파우치형 이차전지는, According to an aspect of the present invention, there is provided a pouch-
전극조립체 및 전해액을 수납하는 라미네이트 시트로 이루어진 파우치형 이차전지로서,A pouch-type secondary battery comprising an electrode assembly and a laminate sheet containing an electrolyte,
상기 라미네이트 시트는 외부 피복층, 금속층 및 내부 접착층을 포함하는 구조로 이루어지고,Wherein the laminate sheet has a structure including an outer coating layer, a metal layer, and an inner adhesive layer,
상기 전극조립체와 라미네이트 시트의 금속층을 연결시키기 위한 열전달 부재를 포함하는 구조로 이루어질 수 있다.And a heat transfer member for connecting the electrode assembly and the metal layer of the laminate sheet.
즉, 전극조립체와 전지케이스용 라미네이트 시트 사이에 열전달 부재가 위치하고 상기 열전달 부재는 전극조립체와 라미네이트 시트의 금속층을 연결시키는 구조인 바, 전극조립체에서 발생하는 열에너지가 라미네이트 시트의 금속층을 통해 빠르게 배출될 수 있다.That is, a heat transfer member is positioned between the electrode assembly and the laminate sheet for the battery case, and the heat transfer member connects the electrode assembly and the metal layer of the laminate sheet. Thermal energy generated from the electrode assembly can be rapidly discharged through the metal layer of the laminate sheet have.
이와 같이, 본 발명은 일반적인 두께를 갖는 전극집전체를 사용하는 바, 종래에 전극집전체로서 두꺼운 금속판을 사용함으로써 전체적인 전극조립체의 두께가 증가했던 문제를 방지할 수 있다. 또한, 전지케이스의 내부인 전극조립체와 전지케이스 사이에 열전달 부재가 위치하기 때문에 전지케이스 외부에 냉각 부재가 추가로 부가되는 경우에 비해 전체적인 이차전지의 크기를 줄일 수 있으므로 소형 디바이스에 적용이 가능하고 냉각 부재를 추가함에 따른 비용을 줄일 수 있다.As described above, according to the present invention, an electrode current collector having a general thickness is used, and a thick metal plate is conventionally used as an electrode current collector, thereby preventing an increase in thickness of the entire electrode assembly. In addition, since the heat transfer member is disposed between the electrode assembly and the battery case, the size of the secondary battery can be reduced as compared with a case where a cooling member is additionally provided outside the battery case, The cost of adding the cooling member can be reduced.
하나의 구체적인 예에서, 상기 열전달 부재는 전극조립체와 라미네이트 시트의 금속층을 연결시키는 구조로 이루어지는 바, 라미네이트 시트와 전극조립체가 열전달 부재를 사이에 개재시킨 상태로 밀착 배열되더라도, 라미네이트 시트의 금속층과 전극조립체 사이에 라미네이트 시트의 내부 접착층이 위치하기 때문에, 전극조립체와 라미네이트 시트의 금속층은 직접 연결되지 못한다.In one specific example, the heat transfer member has a structure in which the electrode assembly and the metal layer of the laminate sheet are connected to each other. Even if the laminate sheet and the electrode assembly are closely arranged with the heat transfer member interposed therebetween, Since the inner adhesive layer of the laminate sheet is located between the assemblies, the electrode assembly and the metal layer of the laminate sheet are not directly connected.
이에, 상기 라미네이트 시트의 금속층과 전극조립체가 직접 연통되는 구조로 만들기 위하여, 상기 열전달 부재는 상기 라미네이트 시트의 내부 접착층을 관통하는 돌출 구조를 포함하도록 구성될 수 있다.The heat transfer member may be configured to include a protruding structure penetrating the inner adhesive layer of the laminate sheet in order to make the structure of the electrode assembly directly communicate with the metal layer of the laminate sheet.
상기 전극조립체와 라미네이트 시트 사이에 위치하는 상기 열전달 부재는 전극조립체의 최외측 전극과 접촉하도록 라미네이트 시트에 부착된 구조로 이루어질 수 있다.The heat transfer member positioned between the electrode assembly and the laminate sheet may have a structure attached to the laminate sheet so as to contact the outermost electrode of the electrode assembly.
예를 들어, 라미네이트 시트를 제조할 때, 내부 접착층의 외면에 열전달 부재를 위치시킨 후 라미네이팅 하여, 열전달 부재의 적어도 일부가 라미네이트 시트의 금속층과 접촉할 수 있고, 열전달 부재와 라미네이트 시트가 일체형으로 이루어질 수 있다.For example, when manufacturing a laminate sheet, a heat transfer member is placed on the outer surface of the inner adhesive layer and then laminated so that at least a part of the heat transfer member can contact the metal layer of the laminate sheet, and the heat transfer member and the laminate sheet are integrated .
또는, 전지케이스에 전극조립체를 수납한 후 전극조립체 표면에 열전달 부재를 위치시킨 상태에서 전지케이스를 밀봉하는 경우, 전극조립체 수납부의 높이와 전극조립체의 높이 및 열전달 부재의 높이를 조절하여 열전달 부재의 일부가 금속층과 접촉하도록 구성할 수도 있다. 이때, 밀봉 단계에서는 열전달 부재의 일부와 금속층과 연결되지 않더라도, 탈기 과정을 통해 열전달 부재와 금속층을 연결할 수 있다.When the battery case is sealed with the heat transfer member positioned on the surface of the electrode assembly after the electrode assembly is housed in the battery case, the height of the electrode assembly receiving portion, the height of the electrode assembly, and the height of the heat transfer member, May be configured to contact a metal layer. At this time, in the sealing step, the heat transfer member and the metal layer can be connected through the degassing process even if they are not connected to a part of the heat transfer member and the metal layer.
또한, 일반적으로 양극 및 음극 사이에 분리막이 개재되어 적층된 구조의 전극조립체는 최외측 전극의 외측면에 전극 활물질을 도포하지 않아 전극 활물질 미코팅면이 전극조립체의 최외측에 위치하도록 구성하는 바, 라미네이트 시트와 전극조립체 사이에 열전달 부재가 위치하는 경우, 상기 열전달 부재는 전극조립체의 최외측 전극의 미코팅면과 접촉하는 구조일 수 있다.Generally, an electrode assembly having a structure in which a separator is interposed between an anode and a cathode is not coated with an electrode active material on the outer surface of the outermost electrode, so that the uncoated surface of the electrode active material is positioned on the outermost side of the electrode assembly , And when the heat transfer member is positioned between the laminate sheet and the electrode assembly, the heat transfer member may be in contact with the uncoated surface of the outermost electrode of the electrode assembly.
상기 열전달 부재는 평판형 본체 및 상기 평판형 본체의 일면에서 수직 방향으로 연장된 돌출부로 구성될 수 있는 바, 상기 평판형 본체는 라미네이트 시트의 내부 접착층과 전극조립체의 최외측 전극 사이에 위치하고, 상기 돌출부는 내부 접착층을 관통하는 구조로 이루어질 수 있다.The heat transfer member may include a flat plate-like body and a protrusion extending in a vertical direction on one surface of the flat plate-like body, wherein the flat plate-like body is positioned between the inner adhesive layer of the laminate sheet and the outermost electrode of the electrode assembly, The projecting portion may have a structure penetrating the inner adhesive layer.
하나의 구체적인 예에서, 상기 열전달 부재는 상기 전극조립체의 최외측 전극의 외측면에서 수직 방향으로 연장된 돌출 구조로 이루어질 수 있으며, 상기 돌출 구조의 끝단은 라미네이트 시트의 금속층과 연결될 수 있다.In one specific example, the heat transfer member may have a protruding structure extending in the vertical direction at the outer surface of the outermost electrode of the electrode assembly, and an end of the protruding structure may be connected to the metal layer of the laminate sheet.
상기 돌출 구조는 전극조립체의 최외측 전극과 결합된 구조일 수 있는 바, 전극 및 열전달 부재의 결합체일 수 있다.The protruding structure may be a structure combined with the outermost electrode of the electrode assembly, and may be a combination of the electrode and the heat transfer member.
또는, 상기 돌출 구조는 전극조립체의 최외측 전극과 분리 가능한 구조일 수 있고, 상기 최외측 전극의 평면과 라미네이트 시트의 금속층과 직교하는 형태로 위치할 수 있는 바, 라미네이트 시트의 내부 접착층에 박혀 있는 바늘 내지 기둥 구조일 수 있다.Alternatively, the protruding structure may be a structure separable from the outermost electrode of the electrode assembly, and may be positioned in a plane orthogonal to the plane of the outermost electrode and the metal layer of the laminate sheet. It may be a needle-pillar structure.
상기 돌출 구조는 복수의 돌기들이 일정한 간격으로 균일하게 형성되는 구조로 이루어질 수 있는 바, 전극조립체의 열에너지를 라미네이트 시트 방향으로 빠르게 이동시키기 위한 효율성을 고려할 때, 다수의 돌기들이 형성될 수 있고, 열에너지의 전달이 전극조립체 외면 전체에서 균일하게 이루어지기 위해서 상기 돌출 구조가 일정한 간격으로 형성되는 것이 바람직하다.The projecting structure may have a structure in which a plurality of projections are uniformly formed at regular intervals. Considering the efficiency for rapidly moving the thermal energy of the electrode assembly toward the laminate sheet, a plurality of projections may be formed, It is preferable that the protruding structures are formed at regular intervals in order to uniformly deliver the electrode assembly to the entire outer surface of the electrode assembly.
상기 돌출 구조는 라미네이트 시트의 내부 접착층을 관통하여 전극조립체와 라미네이트 시트의 금속층을 연결하는 구조인 바, 상기 돌출 구조의 높이는 라미네이트 시트의 내부 접착층의 두께를 기준으로 100% 내지 120%일 수 있고, 바람직하게는 110% 내지 120%일 수 있다.The projecting structure connects the electrode assembly and the metal layer of the laminate sheet through the inner adhesive layer of the laminate sheet. The height of the projecting structure may be 100% to 120% based on the thickness of the inner adhesive layer of the laminate sheet. And preferably from 110% to 120%.
상기 돌출 구조의 높이가 라미네이트 시트의 내부 접착층 두께의 100% 보다 작은 경우에는, 전극조립체와 라미네이트 시트의 금속층과의 연결이 이루어지지 않고, 120% 보다 큰 경우에는 전극조립체와 라미네이트 시트 사이가 이격되는 공간이 넓어져 불필요하게 낭비되는 공간이 늘어날 뿐 아니라, 방열효과가 낮아지는 문제가 발생할 수 있으므로 바람직하지 않다.When the height of the protruding structure is less than 100% of the thickness of the inner adhesive layer of the laminate sheet, the electrode assembly is not connected to the metal layer of the laminate sheet. When the height is more than 120%, the electrode assembly is separated from the laminate sheet The space is widened to widen unnecessarily wasted space, and the problem of lowering the heat dissipation effect may occur, which is not preferable.
구체적으로, 일반적으로 라미네이트 시트의 내부 접착층의 높이가 20 ㎛ 내지 100 ㎛인 점을 고려할 때, 상기 돌출 구조의 높이는 20 ㎛ 내지 140 ㎛의 범위일 수 있으며, 바람직하게는 22 ㎛ 내지 120 ㎛의 범위일 수 있다.Specifically, in consideration of the fact that the height of the inner adhesive layer of the laminate sheet is generally 20 μm to 100 μm, the height of the protruding structure may be in the range of 20 μm to 140 μm, preferably in the range of 22 μm to 120 μm Lt; / RTI >
상기 돌출 구조의 높이가 20 ㎛ 보다 작은 경우에는 전극조립체와 라미네이트 시트의 금속층과의 연결이 이루어지지 않고, 120 ㎛ 보다 큰 경우에는 전극조립체와 라미네이트 시트 사이가 이격되는 공간이 넓어져 불필요하게 낭비되는 공간이 늘어나는 문제가 있으므로 바람직하지 않다.When the height of the protruding structure is less than 20 μm, the electrode assembly is not connected to the metal layer of the laminate sheet. If the height is larger than 120 μm, the space between the electrode assembly and the laminate sheet is widened and unnecessarily wasted It is not preferable because space is increased.
상기 전극조립체의 최외측 전극이 라미네이트 시트의 내부 접착층과 접하는 구조로 이루어지는 점을 고려할 때, 상기 전극조립체는 양극 및 음극 사이에 분리막이 개재되어 적층되는 구조인 것이 바람직한 바, 예를 들어, 상기 전극조립체는 스택형 전극조립체, 스택/폴딩형 전극조립체, 또는 라미네이션/스택형 전극조립체일 수 있고, 또는, 상기 전극조립체들 가운데 1종 이상이 적층되는 구조로 이루어질 수 있다.It is preferable that the electrode assembly has a structure in which a separator is interposed between the positive electrode and the negative electrode to laminate the electrode assembly. For example, The assembly may be a stacked electrode assembly, a stacked / folded electrode assembly, or a lamination / stacked electrode assembly, or a structure in which one or more of the electrode assemblies are stacked.
또한, 상기 스택형 전극조립체, 스택/폴딩형 전극조립체, 및 라미네이션/스택형 전극조립체 각각을 단위셀로 할 때, 상기 단위셀들의 평면상 크기는 서로 동일할 수 있으나, 서로 다른 크기로 이루어진 단위셀들이 적층되는 구조로 이루어질 수도 있다.When each of the stacked electrode assembly, the stacked / folded electrode assembly, and the lamination / stacked electrode assembly is a unit cell, the planar size of the unit cells may be the same. However, The cells may be stacked.
한편, 본 발명에 따른 파우치형 이차전지는, 전극조립체의 최외측 전극과 전지케이스의 금속층이 서로 연결되는 구조로 이루어지는 바, 전지케이스의 상부케이스 및 하부케이스가 열융착 밀봉될 때 상부케이스 및 하부케이스 각각의 금속층들 간에 접촉이 이루어질 수 있는 점을 고려할 때, 이차전지의 단락을 방지하기 위하여, 상기 전극조립체는 최외측 전극이 서로 동일한 전극으로 구성될 수 있다.According to another aspect of the present invention, there is provided a pouch-type secondary battery having a structure in which an outermost electrode of an electrode assembly and a metal layer of a battery case are connected to each other. When the upper case and the lower case of the battery case are heat- Considering that contact between metal layers of each case can be made, in order to prevent a short circuit of the secondary battery, the outermost electrodes of the electrode assembly may be composed of the same electrode.
또는, 전극조립체의 최외측 전극 가운데 일측의 전극만 전지케이스의 금속층과 연결되는 구조인 경우에는, 전극조립체의 최외측 전극들이 서로 상이한 전극으로 이루어질 수 있음은 물론이다.Alternatively, when only one of the outermost electrodes of the electrode assembly is connected to the metal layer of the battery case, it is of course possible that the outermost electrodes of the electrode assembly are made of different electrodes.
상기 열전달 부재는 전지셀 내부의 열에너지를 신속하게 전지셀 외부로 배출하기 위한 부재인 바, 상기 열전달 부재는 열전도성이 높은 금속으로 이루어지는 것이 바람직하다. The heat transfer member is a member for quickly discharging heat energy inside the battery cell to the outside of the battery cell, and the heat transfer member is preferably made of a metal having high thermal conductivity.
예를 들어, 상기 열전달 부재는 알루미늄(Al), 구리(Cu), 은(Ag), 금(Au), 니켈(Ni), 텅스텐(W), 탄소(C) 및 철(Fe)로 이루어진 군에서 선택되는 1종 이상으로 이루어질 수 있으며, 바람직하게는 알루미늄 또는 구리로 이루어질 수 있다.For example, the heat transfer member may be a member made of aluminum (Al), copper (Cu), silver (Ag), gold (Au), nickel (Ni), tungsten (W), carbon (C) , And may be composed of aluminum or copper.
본 발명은 또한, 상기 파우치형 이차전지를 포함하는 전지팩을 제공할 수 있다.The present invention can also provide a battery pack including the pouch type secondary battery.
구체적으로, 상기 전지팩은 고온 안전성 및 긴 사이클 특성과 높은 레이트 특성 등이 요구되는 디바이스의 전원으로 사용될 수 있으며, 이러한 디바이스의 상세한 예로는, 모바일 전자기기(mobile device), 웨어러블 전자기기(wearable device), 전기적 모터에 의해 동력을 받아 움직이는 파워 툴(power tool); 전기자동차(Electric Vehicle, EV), 하이브리드 전기자동차(Hybrid Electric Vehicle, HEV), 플러그-인 하이브리드 전기자동차(Plug-in Hybrid Electric Vehicle, PHEV) 등을 포함하는 전기차; 전기 자전거(E-bike), 전기 스쿠터(E-scooter)를 포함하는 전기 이륜차; 전기 골프 카트(electric golf cart); 전력 저장 장치(Energy Storage System) 등을 들 수 있으나, 이에 한정되는 것은 아니다.Specifically, the battery pack may be used as a power source for devices requiring high-temperature safety, long cycle characteristics, and high rate characteristics. Examples of such devices include a mobile device, a wearable device A power tool powered by an electric motor; An electric vehicle including an electric vehicle (EV), a hybrid electric vehicle (HEV), a plug-in hybrid electric vehicle (PHEV), and the like; An electric motorcycle including an electric bike (E-bike) and an electric scooter (E-scooter); An electric golf cart; And an energy storage system, but the present invention is not limited thereto.
이들 디바이스의 구조 및 그것의 제작 방법은 당업계에 공지되어 있으므로, 본 명세서에서는 그에 대한 자세한 설명은 생략한다.The structure of these devices and their fabrication methods are well known in the art, and a detailed description thereof will be omitted herein.
도 1은 하나의 실시예에 따른 전극조립체의 수직 단면도이다.1 is a vertical cross-sectional view of an electrode assembly according to one embodiment.
도 2는 하나의 실시예에 따른 라미네이트 시트, 열전달 부재 및 전극의 일부에 대한 분해 사시도이다.2 is an exploded perspective view of a laminate sheet, a heat transfer member, and a portion of an electrode according to one embodiment.
도 3은 도 2의 라미네이트 시트, 열전달 부재 및 전극 일부분의 수직 단면도이다.Figure 3 is a vertical cross-sectional view of the laminate sheet, heat transfer member and electrode portion of Figure 2;
도 4는 다른 하나의 실시예에 따른 라미네이트 시트, 열전달 부재 및 전극의 일부에 대한 분해 사시도이다.4 is an exploded perspective view of a laminate sheet, a heat transfer member, and a part of an electrode according to another embodiment.
도 5는 도 4의 라미네이트 시트, 열전달 부재 및 전극의 일부분의 수직 단면도이다.Figure 5 is a vertical cross-sectional view of a portion of the laminate sheet, heat transfer member and electrode of Figure 4;
이하 첨부된 도면을 참조하여 본 발명이 속하는 기술분야에서 통상의 지식을 가진 자가 본 발명을 쉽게 실시할 수 있는 실시예를 상세히 설명한다. 다만, 본 발명의 바람직한 실시예에 대한 동작 원리를 상세하게 설명함에 있어 관련된 공지 기능 또는 구성에 대한 구체적인 설명이 본 발명의 요지를 불필요하게 흐릴 수 있다고 판단되는 경우에는 그 상세한 설명을 생략한다.DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS Hereinafter, embodiments of the present invention will be described in detail with reference to the accompanying drawings. However, the detailed description of known functions and configurations incorporated herein will be omitted when it may unnecessarily obscure the subject matter of the present invention.
또한, 도면 전체에 걸쳐 유사한 기능 및 작용을 하는 부분에 대해서는 동일한 도면 부호를 사용한다. 명세서 전체에서, 어떤 부분이 다른 부분과 연결되어 있다고 할 때, 이는 직접적으로 연결되어 있는 경우뿐만 아니라, 그 중간에 다른 소자를 사이에 두고, 간접적으로 연결되어 있는 경우도 포함한다. 또한, 어떤 구성요소를 포함한다는 것은 특별히 반대되는 기재가 없는 한 다른 구성요소를 제외하는 것이 아니라, 다른 구성요소를 더 포함할 수 있는 것을 의미한다.The same reference numerals are used for portions having similar functions and functions throughout the drawings. Throughout the specification, when a part is connected to another part, it includes not only a case where it is directly connected but also a case where the other part is indirectly connected with another part in between. In addition, the inclusion of an element does not exclude other elements, but may include other elements, unless specifically stated otherwise.
본 발명을 도면에 따라 상세한 실시예와 같이 설명한다. The present invention will be described in detail with reference to the drawings.
도 1은 본 발명의 파우치형 이차전지에 사용되는 전극조립체의 수직 단면도를 모식적으로 도시하고 있다.1 schematically shows a vertical sectional view of an electrode assembly used in a pouch-type secondary battery of the present invention.
도 1을 참조하면, 전극조립체(100)는 양극 집전체(102)의 일측면 또는 양측면에 양극 활물질(101)이 코팅된 양극과 음극 집전체(104)의 일측면 또는 양측면에 음극 활물질(103)이 코팅된 음극 사이에 분리막(110)이 개재된 상태로 적층된 스택형 전극조립체이다.1, the electrode assembly 100 includes a positive electrode coated with a positive electrode active material 101 on one side or both sides of a positive electrode current collector 102 and a negative electrode active material 103 on one side or both sides of the negative electrode current collector 104 And a separator 110 interposed between the anode and the cathode.
전극조립체(100)는 상단 최외측 전극으로는 음극이 위치하고, 하단 최외측 전극으로는 양극이 위치한다. 그러나, 전극조립체(100)의 양단 최외측 전극이 서로 동일할 수 있는 바, 양극 또는 음극으로 동일 전극이 위치할 수 있다.In the electrode assembly 100, the cathode is located at the uppermost outermost electrode, and the anode is located at the lowermost outermost electrode. However, since the outermost electrodes at both ends of the electrode assembly 100 may be the same as each other, the same electrode may be positioned at the anode or the cathode.
전극조립체(100)의 상단 최외측 전극은 음극 집전체(104)의 내측면에만 음극 활물질(103)이 코팅된 편면 음극이고, 하단 최외측 전극은 양극 집전체(102)의 내측면에만 양극 활물질(101)이 코팅된 편면 양극으로 구성되며, 최외측 전극들을 제외한 나머지 중심부 전극들은 전극집전체의 양면에 전극 활물질이 코팅된 양면 전극으로 구성된다.The uppermost outermost electrode of the electrode assembly 100 is a single-sided negative electrode coated with the negative electrode active material 103 only on the inner surface of the negative electrode collector 104 and the outermost electrode of the lower electrode is formed only on the inner surface of the positive electrode collector 102 Side electrodes coated with an electrode active material, and the other central electrodes except for the outermost electrodes are composed of a double-sided electrode coated with an electrode active material on both sides of the electrode current collector.
이와 같이, 열전달 부재와 대면하는 전극조립체의 최외측에 금속 소재의 전극집전체가 위치하기 때문에, 전극조립체의 열에너지가 열전달 부재를 통해 파우치 케이스 방향으로 빠르게 이동할 수 있다.Thus, since the electrode current collector of the metal material is located at the outermost side of the electrode assembly facing the heat transfer member, the heat energy of the electrode assembly can quickly move toward the pouch case through the heat transfer member.
또한, 최외측 전극으로 전극 활물질이 코팅되지 않은 미코팅 전극이 사용된다면 도 1의 스택형 전극조립체(100) 대신에 라미네이션/스택형 전극조립체, 스택/폴딩형 전극조립체도 사용될 수 있음은 물론이다.In addition, if an uncoated electrode having no electrode active material is used as the outermost electrode, a lamination / stacked electrode assembly, a stack / folding type electrode assembly may be used instead of the stacked electrode assembly 100 of FIG. 1 .
도 2는 하나의 실시예에 따른 라미네이트 시트, 열전달 부재 및 전극의 일부에 대한 분해 사시도를 모식적으로 도시하고, 도 3은 도 2의 라미네이트 시트, 열전달 부재 및 전극이 결합된 상태의 수직 단면도를 모식적으로 도시하고 있다.FIG. 2 schematically shows an exploded perspective view of a laminate sheet, a heat transfer member, and a part of an electrode according to one embodiment, and FIG. 3 is a vertical sectional view of the state in which the laminate sheet, heat transfer member, As shown in FIG.
도 2 및 도 3을 참조하면, 라미네이트 시트(210)는 외부 피복층(201), 금속층(202) 및 내부 접착층(203)이 순차적으로 적층된 층상 구조이다. 라미네이트 시트(210)의 내측면은 열전달 부재(220)와 대면하고 있으며, 열전달 부재(220)의 평판형 본체(221)는 라미네이트 시트(210)의 내부 접착층(203)과 전극(234) 사이에 위치하고 돌출부(222)는 내부 접착층(203)의 내부를 관통하여 금속층(202)과 접하고 있다.2 and 3, the laminate sheet 210 is a layered structure in which an outer coating layer 201, a metal layer 202 and an inner adhesive layer 203 are sequentially laminated. The inner surface of the laminate sheet 210 faces the heat transfer member 220 and the plate body 221 of the heat transfer member 220 is disposed between the inner adhesive layer 203 and the electrode 234 of the laminate sheet 210 And the protruding portion 222 is in contact with the metal layer 202 through the inside of the internal adhesive layer 203.
돌출부(222)는 직육면체 구조와 같이 도시되어 있으나, 금속층 방향 끝단이 반구형으로 이루어지거나, 전체적으로 삼각뿔 구조일 수 있고, 또는 선형 구조일 수 있으나, 방열성을 높이기 위해서 라미네이트 시트의 금속층과의 접촉면을 가능한한 넓게 하는 것이 바람직하다.Although the projecting portion 222 is shown as a rectangular parallelepiped structure, it may have a hemispherical shape in the direction of the metal layer, a triangular pyramid structure as a whole, or a linear structure. However, in order to improve heat dissipation, It is preferable to make it wide.
돌출부(222)의 높이(h2)는 내부 접착층(203)의 두께(h1)와 동일한 두께로 도시되어 있으나, 내부 접착층(203)의 두께(h1)를 기준으로 100% 내지 120%의 범위로 이루어질 수 있다. The height h2 of the protrusion 222 is shown to be the same as the thickness h1 of the internal adhesive layer 203. The height h2 of the protrusion 222 is in the range of 100% to 120% based on the thickness h1 of the internal adhesive layer 203 .
돌출부(22)는 평판형 본체(221)의 평면에 대해 수직 방향으로 돌출된 구조로서 돌출부들(222)은 서로 균일한 간격으로 이격되도록 위치한다.The protrusion 22 is a structure protruding in a direction perpendicular to the plane of the plate-like body 221, and the protrusions 222 are positioned to be spaced apart from each other at a uniform interval.
따라서, 전극조립체의 열에너지는 최외측 전극에서 열전달 부재를 통해 라미네이트 시트의 금속층 방향으로 이동하고, 최외측 전극의 전체 부분에서 균일하고 신속하게 열에너지의 이동이 이루어질 수 있다.Therefore, the thermal energy of the electrode assembly moves from the outermost electrode in the direction of the metal layer of the laminate sheet through the heat transfer member, and the heat energy can be uniformly and rapidly transferred throughout the entirety of the outermost electrode.
도 4는 다른 하나의 실시예에 따른 라미네이트 시트, 열전달 부재 및 전극의 일부에 대한 분해 사시도를 모식적으로 도시하고, 도 5는 도 4의 라미네이트 시트, 열전달 부재 및 전극의 일부분의 수직 단면도를 모식적으로 도시하고 있다.FIG. 4 schematically shows an exploded perspective view of a laminate sheet, a heat transfer member and a part of an electrode according to another embodiment, and FIG. 5 is a cross-sectional view of a laminate sheet, a heat transfer member, As shown in FIG.
도 4 및 도 5를 참조하면, 라미네이트 시트(310)는 외부 피복층(301), 금속층(302) 및 내부 접착층(303)이 순차적으로 적층된 층상 구조이다.4 and 5, the laminate sheet 310 is a layered structure in which an outer coating layer 301, a metal layer 302, and an inner adhesive layer 303 are sequentially laminated.
전극(334)의 상면에는 열전달 부재(332)가 전극의 상면에 대해 수직인 방향으로 부착되어 있고, 전극(334) 및 열전달 부재(332)의 결합체(330)를 전지케이스에 수납하면, 열전달 부재(332)는 전지케이스인 라미네이트 시트(310)의 내부 접착층(303)을 관통하여 라미네이트 시트(310)의 금속층(302)과 접한다.On the upper surface of the electrode 334, a heat transfer member 332 is attached in a direction perpendicular to the upper surface of the electrode. When the electrode 334 and the combined body 330 of the heat transfer member 332 are housed in the battery case, The metal layer 332 penetrates the internal adhesive layer 303 of the laminate sheet 310 as a battery case and contacts the metal layer 302 of the laminate sheet 310. [
열전달 부재(332)의 형상 및 높이는 열전달 부재(220)의 돌출부(222)와 동일한 것으로 볼 수 있으므로, 이에 대한 설명은 생략한다.The shape and height of the heat transfer member 332 can be seen to be the same as the protrusion 222 of the heat transfer member 220, and a description thereof will be omitted.
이와 같이, 전극 및 열전달 부재의 결합체를 형성하는 경우에는, 전극 조립체 제조시 상기 결합체를 사용하여 제조하는 것이 공정상 편의성을 고려할 때 적절하며, 열전달 부재(332)를 사용하는 경우 열전달 부재(220)를 사용하는 것에 비해 평판형 본체의 두께만큼 전지의 용량을 높일 수 있는 장점이 있다.In the case where the electrode assembly and the heat transfer member are combined, it is preferable to use the assembly in manufacturing the electrode assembly, considering the convenience of the process. When the heat transfer member 332 is used, There is an advantage that the capacity of the battery can be increased by the thickness of the plate-like body.
즉, 본 발명에 따른 파우치형 이차전지는 전지케이스 내부에 열전달 부재를 포함하는 구조인 바, 전지 내부에서 발생하는 열에너지의 배출이 가능하여 안전성이 향상된 이차전지를 제공할 수 있다.That is, the pouch type secondary battery according to the present invention has a structure including a heat transfer member inside a battery case, and it is possible to provide a secondary battery with improved safety by allowing heat energy generated in the battery to be discharged.
이하에서는, 본 발명에 따른 실시예를 참조하여 설명하지만, 이는 본 발명의 더욱 용이한 이해를 위한 것으로, 본 발명의 범주가 그것에 의해 한정되는 것은 아니다.Hereinafter, the present invention will be described with reference to embodiments thereof, but it should be understood that the scope of the present invention is not limited thereto.
열전도성 측정Thermal conductivity measurement
<실험예><Experimental Example>
일반적으로 사용되는 도전성 접착제의 열전도성과 본 발명에 따른 열전달 부재의 열전도성의 차이를 확인하기 위하여, 하기와 같이 시판되는 도전성 접착제 7종을 비교예 1 내지 7로 나타내었고, 본원의 주요 열전달 부재 5종을 실시예 1 내지 5로 나타내고 열전도성을 측정하였다.In order to confirm the difference between the thermal conductivity of the conductive adhesive generally used and the thermal conductivity of the heat transfer member according to the present invention, seven kinds of commercially available conductive adhesives were shown as Comparative Examples 1 to 7, Are shown in Examples 1 to 5 and their thermal conductivities were measured.
열전도성은 상온 25 ℃에서 Mathis 사 TC-30을 사용하여 측정하였으며, 열전도도 측정을 위한 관련 규격은 ASTM C 518을 참고하였다. 추가적으로, 상기 장비 외에도 고체, 액체 및 Paste류의 열전도도를 동시 측정할 수 있는 장비를 이용한 열전도도의 측정이 가능하다.The thermal conductivity was measured using a Mathis TC-30 at room temperature of 25 ° C. ASTM C 518 was referred to the relevant standard for thermal conductivity measurement. In addition, it is possible to measure thermal conductivity using equipment that can simultaneously measure the thermal conductivity of solids, liquids and pastes in addition to the above equipment.
비교예 1 내지 7의 제조사 및 기초 물질은 하기 표 1과 같다.Manufacturers and basic materials of Comparative Examples 1 to 7 are shown in Table 1 below.
Figure PCTKR2018009752-appb-T000001
Figure PCTKR2018009752-appb-T000001
상기 실시예 1 내지 5의 열전달 부재 및 비교예 1 내지 7의 도전성 접착제의 열전도성을 측정한 결과는 하기 표 2와 같다.The results of measurement of the thermal conductivities of the heat conducting members of Examples 1 to 5 and the conductive adhesives of Comparative Examples 1 to 7 are shown in Table 2 below.
Figure PCTKR2018009752-appb-T000002
Figure PCTKR2018009752-appb-T000002
상기 표 2를 참조하면, 동일한 기초 물질이 동일한 소재로 이루어진 경우라도, 도전성 접착제로 제조되는 경우에는 열전달 부재로 제조된 경우와 비교할 때 현저히 낮은 열전도성을 갖는 것을 알 수 있다.Referring to Table 2, even when the same base material is made of the same material, it can be seen that the conductive base material has significantly lower thermal conductivity than the base material made of the heat conductive material.
예를 들어, 기초 물질이 알루미늄인 경우의 실시예 1 및 비교예 1을 비교하면, 실시예 1의 열전도성은 비교예 1의 열전도성의 약 196배에 이르는 것을 확인할 수 있다.For example, comparing Example 1 and Comparative Example 1 where the base material is aluminum, it can be seen that the thermal conductivity of Example 1 is about 196 times the thermal conductivity of Comparative Example 1.
따라서, 전극조립체와 라미네이트 시트 사이에 도전성 접착제가 도포되고, 상기 도전성 접착제를 통해 라미네이트 시트의 금속층과 전극조립체가 연결되는 구조로 이루어진 파우치형 이차전지를 사용하더라도, 상기 도전성 접착제의 낮은 열전도성으로 인하여, 상기 파우치형 이차전지 내부에서 발생하는 열에너지를 전지케이스 외부로 빠르게 배출하는 것이 용이하지 않음을 예상할 수 있다.Therefore, even if a pouch-type secondary battery having a structure in which a conductive adhesive agent is applied between the electrode assembly and the laminate sheet and the electrode assembly is connected to the metal layer of the laminate sheet through the conductive adhesive agent is used, , It can be expected that it is not easy to rapidly discharge the heat energy generated in the pouch type secondary battery to the outside of the battery case.
본 발명이 속한 분야에서 통상의 지식을 가진 자라면 상기 내용을 바탕으로 본 발명의 범주내에서 다양한 응용 및 변형을 수행하는 것이 가능할 것이다.It will be understood by those skilled in the art that various changes in form and details may be made therein without departing from the spirit and scope of the invention as defined by the appended claims.
- 부호의 설명- Explanation of symbols
100 : 전극조립체100: electrode assembly
101 : 양극 활물질101: cathode active material
102 : 양극 집전체102: positive collector
103 : 음극 활물질103: anode active material
104 : 음극 집전체104: cathode collector
110 : 분리막110: Membrane
201, 301 : 외부 피복층201, 301: outer coating layer
202, 302 : 금속층202, 302: metal layer
203, 303 : 내부 접착층203, 303: internal adhesive layer
210 , 310: 라미네이트 시트210, 310: Laminate sheet
220. 332: 열전달 부재220. 332: Heat transfer member
221 : 평판형 본체221: Plate type body
222 : 돌출부222:
234, 334: 전극234, 334: electrode
330 : 전극 및 열전달 부재의 결합체330: Combination of electrode and heat transfer member
h1 : 내부 접착층의 두께h1: thickness of inner adhesive layer
h2 : 돌출부의 높이h2: Height of protrusion
이상에서 설명한 바와 같이, 본 발명에 따른 파우치형 이차전지는 전지케이스 내부에 전극조립체와 라미네이트 시트의 금속층을 연결시키기 위한 열전달 부재를 포함하는 구조인 바, 전체적인 이차전지의 두께 증가를 최소화할 수 있으며, 전지셀의 용량 감소를 방지할 수 있다.As described above, the pouch type secondary battery according to the present invention includes a heat transfer member for connecting the electrode assembly and the metal layer of the laminate sheet in the battery case, thereby minimizing an increase in the thickness of the entire secondary battery. , It is possible to prevent the capacity of the battery cell from being reduced.
또한, 전지 내부에서 발생하는 열에너지를 전지케이스 외부로 빠르게 배출할 수 있으므로, 이차전지의 비정상적인 사용에 의해 발생하는 열폭주 현상을 방지할 수 있는 바, 전지셀 열화에 따른 수명 저하를 최소화하여 수명 특성을 향상시키고 안전성이 향상된 이차전지를 제공할 수 있는 장점이 있다.In addition, since the heat energy generated in the battery can be quickly discharged to the outside of the battery case, it is possible to prevent the thermal runaway phenomenon caused by the abnormal use of the secondary battery. As a result, And a secondary battery having improved safety can be provided.

Claims (12)

  1. 전극조립체 및 전해액을 수납하는 라미네이트 시트로 이루어진 파우치형 이차전지로서,A pouch-type secondary battery comprising an electrode assembly and a laminate sheet containing an electrolyte,
    상기 라미네이트 시트는 외부 피복층, 금속층 및 내부 접착층을 포함하는 구조로 이루어지고,Wherein the laminate sheet has a structure including an outer coating layer, a metal layer, and an inner adhesive layer,
    상기 전극조립체와 라미네이트 시트의 금속층을 연결시키기 위한 열전달 부재를 포함하는 파우치형 이차전지.And a heat transfer member for connecting the electrode assembly and the metal layer of the laminate sheet.
  2. 제 1 항에 있어서, 상기 열전달 부재는 상기 라미네이트 시트의 내부 접착층을 관통하는 돌출 구조를 포함하는 파우치형 이차전지.The pouch type secondary battery according to claim 1, wherein the heat transfer member includes a protruding structure penetrating the inner adhesive layer of the laminate sheet.
  3. 제 1 항에 있어서, 상기 열전달 부재는 전극조립체의 최외측 전극과 접촉하도록 라미네이트 시트에 부착되어 있는 파우치형 이차전지.The pouch type secondary battery according to claim 1, wherein the heat transfer member is attached to the laminate sheet so as to be in contact with the outermost electrode of the electrode assembly.
  4. 제 1 항에 있어서, 상기 열전달 부재는 평판형 본체 및 상기 평판형 본체의 일면에서 수직 방향으로 연장된 돌출부로 구성되는 파우치형 이차전지.The pouch type secondary battery according to claim 1, wherein the heat transfer member comprises a flat plate-shaped body and a protrusion extending in a vertical direction from one surface of the flat plate-shaped body.
  5. 제 1 항에 있어서, 상기 열전달 부재는 상기 전극조립체의 최외측 전극의 외측면에서 수직 방향으로 연장된 돌출 구조인 파우치형 이차전지.The pouch type secondary battery according to claim 1, wherein the heat transfer member is a protruding structure extending in a vertical direction on an outer surface of an outermost electrode of the electrode assembly.
  6. 제 2 항 또는 제 5 항에 있어서, 상기 돌출 구조는 복수의 돌기들이 일정한 간격으로 균일하게 형성되는 파우치형 이차전지.The pouch-type secondary battery according to claim 2 or 5, wherein the protruding structure has a plurality of protrusions uniformly formed at regular intervals.
  7. 제 2 항 또는 제 5 항에 있어서, 상기 돌출 구조의 높이는 라미네이트 시트의 내부 접착층의 두께를 기준으로 100% 내지 120%인 파우치형 이차전지.The pouch-type secondary battery according to claim 2 or 5, wherein the height of the protruding structure is 100% to 120% based on the thickness of the inner adhesive layer of the laminate sheet.
  8. 제 2 항 또는 제 5 항에 있어서, 상기 돌출 구조의 높이는 20 ㎛ 내지 140 ㎛의 범위인 파우치형 이차전지.The pouch type secondary battery according to claim 2 or 5, wherein the height of the protruding structure is in the range of 20 탆 to 140 탆.
  9. 제 1 항에 있어서, 상기 전극조립체는 스택형 전극조립체, 스택/폴딩형 전극조립체, 및 라미네이션/스택형 전극조립체로 이루어진 군에서 선택되는 1종 이상인 파우치형 이차전지.The pouch type secondary battery according to claim 1, wherein the electrode assembly is at least one selected from the group consisting of a stacked electrode assembly, a stack / folding electrode assembly, and a lamination / stacked electrode assembly.
  10. 제 9 항에 있어서, 상기 전극조립체는 최외측 전극이 서로 동일한 전극으로 구성되거나, 또는 서로 상이한 전극으로 구성되는 파우치형 이차전지.The pouch type secondary battery according to claim 9, wherein the outermost electrodes of the electrode assembly are formed of the same or different electrodes.
  11. 제 1 항에 있어서, 상기 열전달 부재는 열전도성이 높은 금속으로 이루어진 파우치형 이차전지.The pouch type secondary battery according to claim 1, wherein the heat transfer member is made of a metal having high thermal conductivity.
  12. 제 1 항에 있어서, 상기 열전달 부재는 알루미늄(Al), 구리(Cu), 은(Ag), 금(Au), 니켈(Ni), 텅스텐(W), 탄소(C) 및 철(Fe)로 이루어진 군에서 선택되는 1종 이상으로 이루어진 파우치형 이차전지.The heat transfer member according to claim 1, wherein the heat transfer member is made of aluminum (Al), copper (Cu), silver (Ag), gold (Au), nickel (Ni), tungsten (W), carbon (C) Wherein the pouch type secondary battery comprises at least one member selected from the group consisting of polyolefins.
PCT/KR2018/009752 2017-08-29 2018-08-23 Pouch type secondary battery including heat transfer member WO2019045365A1 (en)

Priority Applications (5)

Application Number Priority Date Filing Date Title
JP2019553888A JP6833253B2 (en) 2017-08-29 2018-08-23 Pouch-type secondary battery including heat transfer member
EP18852100.9A EP3582319B1 (en) 2017-08-29 2018-08-23 Pouch-shaped secondary battery including heat transfer member
PL18852100T PL3582319T3 (en) 2017-08-29 2018-08-23 Pouch-shaped secondary battery including heat transfer member
US16/473,452 US11183717B2 (en) 2017-08-29 2018-08-23 Pouch-shaped secondary battery including heat transfer member connected to metal layer of laminate sheet
CN201880008025.2A CN110226259B (en) 2017-08-29 2018-08-23 Pouch-shaped secondary battery including heat transfer member

Applications Claiming Priority (4)

Application Number Priority Date Filing Date Title
KR20170109714 2017-08-29
KR10-2017-0109714 2017-08-29
KR1020180097286A KR102630853B1 (en) 2017-08-29 2018-08-21 Pouch-Type Secondary Battery Having Heat Transfer Member
KR10-2018-0097286 2018-08-21

Publications (1)

Publication Number Publication Date
WO2019045365A1 true WO2019045365A1 (en) 2019-03-07

Family

ID=65527874

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/KR2018/009752 WO2019045365A1 (en) 2017-08-29 2018-08-23 Pouch type secondary battery including heat transfer member

Country Status (1)

Country Link
WO (1) WO2019045365A1 (en)

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN114552046A (en) * 2020-11-20 2022-05-27 北京小米移动软件有限公司 Lithium ion battery and electronic equipment

Citations (10)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPH11288737A (en) * 1998-04-02 1999-10-19 Dainippon Printing Co Ltd Thin-type battery
JP2000030975A (en) 1998-07-16 2000-01-28 Furukawa Electric Co Ltd:The Cooling part
KR20080019311A (en) * 2006-08-28 2008-03-04 주식회사 엘지화학 Pouch-type secondary battery having improved safety by preventing internal moving of electrode assembly
KR101520168B1 (en) 2012-04-30 2015-05-14 주식회사 엘지화학 pauch type lithium secondary battery
KR20160040167A (en) 2016-03-31 2016-04-12 주식회사 엘지화학 Stacking Type Battery Pack Having Connecting Member Made of Different Metals
KR20160041256A (en) * 2014-10-07 2016-04-18 주식회사 엘지화학 Cooling member of improved cooling performance and battery module comprising the same
KR101697764B1 (en) 2015-05-06 2017-01-19 한국교통대학교산학협력단 High heat dissipative polymer composites and method of the same
KR20170052059A (en) * 2015-11-03 2017-05-12 주식회사 엘지화학 Battery module
KR20170057465A (en) * 2014-10-31 2017-05-24 비와이디 컴퍼니 리미티드 Heating sink and power battery system
KR20170109714A (en) 2016-03-21 2017-10-10 한국생산기술연구원 Cutting Apparatus Haing Injection Quantity Contol Part and Cutting Method

Patent Citations (10)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPH11288737A (en) * 1998-04-02 1999-10-19 Dainippon Printing Co Ltd Thin-type battery
JP2000030975A (en) 1998-07-16 2000-01-28 Furukawa Electric Co Ltd:The Cooling part
KR20080019311A (en) * 2006-08-28 2008-03-04 주식회사 엘지화학 Pouch-type secondary battery having improved safety by preventing internal moving of electrode assembly
KR101520168B1 (en) 2012-04-30 2015-05-14 주식회사 엘지화학 pauch type lithium secondary battery
KR20160041256A (en) * 2014-10-07 2016-04-18 주식회사 엘지화학 Cooling member of improved cooling performance and battery module comprising the same
KR20170057465A (en) * 2014-10-31 2017-05-24 비와이디 컴퍼니 리미티드 Heating sink and power battery system
KR101697764B1 (en) 2015-05-06 2017-01-19 한국교통대학교산학협력단 High heat dissipative polymer composites and method of the same
KR20170052059A (en) * 2015-11-03 2017-05-12 주식회사 엘지화학 Battery module
KR20170109714A (en) 2016-03-21 2017-10-10 한국생산기술연구원 Cutting Apparatus Haing Injection Quantity Contol Part and Cutting Method
KR20160040167A (en) 2016-03-31 2016-04-12 주식회사 엘지화학 Stacking Type Battery Pack Having Connecting Member Made of Different Metals

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN114552046A (en) * 2020-11-20 2022-05-27 北京小米移动软件有限公司 Lithium ion battery and electronic equipment

Similar Documents

Publication Publication Date Title
WO2017217633A1 (en) Battery module, and battery pack and vehicle which comprise same module
WO2018008866A1 (en) Battery module, battery pack comprising same, and vehicle
WO2017209365A1 (en) Battery module, battery pack comprising same, and automobile
WO2017052041A1 (en) Battery module and battery pack comprising same
WO2017104878A1 (en) Battery pack
WO2013183945A1 (en) Battery module having stability-improved structure and high cooling efficiency
WO2011083968A2 (en) Mid- or large-sized battery pack having improved cooling efficiency
WO2014148858A1 (en) Secondary battery having improved energy density
WO2014014303A1 (en) Battery module assembly
WO2017095003A1 (en) Battery module comprising cartridge having gripping parts
WO2013168856A1 (en) Battery module including high-efficiency cooling structure
WO2011099703A2 (en) Battery module having enhanced welding reliability and medium or large battery pack including same
WO2010114318A2 (en) Battery module having flexibility in design structure of module and medium to large sized battery pack including the same
WO2017217641A1 (en) Battery module, and battery pack and vehicle comprising same
WO2013015539A1 (en) Battery module having improved reliability and mid-to-large battery pack comprising same
WO2017146379A1 (en) Battery module, battery pack and vehicle having same
WO2015005612A1 (en) Battery assembly
WO2013187685A1 (en) Battery cell having improved cooling efficiency
WO2016032092A1 (en) Battery module
WO2014030910A1 (en) Battery module assembly and manufacturing method therefor
WO2017061746A1 (en) Battery module
WO2014077578A1 (en) Battery module cooling device and battery module assembly comprising same
WO2013151233A1 (en) Battery cell
WO2019009625A1 (en) Battery module, and battery pack and vehicle including same
WO2013129844A1 (en) Battery cell assembly with improved safety, and battery module including same

Legal Events

Date Code Title Description
121 Ep: the epo has been informed by wipo that ep was designated in this application

Ref document number: 18852100

Country of ref document: EP

Kind code of ref document: A1

ENP Entry into the national phase

Ref document number: 2018852100

Country of ref document: EP

Effective date: 20190909

ENP Entry into the national phase

Ref document number: 2019553888

Country of ref document: JP

Kind code of ref document: A

NENP Non-entry into the national phase

Ref country code: DE