WO2022082389A1 - 电池、用电设备、制备电池的方法和装置 - Google Patents
电池、用电设备、制备电池的方法和装置 Download PDFInfo
- Publication number
- WO2022082389A1 WO2022082389A1 PCT/CN2020/121992 CN2020121992W WO2022082389A1 WO 2022082389 A1 WO2022082389 A1 WO 2022082389A1 CN 2020121992 W CN2020121992 W CN 2020121992W WO 2022082389 A1 WO2022082389 A1 WO 2022082389A1
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- Prior art keywords
- pressure relief
- area
- relief mechanism
- battery
- fire
- Prior art date
Links
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Images
Classifications
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- B60L50/00—Electric propulsion with power supplied within the vehicle
- B60L50/50—Electric propulsion with power supplied within the vehicle using propulsion power supplied by batteries or fuel cells
- B60L50/60—Electric propulsion with power supplied within the vehicle using propulsion power supplied by batteries or fuel cells using power supplied by batteries
- B60L50/64—Constructional details of batteries specially adapted for electric vehicles
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- A—HUMAN NECESSITIES
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- A62C—FIRE-FIGHTING
- A62C3/00—Fire prevention, containment or extinguishing specially adapted for particular objects or places
- A62C3/07—Fire prevention, containment or extinguishing specially adapted for particular objects or places in vehicles, e.g. in road vehicles
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- A—HUMAN NECESSITIES
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- A62C3/16—Fire prevention, containment or extinguishing specially adapted for particular objects or places in electrical installations, e.g. cableways
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- B60L58/10—Methods or circuit arrangements for monitoring or controlling batteries or fuel cells, specially adapted for electric vehicles for monitoring or controlling batteries
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- B60L58/10—Methods or circuit arrangements for monitoring or controlling batteries or fuel cells, specially adapted for electric vehicles for monitoring or controlling batteries
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- H—ELECTRICITY
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- Y—GENERAL 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
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02E—REDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
- Y02E60/00—Enabling technologies; Technologies with a potential or indirect contribution to GHG emissions mitigation
- Y02E60/10—Energy storage using batteries
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- Y—GENERAL 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
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02T—CLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO TRANSPORTATION
- Y02T10/00—Road transport of goods or passengers
- Y02T10/60—Other road transportation technologies with climate change mitigation effect
- Y02T10/70—Energy storage systems for electromobility, e.g. batteries
Definitions
- the present application relates to the field of energy storage devices, and in particular, to batteries, electrical equipment, and methods and devices for preparing batteries.
- the present application provides a battery, electrical equipment, and a method and device for preparing the battery, which can improve the safety performance of the battery.
- a battery in a first aspect, includes a battery cell, the battery cell includes a pressure relief mechanism, and the pressure relief mechanism is configured to be used when the internal pressure or temperature of the battery cell reaches a threshold value actuated to relieve said internal pressure or temperature; a fire fighting pipeline for containing fire fighting medium, said fire fighting pipeline comprising a first area corresponding to said pressure relief mechanism and a second area located on the periphery of said first area, The first area is for being broken to allow the fire fighting medium to drain when the pressure relief mechanism is actuated, and the second area is for remaining intact when the pressure relief mechanism is actuated to allow the fire fighting medium can flow from the second area to the first area; a protective member is provided between the fire fighting pipe and the battery cell for protecting the second area.
- the battery of the embodiment of the present application may include one or more battery cells, and the battery cell is provided with a pressure relief mechanism, and the pressure relief mechanism can be actuated when the internal temperature or pressure of the battery cell exceeds a threshold value to release the pressure.
- the pressure relief mechanism When the pressure relief mechanism is actuated, the discharge from the pressure relief mechanism can damage the fire pipe, so that the fire medium contained in the fire pipe can be removed from the fire pipe. The damaged part flows out and flows to the pressure relief mechanism to cool the battery cells; at the same time, a protective component is arranged between the fire pipeline and the battery cell, and the protective component can prevent the pressure relief mechanism on the fire pipeline.
- the second area on the periphery of the first area is protected, so that the pressure relief mechanism only destroys the first area of the fire pipeline corresponding to the pressure relief mechanism, so that the outflow position of the fire fighting medium in the fire pipe is concentrated in the position corresponding to the pressure relief mechanism , so that the heat dissipation efficiency of the battery cell can be improved, and the fire-fighting medium in the fire-fighting pipeline can be used more effectively.
- the guard member is disposed between the second region of the fire duct and the battery cell, and the guard member is used to protect the first region when the pressure relief mechanism is actuated Second area.
- the guard member can be arranged only at the second area, for example, the second area can be wrapped by the guard member, so that the guard member can comprise a plurality of separate structures, which saves installation space.
- the guard member includes a guard zone for protecting the second region of the fire duct when the pressure relief mechanism is actuated, and a zone of weakness, the zone of weakness being connected to the zone of weakness.
- the pressure relief mechanism is oppositely disposed, and the weakened area is configured to allow exhaust from the battery cells to pass through the weakened area to damage the first area when the pressure relief mechanism is actuated.
- the protective component can be set as a complete component, and the protective component can be set on the protective component with the leakage
- the weak area corresponding to the pressure mechanism can be used so that when the pressure relief mechanism is actuated, the first area is damaged through the weak area, and the protection area outside the weak area can protect the second area from being damaged.
- the protective member is provided with a first groove
- the fire fighting pipe is disposed in the first groove
- the first groove is used for collecting when the pressure relief mechanism is actuated for the fire-fighting medium to flow into the battery cells.
- the grooves on the protective parts can fix the fire pipeline, and can also collect and guide the fire medium to flow into the battery cell.
- the weak area is provided on the bottom wall of the first groove in an area corresponding to the first area.
- the width of the weak area in a first direction is greater than or equal to the width of the bottom wall of the first groove in the first direction, the first direction being perpendicular to the fire duct axis in the first region.
- the width of the weak zone is greater than the diameter of the fire protection pipe in a first direction, the first direction being perpendicular to the axis of the fire protection pipe in the first region.
- the orthographic projection of the weak area on the first plane covers the orthographic projection of the pressure relief mechanism on the first plane, and the first plane is parallel to the battery cell.
- the above arrangement can make the exhaust discharged when the pressure relief mechanism is actuated to break through the corresponding first area quickly and effectively.
- the fire duct is provided on a side of the pressure relief mechanism away from the interior of the battery cell.
- the pressure relief mechanism is an axisymmetric structure, and the axis of the fire pipeline in the first region is perpendicular to and on the same plane as the axis of the pressure relief mechanism.
- the melting point of the material of the protective member is greater than the melting point of the material of the fire duct.
- the melting point of the material of the protective member is greater than or equal to 800°C.
- the protective parts should be made of high melting point materials.
- the material of the protective member is mica or quartz.
- the battery further includes: a bus component for realizing electrical connection between a plurality of the battery cells; an insulating protective layer for covering the bus component to prevent the pressure release Emissions from the battery cells short-circuit a plurality of the battery cells when the mechanism is actuated, and the insulating protective layer has a thickness greater than 0.1 mm.
- the melting point of the material of the insulating protective layer is greater than or equal to 800°C.
- the material of the insulating protective layer is mica or quartz.
- the battery further includes: an insulating layer disposed between the pressure relief mechanism and the protective member. In this way, insulation between battery cells can be achieved.
- the insulating layer is used for wrapping the bus components of the battery, and an insulating protective layer is provided on the surface of the insulating layer corresponding to the bus components, wherein the bus components are used to realize multiple the electrical connection between the battery cells, the insulating protective layer is used to cover the bussing member to prevent the discharge from the battery cells when the pressure relief mechanism is actuated. Single short circuit.
- the protective component and the insulating protective layer are integrally formed.
- a region of the insulating layer corresponding to the pressure relief mechanism is provided with a second groove, and the protective member is provided in the second groove.
- the first groove on the protective member is disposed in the second groove
- the fire fighting pipe is disposed in the first groove
- the first groove is used in all the The fire fighting medium for flowing into the battery cells is collected when the pressure relief mechanism is actuated.
- the grooves provided on the insulating layer can facilitate the installation and fixation of the protective components and the fire-fighting pipeline, and also facilitate the correspondence between the two and the positions of the pressure relief mechanism.
- a fixing member is provided in the second groove, and the fixing member is used for fixing the protective component and the fire fighting pipeline.
- the melting point of the material of the insulating layer is less than the melting point of the shield member, and the insulating layer is melted by emissions from the battery cells when the pressure relief mechanism is actuated.
- the material of the insulating layer should be selected from a material with a lower melting point, so that the insulating layer can be rapidly melted by the discharge.
- an electrical device including: the first aspect or the battery according to any one of the embodiments of the first aspect.
- the powered device is a vehicle, a ship or a spacecraft.
- a method for preparing a battery comprising: providing a battery cell, the battery cell includes a pressure relief mechanism, and the pressure relief mechanism is used for when the internal pressure or temperature of the battery cell reaches a threshold value actuated to relieve the internal pressure or temperature; providing a fire fighting pipe for containing fire fighting medium, the fire fighting pipe comprising a first area corresponding to the pressure relief mechanism and a first area located in the first area a second area of the periphery for being broken upon actuation of the pressure relief mechanism to allow the fire fighting medium to escape, the second area for remaining intact upon actuation of the pressure relief mechanism so that the fire-fighting medium can flow from the second area to the first area; a protective member is provided, the protective member is arranged between the fire-fighting pipe and the battery cell, and the protective member is used to protect the second area.
- the guard member is disposed between the second region of the fire duct and the battery cell, and the guard member is used to protect the first region when the pressure relief mechanism is actuated Second area.
- the guard member includes a guard zone for protecting the second region of the fire duct when the pressure relief mechanism is actuated, and a zone of weakness, the zone of weakness being connected to the zone of weakness.
- the pressure relief mechanism is oppositely disposed, and the weakened area is configured to allow exhaust from the battery cells to pass through the weakened area to damage the first area when the pressure relief mechanism is actuated.
- the protective member is provided with a first groove
- the fire fighting pipe is disposed in the first groove
- the first groove is used for collecting when the pressure relief mechanism is actuated for the fire-fighting medium to flow into the battery cells.
- an apparatus for preparing a battery including a module for performing the method of the third aspect above.
- FIG. 1 is a schematic diagram of a vehicle according to an embodiment of the application.
- FIG. 2 is a schematic structural diagram of a battery according to an embodiment of the application.
- FIG. 3 is a schematic structural diagram of a battery module according to an embodiment of the application.
- FIG. 4 is an exploded view of a battery cell according to an embodiment of the present application.
- 5 and 6 are schematic exploded views of a battery according to an embodiment of the application.
- FIG. 7 is a schematic diagram of a fire fighting pipeline according to an embodiment of the application.
- FIG. 8 is a top view of a battery according to an embodiment of the application.
- FIG. 9 is a partial enlarged view of the cross-sectional view of the battery shown in FIG. 8 along the direction A-A;
- FIG. 10 is a schematic exploded view of a battery according to another embodiment of the present application.
- FIG. 11 is a schematic diagram of a protective component according to another embodiment of the application.
- FIG. 12 is another schematic exploded view of a battery according to another embodiment of the application.
- FIG. 13 is a top view of a battery according to another embodiment of the present application.
- FIG. 14 is a partial enlarged view of the cross-sectional view of the battery shown in FIG. 13 along the direction B-B;
- 15 is a schematic flowchart of a method for preparing a battery according to an embodiment of the present application.
- FIG. 16 is a schematic block diagram of an apparatus for preparing a battery according to an embodiment of the present application.
- the terms “installed”, “connected”, “connected” and “attached” should be understood in a broad sense, for example, it may be a fixed connection, It can also be a detachable connection, or an integral connection; it can be directly connected, or indirectly connected through an intermediate medium, and it can be internal communication between two components.
- installed should be understood in a broad sense, for example, it may be a fixed connection, It can also be a detachable connection, or an integral connection; it can be directly connected, or indirectly connected through an intermediate medium, and it can be internal communication between two components.
- multiple refers to two or more (including two), and similarly, “multiple groups” refers to two or more groups (including two groups), and “multiple sheets” refers to two or more sheets (includes two pieces).
- the battery cells may include lithium-ion secondary batteries, lithium-ion primary batteries, lithium-sulfur batteries, sodium-lithium-ion batteries, sodium-ion batteries, or magnesium-ion batteries, etc., which are not limited in the embodiments of the present application.
- the battery cell may be in the form of a cylinder, a flat body, a rectangular parallelepiped, or other shapes, which are not limited in the embodiments of the present application.
- the battery cells are generally divided into three types according to the packaging method: cylindrical battery cells, square-shaped battery cells, and soft-pack battery cells, which are not limited in the embodiments of the present application.
- the battery mentioned in the embodiments of the present application refers to a single physical module including one or more battery cells to provide higher voltage and capacity.
- the batteries mentioned in this application may include battery modules or battery packs, and the like.
- Batteries typically include a case for enclosing one or more battery cells. The box can prevent liquids or other foreign objects from affecting the charging or discharging of the battery cells.
- the battery cell includes an electrode assembly and an electrolyte, and the electrode assembly is composed of a positive electrode sheet, a negative electrode sheet and a separator.
- the battery cell mainly relies on the movement of metal ions between the positive and negative plates to work.
- the positive electrode sheet includes a positive electrode current collector and a positive electrode active material layer, the positive electrode active material layer is coated on the surface of the positive electrode current collector, the current collector without the positive electrode active material layer protrudes from the current collector coated with the positive electrode active material layer, and the positive electrode active material layer is not coated.
- the current collector coated with the positive electrode active material layer serves as the positive electrode tab.
- the material of the positive electrode current collector can be aluminum, and the positive electrode active material can be lithium cobalt oxide, lithium iron phosphate, ternary lithium, or lithium manganate.
- the negative electrode sheet comprises a negative electrode current collector and a negative electrode active material layer, the negative electrode active material layer is coated on the surface of the negative electrode current collector, the current collector without the negative electrode active material layer protrudes from the current collector coated with the negative electrode active material layer, The current collector coated with the negative electrode active material layer was used as the negative electrode tab.
- the material of the negative electrode current collector can be copper, and the negative electrode active material can be carbon or silicon.
- the number of positive tabs is multiple and stacked together, and the number of negative tabs is multiple and stacked together.
- the material of the diaphragm can be PP or PE, etc.
- the electrode assembly may be a wound structure or a laminated structure, and the embodiment of the present application is not limited thereto.
- the main safety hazard comes from the charging and discharging process, as well as appropriate ambient temperature design.
- the protection measures include at least switch elements, selection of appropriate isolation diaphragm materials and pressure relief mechanisms.
- a switching element is an element that can stop charging or discharging the battery when the temperature or resistance in the battery cell reaches a certain threshold.
- the separator is used to separate the positive electrode sheet and the negative electrode sheet. When the temperature rises to a certain value, the micro-scale (or even nano-scale) micropores attached to it can be automatically dissolved, so that the metal ions cannot pass through the separator and terminate the battery. Internal reactions of monomers.
- the pressure relief mechanism refers to an element or component that is actuated to relieve the internal pressure or temperature when the internal pressure or temperature of the battery cell reaches a predetermined threshold.
- the threshold design varies according to different design requirements.
- the threshold value may depend on the materials of one or more of the positive electrode sheet, the negative electrode sheet, the electrolyte and the separator in the battery cell.
- the pressure relief mechanism can take the form of an explosion-proof valve, a gas valve, a pressure relief valve or a safety valve, etc., and can specifically adopt a pressure-sensitive or temperature-sensitive element or structure, that is, when the internal pressure or temperature of the battery cell reaches a predetermined threshold When the pressure relief mechanism performs an action or the weak structure provided in the pressure relief mechanism is damaged, an opening or channel for releasing the internal pressure or temperature is formed.
- the "actuation" mentioned in this application means that the pressure relief mechanism is actuated or activated to a certain state, so that the internal pressure and temperature of the battery cell can be released.
- Actions produced by the pressure relief mechanism may include, but are not limited to, at least a portion of the pressure relief mechanism being ruptured, shattered, torn or opened, and the like.
- the emissions from the battery cells mentioned in this application include but are not limited to: electrolyte, dissolved or split positive and negative electrode sheets, fragments of separators, high temperature and high pressure gas generated by the reaction, flames, and the like.
- the pressure relief mechanism on the battery cell has an important impact on the safety of the battery. For example, when a short circuit, overcharge, etc. occurs, it may cause thermal runaway inside the battery cell, resulting in a sudden rise in pressure or temperature. In this case, the internal pressure and temperature can be released through the actuation of the pressure relief mechanism to prevent the battery cells from exploding and catching fire.
- the main focus is to release the high pressure and high heat inside the battery cell, that is, to discharge the exhaust to the outside of the battery cell.
- High-temperature and high-pressure discharges are discharged toward the direction in which the pressure relief mechanism is provided for the battery cells, and may be discharged more specifically in the direction of the area where the pressure relief mechanism is actuated. Enough to break through one or more structures in that direction, creating further safety concerns.
- the embodiments of the present application provide a technical solution, in which a fire fighting pipeline is arranged at a corresponding position of the pressure relief mechanism of the battery cell, and when the pressure relief mechanism is used for actuation, the exhaust discharged from the battery cell passes through and Destroy the fire-fighting pipeline, so that the fire-fighting medium in the fire-fighting pipeline is discharged from the place where the fire-fighting pipeline is damaged, and the discharge from the pressure relief mechanism is cooled to reduce the risk of the discharge, thereby enhancing the safety of the battery.
- the fire-fighting pipeline in the embodiment of the present application is used for containing fire-fighting medium, and the fire-fighting medium here may be a fluid, and the fluid may be a liquid or a gas.
- the fire fighting pipeline may not contain any substance, but when the pressure relief mechanism is actuated, the fire fighting medium can be contained in the fire fighting pipeline, for example, the fire fighting can be controlled by switching the valve The medium enters the fire pipeline.
- the fire-fighting pipeline may always contain a fire-fighting medium, and the fire-fighting medium may also be used to adjust the temperature of the battery cells. Adjusting the temperature refers to heating or cooling a plurality of battery cells.
- the fire fighting pipeline is used to contain the cooling fluid to reduce the temperature of the plurality of battery cells.
- the contained fire fighting medium may also be referred to as cooling medium or cooling fluid, and more specifically, may be referred to as cooling liquid or cooling gas.
- the fire fighting medium can be circulated to achieve better temperature regulation.
- the fire-fighting medium can be water, a mixture of water and glycol, or air, or the like.
- the case of the battery in the embodiment of the present application is used for accommodating a plurality of battery cells, bus components, and other components of the battery.
- a structure for fixing the battery cells may also be provided in the box.
- the shape of the case may be determined according to the plurality of battery cells accommodated.
- the box may be square with six walls.
- the bus components mentioned in this application are used to realize electrical connection between a plurality of battery cells, such as parallel connection or series connection or mixed connection.
- the bus part can realize electrical connection between the battery cells by connecting the electrode terminals of the battery cells.
- the bus members may be fixed to the electrode terminals of the battery cells by welding.
- the electrical connection formed by the bus component may also be referred to as a "high voltage connection”.
- each component in the battery case described above should not be construed as a limitation on the embodiments of the present application, that is, the battery case in the embodiments of the present application may include the above-mentioned components or may not include the above components.
- the technical solutions described in the embodiments of this application are applicable to various devices using batteries, such as mobile phones, portable devices, notebook computers, battery cars, electric toys, electric tools, electric vehicles, ships, and spacecraft.
- the spacecraft includes Planes, rockets, space shuttles and spaceships, etc.
- the vehicle 1 may be a fuel vehicle, a gas vehicle or a new energy vehicle, and the new energy vehicle may be a pure electric vehicle, a hybrid vehicle or Extended range cars, etc.
- the interior of the vehicle 1 may be provided with a motor 40 , a controller 30 and a battery 10 , and the controller 30 is used to control the battery 10 to supply power to the motor 40 .
- the battery 10 may be provided at the bottom of the vehicle 1 or at the front or rear of the vehicle.
- the battery 10 can be used for power supply of the vehicle 1 , for example, the battery 10 can be used as the operating power source of the vehicle 1 , for the circuit system of the vehicle 1 , for example, for the starting, navigation and operation power requirements of the vehicle 1 .
- the battery 10 can not only be used as the operating power source of the vehicle 1 , but also can be used as the driving power source of the vehicle 1 to provide driving power for the vehicle 1 in place of or partially in place of fuel or natural gas.
- the battery may include multiple battery cells, wherein the multiple battery cells may be connected in series or in parallel or in a mixed connection, and a mixed connection refers to a mixture of series and parallel connections.
- the battery 10 may also be referred to as a battery pack.
- a plurality of battery cells can be connected in series or in parallel or mixed to form a battery module, and then a plurality of battery modules can be connected in series or in parallel or mixed to form the battery 10 . That is to say, a plurality of battery cells can directly form the battery 10 , or a battery module can be formed first, and then the battery module can form the battery 10 .
- the battery 10 may include a plurality of battery cells 20 .
- the battery 10 may further include a box body (or a cover body), the inside of the box body is a hollow structure, and the plurality of battery cells 20 are accommodated in the box body.
- the box body may include two parts, which are referred to as the first part 111 and the second part 112 respectively, and the first part 111 and the second part 112 are fastened together.
- the shapes of the first part 111 and the second part 112 may be determined according to the combined shape of the plurality of battery cells 20 , and each of the first part 111 and the second part 112 may have an opening.
- both the first part 111 and the second part 112 can be a hollow cuboid and each has only one surface that is an open surface, the opening of the first part 111 and the opening of the second part 112 are arranged opposite to each other, and the first part 111 and the second part 112 are interlocked with each other Combined to form a box with a closed chamber.
- the plurality of battery cells 20 are connected in parallel or in series or in a mixed connection and then placed in the box formed by the first part 111 and the second part 112 being fastened together.
- the battery 10 may also include other structures.
- the battery 10 may further include a bussing component for realizing electrical connection between the plurality of battery cells 20, such as parallel or series or hybrid.
- the bus member may realize electrical connection between the battery cells 20 by connecting the electrode terminals of the battery cells 20 .
- the bus members may be fixed to the electrode terminals of the battery cells 20 by welding. The electrical energy of the plurality of battery cells 20 can be further drawn out through the case through the conductive mechanism.
- the conducting means may also belong to the bussing member.
- the number of battery cells 20 can be set to any value.
- a plurality of battery cells 20 can be connected in series, in parallel or in a mixed manner to achieve larger capacity or power. Since the number of battery cells 20 included in each battery 10 may be large, in order to facilitate installation, the battery cells 20 may be arranged in groups, and each group of battery cells 20 constitutes a battery module.
- the number of battery cells 20 included in the battery module is not limited, and can be set according to requirements.
- FIG. 3 is an example of a battery module.
- the battery can include a plurality of battery modules, and these battery modules can be connected in series, parallel or mixed.
- FIG. 4 is a schematic structural diagram of a battery cell 20 according to an embodiment of the application.
- the battery cell 20 includes one or more electrode assemblies 22 , a casing 211 and a cover plate 212 .
- the coordinate system shown in FIG. 4 is the same as that in FIG. 3 .
- the casing 211 and the cover plate 212 form an outer casing or battery case 21 . Both the wall of the case 211 and the cover plate 212 are referred to as the wall of the battery cell 20 .
- the casing 211 is determined according to the combined shape of one or more electrode assemblies 22.
- the casing 211 can be a hollow cuboid, a cube or a cylinder, and one surface of the casing 211 has an opening for one or more electrodes.
- Assembly 22 may be placed within housing 211 .
- one of the planes of the casing 211 is an opening surface, that is, the plane does not have a wall so that the casing 211 communicates with the inside and the outside.
- the casing 211 can be a hollow cylinder
- the end face of the casing 211 is an open face, that is, the end face does not have a wall so that the casing 211 communicates with the inside and the outside.
- the cover plate 212 covers the opening and is connected with the case 211 to form a closed cavity in which the electrode assembly 22 is placed.
- the casing 211 is filled with electrolyte, such as electrolyte.
- the battery cell 20 may further include two electrode terminals 214 , and the two electrode terminals 214 may be disposed on the cover plate 212 .
- the cover plate 212 is generally in the shape of a flat plate, and two electrode terminals 214 are fixed on the flat surface of the cover plate 212 , and the two electrode terminals 214 are a positive electrode terminal 214a and a negative electrode terminal 214b respectively.
- Each electrode terminal 214 is provided with a connecting member 23 , or a current collecting member, which is located between the cover plate 212 and the electrode assembly 22 for electrically connecting the electrode assembly 22 and the electrode terminal 214 .
- each electrode assembly 22 has a first tab 221a and a second tab 222a.
- the polarities of the first tab 221a and the second tab 222a are opposite.
- the first tab 221a is a positive tab
- the second tab 222a is a negative tab.
- the first tabs 221a of the one or more electrode assemblies 22 are connected to an electrode terminal, eg, a positive electrode terminal, through a connecting member 23;
- the other electrode terminal is connected, for example, the negative electrode terminal.
- the positive electrode terminal 214 a is connected to the positive electrode tab through one connection member 23
- the negative electrode terminal 214 b is connected to the negative electrode tab through the other connection member 23 .
- the electrode assembly 22 may be set in a single or multiple number. As shown in FIG. 4 , four independent electrode assemblies 22 are provided in the battery cell 20 .
- a pressure relief mechanism 213 may also be provided on the battery cell 20 .
- the pressure relief mechanism 213 is used to actuate when the internal pressure or temperature of the battery cell 20 reaches a threshold value to relieve the internal pressure or temperature.
- the pressure relief mechanism 213 may be various possible pressure relief structures, which are not limited in this embodiment of the present application.
- the pressure relief mechanism 213 may be a temperature-sensitive pressure relief mechanism configured to be able to melt when the internal temperature of the battery cell 20 provided with the pressure relief mechanism 213 reaches a threshold; and/or the pressure relief mechanism 213 may be a pressure-sensitive pressure relief mechanism, and the pressure-sensitive pressure relief mechanism is configured to be able to rupture when the internal air pressure of the battery cell 20 provided with the pressure relief mechanism 213 reaches a threshold value.
- a fire-fighting pipe for example, a fire-fighting pipe, may be provided at the corresponding position of the pressure relief mechanism 213 of the battery cell 20 It can be set in the direction in which the discharge is sprayed, and can be facing or not facing the pressure relief mechanism 213, so that the fire fighting pipeline has a place that can be in contact with the discharge and a position that can be destroyed. At the same time, after the fire fighting pipeline is destroyed, the fire medium It can flow to the battery cell 20 from the damaged part.
- the melting point of the fire pipe is usually set at a relatively low melting point.
- the discharge of the pressure relief mechanism 213 will be flaring and sprayed out, this will cause the fire pipeline to melt in a larger range, for example, it will be much larger than the corresponding range of the pressure relief mechanism 213, then Most of the fire-fighting medium contained in the fire-fighting pipeline is likely to flow to the outside of the thermally runaway battery cells 20, which may cause the thermally runaway battery cells 20 to be unable to be rapidly cooled. Therefore, the embodiments of the present application provide a battery that can solve the above problems.
- FIG. 5 shows a schematic exploded view of the battery 10 according to the embodiment of the present application.
- the battery 10 may include: battery cells 20 , and each battery 10 may include at least one battery cell 20 .
- the battery 10 includes 2*9 battery cells 20 for example.
- the battery cell 20 may include a pressure relief mechanism 213 (not shown in FIG. 5 ), and the pressure relief mechanism is used for when the internal pressure or temperature of the battery cell 20 reaches a threshold value Actuation to relieve this internal pressure or temperature.
- the pressure relief mechanism 213 may be provided at any position of the battery cell 20 .
- the battery cell 20 is a rectangular parallelepiped as shown in FIG. 5
- the pressure relief mechanism 213 may be disposed on any wall of the rectangular parallelepiped.
- the pressure relief mechanism 213 may be disposed on the uppermost wall of each battery cell 20 in FIG. 5 , that is, the pressure relief mechanism 213 and the electrode terminals of the battery cell 20 may be disposed on the same wall.
- the embodiments of the present application are described by taking the structure in which the pressure relief mechanism 213 and the electrode terminals of the battery cells 20 are disposed on the same wall as an example.
- the battery 10 shown in FIG. 5 may correspond to the battery 10 shown in FIG. 2 , and is applicable to the related description of the battery 10 shown in FIG. 2 .
- the battery 10 shown in FIG. 5 may also include a case, etc. Components; the battery cells 20 included in the battery 10 shown in FIG. 5 may correspond to the battery cells 20 shown in FIGS. 3 and 4 , and are applicable to the relevant descriptions of the battery cells 20 shown in FIGS. 3 and 4
- the pressure relief mechanism 213 included in the battery cell 20 shown in FIG. 5 may correspond to the pressure relief mechanism 213 shown in FIG. 4 , which will not be repeated here for brevity.
- the battery 10 in the embodiment of the present application may further include: a fire fighting pipeline 13 for containing fire fighting medium.
- the fire-fighting pipe 13 can be broken when the pressure relief mechanism 213 is actuated to discharge the fire-fighting medium contained therein, and the fire-fighting medium can be rapidly cooled down.
- FIG. 7 shows a schematic diagram of the fire fighting pipeline 13 shown in FIG. 5 . 5 and 7, the fire pipeline 13 may include a first area 131 and a second area 132, the first area 131 is corresponding to the pressure relief mechanism 213, so that when the pressure relief mechanism 213 is actuated, The first region 131 can be damaged by emissions from the battery cells 20 where the first region 131 is located.
- the second area 132 is located on the outer periphery of the first area 131 .
- the first area 131 is a section of the fire pipeline corresponding to the pressure relief mechanism 213 or a pipe facing the pressure relief mechanism 213 .
- a part of the region, the two adjacent sections of the pipeline on both sides thereof or a part of the region of the two adjacent sections of the pipeline facing the battery cell 20 is the second region 132 .
- the first area 131 is used to be destroyed when the pressure relief mechanism 213 is actuated to allow the fire fighting medium to discharge, while the second area 132 is used to remain intact when the pressure relief mechanism 213 is actuated to enable the fire fighting medium Flow from the second region 132 to the first region 131 .
- the battery 10 in the embodiment of the present application further includes: a protective member 14 disposed between the fire fighting pipe 13 and the battery cell 20 for protecting the second area 132, so that when the pressure relief mechanism 213 is actuated, the first The second region 132 remains intact.
- the battery 10 of the embodiment of the present application may include one or more battery cells 20 , and the battery cell 20 is provided with a pressure relief mechanism 213 , and the pressure relief mechanism 213 can be used when the internal temperature or pressure of the battery cell 20 exceeds a threshold value.
- the pressure relief mechanism 213 When the pressure relief mechanism 213 is actuated, the internal pressure or temperature is released; the fire pipe 13 is provided at the position corresponding to the pressure relief mechanism 213.
- the pressure relief mechanism 213 When the pressure relief mechanism 213 is actuated, the discharge from the pressure relief mechanism 213 can damage the fire pipe 13 , so that the fire-fighting medium contained in the fire-fighting pipe 13 flows out and flows to the pressure relief mechanism 213 to cool the battery cell 20; 14.
- the second area 132 located on the outer periphery of the first area 131 corresponding to the pressure relief mechanism 213 on the fire pipeline 13 can be protected, so that the pressure relief mechanism only destroys the first area 131 of the fire pipeline 13 corresponding to the pressure relief mechanism 213, Therefore, the positions where the fire-fighting medium in the fire-fighting pipe 13 flows out are concentrated at the positions corresponding to the pressure relief mechanism 213 , which can improve the heat dissipation efficiency of the battery cells 20 and utilize the fire-fighting medium in the fire-fighting pipe 13 more effectively.
- the protective member 14 in the embodiment of the present application can protect the second region 132 so that the second region 132 remains intact when the pressure relief mechanism 213 is actuated, and "complete" here may mean substantially intact.
- the pressure relief mechanism 213 is actuated, the discharged high-temperature and high-pressure discharge will melt the first area 131 of the fire fighting pipeline 13, and although the second area 132 is provided with the protective member 14, there may also be a small part of the second area 132 destroyed.
- the protective member 14 may keep the second area 132 intact, may include protecting the second area 132 from being damaged at all, or may also include maintaining the second area 132 substantially intact, that is, protecting the second area 132 from being substantially damaged, such as A region of the second region 132 close to the first region 131 may be melted in a small range of several millimeters, but the embodiment of the present application is not limited thereto.
- the fire fighting pipeline 13 in the embodiment of the present application can be set to any shape according to practical applications.
- the shape of the cross section of the fire duct 13 can be set to any shape according to practical applications.
- the fire fighting pipeline 13 can be set as a flat pipeline as shown in FIG. 5 , or can also be set as other shapes, such as cylindrical pipelines and the like.
- the embodiment of the present application takes the shape shown in FIG. 5 as an example for description.
- each battery may include one or more battery cells 20, when the battery 10 includes a larger number of battery cells 20, the plurality of battery cells 20 may be arranged in an array, for example, the 2*9 battery cells 20 included in the battery cells 10 are provided as shown in FIG. 5 .
- the fire fighting pipes 13 arranged above the battery cells 20 can be arranged in corresponding shapes.
- the fire-fighting pipe 13 may be a linear communication pipe disposed above the battery cells 20 and controlled by a set of valves. For any two adjacent rows of battery cells 20 as shown in FIG.
- the fire fighting pipeline 13 can be set to have a bent U-shaped communication pipeline, which is controlled by a set of valves.
- the fire-fighting pipeline 13 can also be configured as an S-shaped communication pipeline with two bends, and is controlled by a set of valves.
- any adjacent three or more rows of battery cells 20 included in the battery 10 can be set as a curved communication pipe with more bends, so as to be controlled by a set of valves, or can also be set
- the plurality of communication pipes may include at least one of a straight pipe, a U-shaped pipe, and an S-shaped pipe, and the embodiment of the present application is not limited thereto.
- the fire-fighting pipeline 13 is a U-shaped pipeline as an example for description.
- a set of valves in the embodiment of the present application includes an inlet valve and/or an outlet valve, the inlet valve is used for filling the fire fighting medium into the fire fighting pipeline 13, on the contrary, the outlet valve is used for discharging the fire fighting medium to the outside, for example, an inlet is provided at the same time
- the valve and the outlet valve can realize the circulation of fire-fighting medium in the fire-fighting pipeline 13, so that the fire-fighting pipeline 13 can also be used for cooling or heating when the fire-fighting pipeline 13 is not damaged.
- the position of the valve can be set according to the actual application.
- FIG. 6 shows another schematic exploded view of the battery 10 according to the embodiment of the present application.
- the pressure relief mechanism 213 included in the battery cell 20 is disposed on the uppermost wall of the battery cell 20 as shown in FIG. 6 , and the wall is also the cover plate of the battery cell 20 , and at the same time, the cover plate also includes electrode terminals 214 .
- the cover plate also includes electrode terminals 214 .
- arranging the fire fighting pipe 13 at the position corresponding to the pressure relief mechanism 213 includes: according to the position of the pressure relief mechanism 213 , arranging the fire fighting pipe 13 in the pressure relief mechanism 213 away from the interior of the battery cell 20 .
- One side, that is, the fire fighting pipe 13 can be arranged above the pressure relief mechanism 213, so that the fire fighting pipe 13 can at least partially cover the pressure relief mechanism 213, so that when the pressure relief mechanism 213 is actuated, the ejected discharge
- the fire-fighting pipeline 13 can be destroyed, so that the fire-fighting medium in the fire-fighting pipeline 13 can flow into the battery cells where thermal runaway occurs through the pressure relief mechanism 213 .
- the battery 10 may further include an insulating layer 12 , and the insulating layer 12 is arranged between the pressure relief mechanism 213 and the fire fighting pipeline 13 , and further, is arranged between the pressure relief mechanism 213 and the protective member between 14.
- the surface of the battery cell 20 shown in FIG. 5 is provided with the insulating layer 12 in FIG. 6 .
- the exhaust discharged through the pressure relief mechanism 213 can quickly melt the corresponding position of the insulating layer 12 covering the pressure relief mechanism 213 to discharge the battery cells 20 Therefore, the melting point of the material corresponding to the position of the pressure relief mechanism 213 on the insulating layer 12 is generally lower.
- the insulating layer 12 in the embodiment of the present application is used for the insulation between the wall where the pressure relief mechanism 213 is located and the fire fighting pipeline 13; the insulating layer 12 can also be used to wrap the confluence component, which is used to realize different batteries
- the structure of the surface of the wall for example, the insulating layer 12 can also be used to wrap a flexible printed circuit board (Flexible Printed Circuit, FPC), the FPC can be used to monitor the state of each battery cell 20, for example, can be used to monitor the temperature state or voltage state, etc., but the embodiments of the present application are not limited to this.
- FPC Flexible Printed Circuit
- one or more battery cells 20 may be provided in the battery 10, and for the case where a large number of battery cells 20 are provided, the number of bus components or FPC components connecting each battery cell 20 may be relatively large. , the setting area is large, so these components can be integrated through the insulating layer 12 to make the assembly of multiple battery cells 20 more convenient.
- the 2*9 battery cells 20 shown in FIG. 6 can be provided with one corresponding insulating layer 12 .
- the battery 10 of the embodiment of the present application further includes an insulating protective layer 15 , and the insulating protective layer 15 is used to protect the bus component 122 .
- the pressure relief mechanism 213 is actuated and discharges the discharge, which may melt the insulating layer 12 so as to expose the confluence part 122 , thereby causing the discharge or the fire-fighting pipe 13 to enter the The fire-fighting medium flows to the confluence part 122, thereby causing a lap short circuit between a plurality of adjacent confluence parts 122 used to connect different battery cells.
- the confluence part 122 can be protected from Influence of the discharge or the fire fighting medium in the fire fighting pipeline 13, for example, the insulating protective layer 15 can be selected from insulating and high temperature resistant materials, and the insulating protective layer 15 can be arranged on the surface of the bus part 122, or arranged on the insulating layer 12 The position on the surface corresponding to the confluence part 122 is to protect the confluence part 122 .
- the shape and size of the insulating protective layer 15 in the embodiments of the present application may be set according to practical applications. For example, considering that a plurality of battery cells 20 are usually arranged in an array as shown in FIG. 6 , in order to facilitate installation, the insulating protective layer 15 can be arranged as a long strip as shown in FIG. The protective layer 15 may be used to cover and protect a row of bus components 122, but the embodiment of the present application is not limited thereto.
- the protective member 14 and the insulating protective layer 15 can be independent structures, for example, the insulating protective layer 15 can be attached to the upper surface of the protective member 14 through a connector, and the connector can be glue or the like; or, the protective member 14
- the insulating protective layer 15 may also be integrally formed, and the embodiment of the present application is not limited thereto.
- the thickness of the insulating protective layer 15 is greater than 0.1 mm.
- the protective component 14 in the embodiment of the present application may include various forms, and the following will illustrate the battery including different protective components 14 by way of example with reference to the accompanying drawings.
- the protective component 14 may be a component that is only provided in the second area 132 of the fire fighting pipeline 13 .
- the protective member 14 may be disposed between the second area 132 of the fire duct 13 and the battery cell 20 for when the pressure relief mechanism 213 is actuated
- the protective member 14 can wrap around the surface of the second area 132 .
- a second groove 121 may be provided on the insulating layer 12 in a region corresponding to the pressure relief mechanism 213 , and the fire-fighting pipe 13 wrapped by the protective member 14 is provided in the second groove 121 .
- the fire fighting pipe 13 is usually arranged directly above the pressure relief mechanism 213 so that the first area 131 faces the pressure relief mechanism 213.
- the pressure relief mechanism 213 is usually an axisymmetric figure, and the axis of the pressure relief mechanism 213 is perpendicular to the axis of the corresponding first area 131 and located on the same plane, that is, the first area 131 faces the pressure relief mechanism 213 .
- the second groove 121 is arranged directly above the pressure relief mechanism 213
- the fire fighting pipe 13 is arranged in the second groove 121 to ensure that the fire fighting pipe 13 is arranged directly above the pressure relief mechanism 213 . .
- the melting point of the material of the protective member 14 should be greater than the melting point of the material of the fire fighting pipe 13 .
- the protective member 14 usually selects a material with a higher melting point.
- the melting point of the material of the protective member 14 is greater than or equal to 800° C.
- the material of the protective member 14 may be mica, quartz, etc., but the embodiments of the present application do not Not limited to this.
- the first area 131 and the second area 132 included in the fire fighting pipeline 13 in the embodiment of the present application will be described below.
- the division of the first area 131 and the second area 132 may be for the entire fire protection pipeline 13 , or may be for the side of the fire protection pipeline 13 facing the battery cells 20 .
- the first area 131 in the embodiment of the present application may be a section of the pipeline corresponding to the pressure relief mechanism 213 in the fire fighting pipeline 13 , that is, the first area 131 is facing the pressure relief mechanism 213 .
- a section of pipeline, or, the first area 131 may also refer to an area corresponding to the pressure relief mechanism 213 on the surface of the fire fighting pipe 13 facing the battery cells 20 , that is, the first area 131 is facing the pressure relief mechanism 213
- the second area 132 is located on the outer periphery of the first area 131, that is, each second area 132 is a section of pipeline adjacent to the first area 131, or, each The second area 132 is a block adjacent to the first area 131 .
- the second region 132 may be a section of pipeline or a block of regions; and when the first region 131 represents a region, the second region 132 may be a section of pipeline, or It may be one area, which is not limited in this embodiment of the present application. However, for the convenience of description, the first area 131 and the second area 132 both represent a section of pipeline as an example below.
- the second region 132 located on the outer periphery of the first region 131 may include various division manners.
- the extension direction of the fire fighting pipeline 13 is defined as the X direction, that is, the axis direction of the fire fighting pipeline 13 is defined as the X direction.
- both ends are provided with a second region 132 , but the size of the second region 132 can be set to be different, then the second region 132 is continuous along the X direction.
- a segment of the second region 132 (for example, as shown in FIG. 7 ) may be provided, or two discontinuous second regions 132 may be provided, and each second region 132 corresponds to The first area 131 of the adjacent.
- the lengths of the first region 131 and the second region 132 in the X direction in the embodiment of the present application may be set according to practical applications, and the embodiment of the present application is not limited thereto.
- the length of the first area 131 along the X direction can be set according to the size of the pressure relief mechanism 213, and can also be set according to the distance between the fire pipeline 13 and the pressure relief mechanism 213, for example, the first area 131 along the X direction
- the length in the direction may be greater than or equal to the length of the pressure relief mechanism 213 along the X direction; and the second area 132 is the pipeline between the two first areas 131 corresponding to the two adjacent pressure relief mechanisms 213 in the fire pipeline 13 .
- FIG. 8 shows a top view of the battery 10 including the fire fighting pipes 13 and the battery cells 20 , that is, FIG. 8 is a top view of the battery 10 shown in FIG. 6 after installation.
- the direction perpendicular to the X direction is referred to as the first direction, and is represented as the Y direction.
- the width of the fire fighting pipe 13 in the Y direction is less than or equal to the width of the second groove 121 .
- the width of the insulating protective layer 15 can be set according to practical applications, for example, the width of the insulating protective layer 15 can be set according to the width of the bus component 122 along the Y direction.
- Fig. 9 is a partially enlarged view of a cross-sectional view of the battery 10 shown in Fig. 8 taken in the direction A-A shown in Fig. 8 .
- the width of the pressure relief mechanism 213 is usually set to be greater than or equal to the width of the fire pipeline 13, so that It is easier to damage the fire fighting pipeline 13, but the embodiment of the present application is not limited to this.
- a fixing member 123 may be provided on the insulating layer 12 .
- a fixing member 123 may be provided in the second groove 121 on the insulating layer 12 , and the fixing member 123 is used for fixing the fire fighting pipe 13 with the protective member 14 .
- the fixing member 123 may be any structure capable of fixing the fire fighting pipeline 13 .
- the fixing member 123 may be a buckle, but the embodiment of the present application is not limited thereto.
- the structure in which the protective member 14 is arranged in sections in the second area 132 is taken as an example. Different from this, the protective member 14 can also be arranged as a whole structure between the pressure relief mechanism 213 and the fire fighting pipeline 13. .
- each separate structure is only used to protect a section of the second area 132 in the fire pipeline 13 .
- the protective component 14 in the embodiment of the present application may also be one or more continuous structures, and each continuous structure can protect multiple second regions 132 in the fire pipeline 13 .
- FIG. 10 shows a schematic exploded view of the battery 10 of the second embodiment of the present application.
- the protective member 14 may be disposed between the fire fighting pipe 13 and the pressure relief mechanism 213 (not shown in FIG. 10 ).
- the protective component 14 may be made to the relevant content in FIG. 5 , and for brevity, details are not repeated here.
- FIG. 11 shows a schematic view of the guard member 14 in FIG. 10 .
- the protective component 14 may include a protective area 142 and a weak District 141.
- the weak area 141 corresponds to the first area 131
- the protection area 142 corresponds to the second area 132 .
- the protection area 142 is other area than the weak area 141 .
- the protective area 142 covers the second area 132, for example, the protective area 142 can cover the area of the second area 132 on the side facing the battery cells 20, the protective area 142
- the weak area 141 covers the first area 131 and is opposite to the pressure relief mechanism 213, and the weak area 141 is used for When the pressure relief mechanism 213 is actuated, emissions from the battery cells 20 are enabled to damage the first region 131 through the weak zone 141 .
- the pressure relief mechanism 213 when the pressure relief mechanism 213 is actuated, it can ensure that the first area 131 of the fire fighting pipeline 13 is destroyed, while the second area 132 remains intact, and the fire fighting medium in the second area 132 flows to the first area 131 and passes through the second area 132.
- a region 131 flows out to the battery cells where thermal runaway occurs, and achieves the effect of cooling and dissipating heat.
- the weak area 141 in the embodiment of the present application may be a through hole or a material with a lower melting point, so as to ensure that the discharge from the battery cell 20 passes through the weak area through the pressure relief mechanism 213 to damage the first area 131;
- the protection area 142 is made of a material with a higher melting point to ensure that it will not be melted by the discharge from the battery cells 20 , so as to protect the second area 132 .
- the melting point of the material of the protective member 14 at the protective zone 142 should be greater than the melting point of the material of the fire fighting pipe 13 .
- the melting point of the material of the protective member 14 is greater than or equal to 800° C.
- the material of the protective member 14 may be mica, quartz, etc., but the embodiment of the present application is not limited thereto.
- the protective member 14 is further provided with a first groove 143 , and the fire pipeline 13 is provided in the first groove 143 and on the bottom wall of the first groove 143 A region corresponding to the first region 131 is provided with the weak region 141 .
- the first groove 143 can be used to collect the fire fighting medium for flowing into the battery cell 20 when the pressure relief mechanism 213 is actuated.
- FIG. 12 shows another schematic exploded view of the battery 10 of the second embodiment of the present application.
- the fire fighting pipeline 13 can be fixed in the first groove 143 of the protective component 14 , and at the same time, the fire fighting pipeline 13 and the protective component 14 can be fixed in the second groove 121 of the insulating layer 12 , and the insulating protective layer 15 covers the area of the surface of the insulating layer 12 corresponding to the busbar 122 .
- the insulating layer 12 in FIG. 12 may correspond to the insulating layer 12 in FIG. 6 , that is, the related description of the insulating layer 12 in FIG. 6 applies to the insulating layer 12 in FIG. 12 , which is not repeated here for brevity.
- the insulating layer 12 shown in FIG. 12 is provided on the upper surface of the battery cell 20 shown in FIG. 11 .
- the insulating layer 12 is provided with a second groove 121 corresponding to the pressure relief mechanism 213 , so that the protective component 14 mounted with the fire pipeline 13 is disposed in the second groove 121 .
- FIG. 13 shows a top view of the battery 10 according to the second embodiment of the present application. Referring to FIG. 10 and FIG.
- the pressure relief mechanism 213 is usually an axisymmetric figure, and the axis of the pressure relief mechanism 213 corresponds to the corresponding first
- the axes of the regions 131 are vertical and located on the same plane, that is, the first region 131 faces the pressure relief mechanism 213 .
- the orthographic projection of the weak area 141 on the first plane covers the orthographic projection of the pressure relief mechanism 213 on the first plane, so that the weak area 141 is also facing the pressure relief mechanism 213 , or can cover the pressure relief mechanism 213, wherein the first plane is parallel to the upper or lower surface of the wall where the pressure relief mechanism 213 of the battery cell 20 is located, the upper surface is the surface away from the interior of the battery cell 20, and the lower surface is facing the battery cell surface inside the body 20 .
- the size of the fire fighting pipeline 13 and the size of the protective component 14 may be set according to practical applications. 12 and 13 , since the fire fighting pipeline 13 is arranged in the first groove 143 of the protective member 14 and the protective member 14 is arranged in the second groove 121 of the insulating layer 12 , therefore, in the Y direction, the fire fighting pipeline
- the width of 13 is less than or equal to the width of the bottom wall of the first groove 143
- the width of the bottom wall of the first groove 143 is less than or equal to the width of the bottom wall of the second groove 121 .
- the width of the insulating protective layer 15 can be set according to practical applications, for example, the width of the insulating protective layer 15 can be set according to the direction of the bus component 122 along the Y direction.
- the width of the fire-fighting pipes 13 may refer to the width of the fire-fighting pipes 13 where the width is the smallest in the Y direction.
- the width of the weak area 141 is generally larger than the diameter of the fire pipe 13; In the direction, the width of the weak area 141 may be greater than, less than or equal to the width of the bottom wall of the first groove 143. For example, as shown in FIG. 13, the width of the weak area 141 may be greater than the width of the bottom wall of the first groove 143 to The first region 131 can be sufficiently exposed through the weak region 141, thereby ensuring that the first region 131 is more easily damaged when the pressure relief mechanism 213 is actuated, but the embodiment of the present application is not limited thereto.
- FIG. 14 is a partial enlarged view of a cross-sectional view of the battery 10 shown in FIG. 13 taken along the B-B direction shown in FIG. 13 .
- the width of the pressure relief mechanism 213 is usually set to be greater than or equal to the width of the fire duct 13, but this The application embodiment is not limited to this.
- a fixing member 123 may also be provided on the insulating layer 12 , which will not be repeated here for brevity.
- the battery 10 in the embodiment of the present application may include one or more battery cells 20 , and the battery cell 20 is provided with a pressure relief mechanism 213 , and the pressure relief mechanism 213 may exceed the internal temperature or pressure of the battery cell 20 .
- An embodiment of the present application further provides an electrical device, and the electrical device may include the battery 10 in the foregoing embodiments.
- the electrical equipment may be a vehicle 1, a ship or a spacecraft.
- FIG. 15 shows a schematic flowchart of a method 300 for preparing a battery according to an embodiment of the present application.
- the method 300 may include: 310 , providing a battery cell 20 , and the battery cell 20 includes a pressure relief mechanism 213 , and the pressure relief mechanism 213 is configured to cause the internal pressure or temperature of the battery cell 20 to reach a threshold value.
- the fire-fighting pipeline 13 is used to contain the fire-fighting medium
- the fire-fighting pipeline 13 includes a first area 131 corresponding to the pressure relief mechanism 213 and a second area located on the outer periphery of the first area 131 Zone 132
- the first zone 131 is used to be destroyed when the pressure relief mechanism 213 is actuated to allow the fire fighting medium to escape
- the second zone 132 is used to remain intact when the pressure relief mechanism 213 is actuated to enable the fire fighting medium from the second zone 330
- the guard member 14 is provided, the guard member 14 is arranged between the fire fighting pipeline and the battery cell 20 , and the guard member 14 is used to protect the second zone 132 .
- FIG. 16 shows a schematic block diagram of an apparatus 400 for preparing a battery according to an embodiment of the present application.
- the apparatus 400 for preparing a battery may include: providing a module 410 .
- a module 410 is provided for: providing a battery cell 20, the battery cell 20 including a pressure relief mechanism 213 for actuating to relieve the internal pressure or temperature when the internal pressure or temperature of the battery cell 20 reaches a threshold value
- the fire fighting pipeline 13 is used to accommodate the fire fighting medium
- the fire fighting pipeline 13 includes a first area 131 corresponding to the pressure relief mechanism 213 and a second area 132 located on the periphery of the first area 131, the first area 131 is used in the
- the pressure relief mechanism 213 is actuated, it is broken to allow the fire-fighting medium to discharge, and the second area 132 is used to remain intact when the pressure relief mechanism 213 is actuated to enable the fire-fighting medium to flow from the second area 132 to the first area 131; providing
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Abstract
Description
Claims (31)
- 一种电池,其特征在于,包括:电池单体(20),所述电池单体(20)包括泄压机构(213),所述泄压机构(213)用于在所述电池单体(20)的内部压力或温度达到阈值时致动以泄放所述内部压力或温度;消防管道(13),用于容纳消防介质,所述消防管道(13)包括与所述泄压机构(213)对应的第一区域(131)以及位于所述第一区域(131)外周的第二区域(132),所述第一区域(131)用于在所述泄压机构(213)致动时被破坏以使所述消防介质排出,所述第二区域(132)用于在所述泄压机构(213)致动时保持完整以使所述消防介质能够从所述第二区域(132)流向所述第一区域(131);防护部件(14),设置于所述消防管道(13)和所述电池单体(20)之间,用于保护所述第二区域(132)。
- 根据权利要求1所述的电池,其特征在于,所述防护部件(14)设置在所述消防管道(13)的所述第二区域(132)与所述电池单体(20)之间,所述防护部件(14)用于在所述泄压机构(213)致动时保护所述第二区域(132)。
- 根据权利要求1所述的电池,其特征在于,所述防护部件(14)包括薄弱区(141)和防护区(142),所述防护区(142)用于在所述泄压机构(213)致动时保护所述消防管道(13)的所述第二区域(132),所述薄弱区(141)与所述泄压机构(213)相对设置,所述薄弱区(141)用于在所述泄压机构(213)致动时使得来自所述电池单体(20)的排放物能够通过所述薄弱区(141)破坏所述第一区域(131)。
- 根据权利要求3所述的电池,其特征在于,所述防护部件(14)上设置有第一凹槽(143),所述消防管道(13)设置在所述第一凹槽(143)内,所述第一凹槽(143)用于在所述泄压机构(213)致动时收集用于流入所述电池单体(20)内的所述消防介质。
- 根据权利要求4所述的电池,其特征在于,在所述第一凹槽(143)的底壁上与所述第一区域(131)对应的区域设置有所述薄弱区(141)。
- 根据权利要求5所述的电池,其特征在于,所述薄弱区(141)在第一方向上的宽度大于或者等于所述第一凹槽(143)的底壁在所述第一方向上的宽度,所述第一方向垂直于所述消防管道(13)在所述第一区域(131)的轴线。
- 根据权利要求3至6中任一项所述的电池,其特征在于,所述薄弱区(141)在第一方向的宽度大于所述消防管道(13)的直径,所述第一方向垂直于所述消防管道(13)在所述第一区域(131)的轴线。
- 根据权利要求3至7中任一项中所述的电池,其特征在于,所述薄弱区(141)在第一平面上的正投影覆盖所述泄压机构(213)在所述第一平面上的正投影,所述第一平面平行于所述电池单体(20)的所述泄压机构(213)所在的壁的朝向所述电池单体(20)内部的表面。
- 根据权利要求1至8中任一项所述的电池,其特征在于,所述消防管道(13)设置在所述泄压机构(213)的远离所述电池单体(20)的内部的一侧。
- 根据权利要求9所述的电池,其特征在于,所述泄压机构(213)为轴对称结构,所述消防管道(13)在所述第一区域(131)的轴线与所述泄压机构(213)的轴线垂直且在同一平面。
- 根据权利要求1至10中任一项所述的电池,其特征在于,所述防护部件(14)的材料的熔点大于所述消防管道(13)的材料的熔点。
- 根据权利要求1至11中任一项所述的电池,其特征在于,所述防护部件(14)的材料的熔点大于或者等于800℃。
- 根据权利要求1至12中任一项所述的电池,其特征在于,所述防护部件(14)的材料为云母或石英。
- 根据权利要求1至13中任一项所述的电池,其特征在于,所述电池还包括:汇流部件(122),用于实现多个所述电池单体(20)之间的电连接;绝缘防护层(15),用于覆盖所述汇流部件(122),以阻止在所述泄压机构(213)致动时来自所述电池单体(20)的排放物将多个所述电池单体(20)短路,所述绝缘防护层厚度大于0.1mm。
- 根据权利要求14所述的电池,其特征在于,所述绝缘防护层(15)的材料的熔点大于或者等于800℃;和/或,所述绝缘防护层(15)的材料为云母或石英。
- 根据权利要求1至15中任一项所述的电池,其特征在于,所述电池还包括:绝缘层(12),所述绝缘层(12)设置在所述泄压机构(213)与所述防护部件(14)之间。
- 根据权利要求16所述的电池,其特征在于,所述绝缘层(12)用于包裹所述电池的汇流部件(122),所述绝缘层(12)的表面与所述汇流部件(122)对应区域设置有绝缘防护层(15),其中,所述汇流部件(122)用于实现多个所述电池单体(20)之间的电连接,所述绝缘防护层(15)用于覆盖所述汇流部件(122),以阻止在所述泄压机构(213)致动时来自所述电池单体(20)的排放物将多个所述电池单体(20)短路。
- 根据权利要求17所述的电池,其特征在于,所述防护部件(14)与所述绝缘防护层(15)为一体成型结构。
- 根据权利要求16至18中任一项所述的电池,其特征在于,所述绝缘层(12)与所述泄压机构(213)对应的区域设置有第二凹槽(121),所述防护部件(14)设置在所述第二凹槽(121)内。
- 根据权利要求19所述的电池,其特征在于,所述防护部件(14)上的第一凹槽(143)设置在所述第二凹槽(121)内,所述消防管道(13)设置在所述第一凹槽(143)内,所述第一凹槽(143)用于在所述泄压机构(213)致动时收集用于流入所述电池单体(20)内的所述消防介质。
- 根据权利要求19或20所述的电池,其特征在于,所述第二凹槽(121)内设 置有固定件(123),所述固定件(123)用于固定所述防护部件(14)和所述消防管道(13)。
- 根据权利要求16至21中任一项所述的电池,其特征在于,所述绝缘层(12)的材料的熔点小于所述防护部件(14)的熔点,且所述绝缘层(12)在所述泄压机构(213)致动时被来自所述电池单体(20)的排放物熔化。
- 一种用电设备,其特征在于,包括:如权利要求1至22中任一项所述的电池。
- 一种制备电池的方法,其特征在于,包括:提供电池单体,所述电池单体包括泄压机构,所述泄压机构用于在所述电池单体的内部压力或温度达到阈值时致动以泄放所述内部压力或温度;提供消防管道,所述消防管道用于容纳消防介质,所述消防管道包括与所述泄压机构对应的第一区域以及位于所述第一区域外周的第二区域,所述第一区域用于在所述泄压机构致动时被破坏以使所述消防介质排出,所述第二区域用于在所述泄压机构致动时保持完整以使所述消防介质能够从所述第二区域流向所述第一区域;提供防护部件,所述防护部件设置于所述消防管道和所述电池单体之间,所述防护部件用于保护所述第二区域。
- 根据权利要求24所述的方法,其特征在于,所述防护部件设置在所述消防管道的所述第二区域与所述电池单体之间,所述防护部件用于在所述泄压机构致动时保护所述第二区域。
- 根据权利要求24所述的方法,其特征在于,所述防护部件包括防护区和薄弱区,所述防护区用于在所述泄压机构致动时保护所述消防管道的所述第二区域,所述薄弱区与所述泄压机构相对设置,所述薄弱区用于在所述泄压机构致动时使得来自所述电池单体的排放物能够通过所述薄弱区破坏所述第一区域。
- 根据权利要求26所述的方法,其特征在于,所述防护部件上设置有第一凹槽,所述消防管道设置在所述第一凹槽内,所述第一凹槽用于在所述泄压机构致动时收集用于流入所述电池单体内的所述消防介质。
- 一种制备电池的装置,其特征在于,包括:提供模块,所述提供模块用于:提供电池单体,所述电池单体包括泄压机构,所述泄压机构用于在所述电池单体的内部压力或温度达到阈值时致动以泄放所述内部压力或温度;提供消防管道,所述消防管道用于容纳消防介质,所述消防管道包括与所述泄压机构对应的第一区域以及位于所述第一区域外周的第二区域,所述第一区域用于在所述泄压机构致动时被破坏以使所述消防介质排出,所述第二区域用于在所述泄压机构致动时保持完整以使所述消防介质能够从所述第二区域流向所述第一区域;提供防护部件,所述防护部件设置于所述消防管道和所述电池单体之间,所述防护部件用于保护所述第二区域。
- 根据权利要求28所述的装置,其特征在于,所述防护部件设置在所述消防管道的所述第二区域与所述电池单体之间,所述防护部件用于在所述泄压机构致动时保护所述第二区域。
- 根据权利要求28所述的装置,其特征在于,所述防护部件包括防护区和薄弱区,所述防护区用于在所述泄压机构致动时保护所述消防管道的所述第二区域,所述薄弱区与所述泄压机构相对设置,所述薄弱区用于在所述泄压机构致动时使得来自所述电池单体的排放物能够通过所述薄弱区破坏所述第一区域。
- 根据权利要求30所述的装置,其特征在于,所述防护部件上设置有第一凹槽,所述消防管道设置在所述第一凹槽内,所述第一凹槽用于在所述泄压机构致动时收集用于流入所述电池单体内的所述消防介质。
Priority Applications (6)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
KR1020237001610A KR102646202B1 (ko) | 2020-10-19 | 2020-10-19 | 배터리, 전기 장치, 배터리를 제조하는 방법과 장치 |
EP20827955.4A EP4009434B1 (en) | 2020-10-19 | 2020-10-19 | Battery and power utilization device |
JP2023504066A JP7350213B2 (ja) | 2020-10-19 | 2020-10-19 | 電池、電力消費装置、電池の製造方法及びその装置 |
HUE20827955A HUE063718T2 (hu) | 2020-10-19 | 2020-10-19 | Telep, energiafelhasználó készülék, továbbá eljárás és készülék telep gyártásához |
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