WO2016051616A1 - 電池パック - Google Patents
電池パック Download PDFInfo
- Publication number
- WO2016051616A1 WO2016051616A1 PCT/JP2015/000898 JP2015000898W WO2016051616A1 WO 2016051616 A1 WO2016051616 A1 WO 2016051616A1 JP 2015000898 W JP2015000898 W JP 2015000898W WO 2016051616 A1 WO2016051616 A1 WO 2016051616A1
- Authority
- WO
- WIPO (PCT)
- Prior art keywords
- battery pack
- circuit board
- thin
- resin mold
- battery
- Prior art date
- Legal status (The legal status 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 status listed.)
- Ceased
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Classifications
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M10/00—Secondary cells; Manufacture thereof
- H01M10/05—Accumulators with non-aqueous electrolyte
- H01M10/058—Construction or manufacture
- H01M10/0585—Construction or manufacture of accumulators having only flat construction elements, i.e. flat positive electrodes, flat negative electrodes and flat separators
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M50/00—Constructional details or processes of manufacture of the non-active parts of electrochemical cells other than fuel cells, e.g. hybrid cells
- H01M50/50—Current conducting connections for cells or batteries
- H01M50/572—Means for preventing undesired use or discharge
- H01M50/574—Devices or arrangements for the interruption of current
- H01M50/581—Devices or arrangements for the interruption of current in response to temperature
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M10/00—Secondary cells; Manufacture thereof
- H01M10/05—Accumulators with non-aqueous electrolyte
- H01M10/052—Li-accumulators
- H01M10/0525—Rocking-chair batteries, i.e. batteries with lithium insertion or intercalation in both electrodes; Lithium-ion batteries
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M10/00—Secondary cells; Manufacture thereof
- H01M10/42—Methods or arrangements for servicing or maintenance of secondary cells or secondary half-cells
- H01M10/425—Structural combination with electronic components, e.g. electronic circuits integrated to the outside of the casing
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M10/00—Secondary cells; Manufacture thereof
- H01M10/42—Methods or arrangements for servicing or maintenance of secondary cells or secondary half-cells
- H01M10/48—Accumulators combined with arrangements for measuring, testing or indicating the condition of cells, e.g. the level or density of the electrolyte
- H01M10/486—Accumulators combined with arrangements for measuring, testing or indicating the condition of cells, e.g. the level or density of the electrolyte for measuring temperature
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M50/00—Constructional details or processes of manufacture of the non-active parts of electrochemical cells other than fuel cells, e.g. hybrid cells
- H01M50/20—Mountings; Secondary casings or frames; Racks, modules or packs; Suspension devices; Shock absorbers; Transport or carrying devices; Holders
- H01M50/204—Racks, modules or packs for multiple batteries or multiple cells
- H01M50/207—Racks, modules or packs for multiple batteries or multiple cells characterised by their shape
- H01M50/209—Racks, modules or packs for multiple batteries or multiple cells characterised by their shape adapted for prismatic or rectangular cells
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M50/00—Constructional details or processes of manufacture of the non-active parts of electrochemical cells other than fuel cells, e.g. hybrid cells
- H01M50/50—Current conducting connections for cells or batteries
- H01M50/569—Constructional details of current conducting connections for detecting conditions inside cells or batteries, e.g. details of voltage sensing terminals
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M2200/00—Safety devices for primary or secondary batteries
- H01M2200/10—Temperature sensitive devices
- H01M2200/103—Fuse
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M2220/00—Batteries for particular applications
- H01M2220/20—Batteries in motive systems, e.g. vehicle, ship, plane
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M2220/00—Batteries for particular applications
- H01M2220/30—Batteries in portable systems, e.g. mobile phone, laptop
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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
- Y02P—CLIMATE CHANGE MITIGATION TECHNOLOGIES IN THE PRODUCTION OR PROCESSING OF GOODS
- Y02P70/00—Climate change mitigation technologies in the production process for final industrial or consumer products
- Y02P70/50—Manufacturing or production processes characterised by the final manufactured product
Definitions
- the present invention relates to a battery pack in which a plurality of thin batteries are arranged on the same plane and connected in an integrated structure.
- Battery packs can connect multiple batteries in series to increase output voltage, and connect them in parallel to increase output current and battery capacity.
- the battery pack has a plurality of thin batteries connected in series or in parallel in order to obtain the optimum voltage, current, and battery capacity for the electric equipment used.
- mobile devices such as smartphones and tablets, which are particularly frequently used, require thin battery packs with a large voltage, current, and battery capacity.
- a battery pack used for this type of application requires a plurality of thin batteries arranged in the same plane and connected in series or in parallel in order to make the whole thin.
- a plurality of thin batteries are housed in a frame frame and fixed with a label.
- the battery pack having this structure has a drawback that it is difficult to firmly fix a large number of thin batteries in place because the thin batteries are fixed to the frame frame with labels.
- this battery pack has a drawback that it is difficult to fix a large number of thin batteries firmly in place to the frame frame because the thin batteries are fixed to the frame frame with labels.
- the above battery pack is connected to a circuit board so that each thin battery can be placed inside the frame frame to form a battery assembly, and this battery assembly is placed inside the frame frame and fixed with a label.
- the battery pack in which a large number of thin batteries are arranged on the same plane has a drawback that it is difficult to accurately connect all the thin batteries on the same plane, and the warp tends to be warped.
- a battery pack in which a thin battery is fixed to a resin mold part in which a circuit board or the like is insert-molded has been developed (see Patent Documents 1 and 2).
- a thin battery or a circuit board is temporarily fixed in a molding chamber of a mold, a molten resin is injected into the molding chamber, and then the molten resin is cooled and cured in the molding chamber to form a resin mold portion and cured.
- the resin mold part is taken out of the mold, and a circuit board is insert-molded in the resin mold part to fix the thin battery in place.
- An important object of the present invention is to provide a battery pack in which a plurality of thin batteries can be firmly connected by a resin mold part, and all the thin batteries can be arranged and connected in the same plane without warping.
- the battery pack of the present invention includes a plurality of thin batteries 1, 21, 31 and one circuit board 3, 23, 33 electrically connected to each of the thin batteries 1, 21, 31, and circuit boards 3, 23, And resin mold parts 2, 22, and 32 formed by embedding 33. At least one of the thin batteries 1, 21, 31 is arranged at a position where the terminal surfaces 1 ⁇ / b> A, 21 ⁇ / b> A, 31 ⁇ / b> A face the circuit boards 3, 23, 33. Furthermore, the resin mold parts 2, 22, and 32 embed the terminal surfaces 1A, 21A, and 31A of the thin batteries 1, 21, and 31 and the circuit boards 3, 23, and 33, respectively.
- the circuit boards 3, 23, and 33 are connected and fixed in an integrated structure in parallel posture with both surfaces of the thin batteries 1, 21, and 31 while being arranged on the same plane.
- the circuit board is parallel to both sides of the thin battery, and the angle between the circuit board and both sides of the thin battery is not more than 30 degrees. And it uses for the meaning containing both substantially parallel attitude
- the thin batteries 1, 21, 31 can have anchor portions 4 embedded in the resin mold portions 2, 22, 32.
- the battery pack of the present invention can be a lead plate 14 in which the anchor portion 4 is fixed to the electrode terminals 13 of the thin batteries 1, 21, 31.
- a pair of wrap portions 2 a extending on both surfaces of the thin batteries 1, 21, 31 are integrally formed on the resin mold parts 2, 22, 32. Can be arranged between the pair of wrap portions 2a, and the thin batteries 1, 21, 31 can be insert-molded and fixed to the resin mold portions 2, 22, 32.
- the thickness (d) of the wrap portion 2a can be 0.1 mm or more and 0.5 mm or less, and the lateral width (w) can be 1 mm or more and 5 mm or less.
- the resin mold parts 2, 22, 32 and the thin batteries 1, 21, 31 can be arranged on the same plane.
- the thin batteries 1 and 31 are disposed on both sides of the circuit boards 3 and 33, and the circuit boards 3 and 33 disposed between the thin batteries 1 and 31 are disposed on the resin mold parts 2 and 32.
- Each of the thin batteries 1 and 31 in which the resin mold parts 2 and 32 are embedded and the circuit boards 3 and 33 are embedded in the same plane can be fixed to both sides of the circuit boards 3 and 33.
- each of the thin batteries 21 is arranged on one side of the circuit board 23 and arranged in the longitudinal direction of the circuit board 23, and the resin mold portion 22 formed by embedding the circuit board 23 is on the same plane.
- Each of the arranged thin batteries 21 can be fixed to one side of the circuit board 23.
- the battery pack according to the present invention includes a plurality of lead wires 5 each having one end connected to the circuit boards 3, 23, and 33 and the other end being drawn out from the resin mold parts 2, 22, and 32, and the lead wires 5 being in a fixed position.
- the lead wire holder 6 is inserted into the resin mold parts 2, 22, and 32 and fixed, and the lead wire holder 6 is pulled out by pulling out the lead wire 5 to the outside.
- the surface 6 ⁇ / b> A can be insert-molded and fixed to the resin mold parts 2, 22, 32 in a state where the surface 6 ⁇ / b> A is exposed on the surface of the resin mold parts 2, 22, 32.
- the battery pack of the present invention includes a plurality of lead wires 5 that are connected at one end to the circuit boards 3, 23, 33 and the other ends are drawn out from the resin mold portions 2, 22, 32. 22 and 32, the first resin mold portion 2A is formed by insert-molding the lead wire 5 and fixed at a fixed position on the circuit boards 3, 23, and 33, and the lead wire 5 is fixed by the first resin mold portion 2A.
- the circuit boards 3, 23, 33 arranged at positions are insert-molded and arranged at fixed positions, and the thin batteries 1, 21, 31 are arranged on the same plane and connected to the fixed positions. 2 resin mold portions 2B.
- the safety component 16 or the temperature sensor 17 formed between the adjacent thin batteries 1, 21, 31 is fixed to the circuit boards 3, 23, 33, and the resin mold parts 2, 22 are fixed. 32, the temperature sensor 17 is embedded, and the temperature of the plurality of thin batteries 1, 21, 31 can be detected by one safety component 16 or the temperature sensor 17.
- the safety component 16 or the temperature sensor 17 is fixed to the circuit board 3, the safety component 16 or the temperature sensor 17 is embedded in the resin mold portion 2, and the periphery of the safety component 16 or the temperature sensor 17.
- a battery pack characterized by having resin grooves 51 and 52 in the battery pack.
- the circuit board 3 has a thermal element 16a for measuring the temperature of the battery pack 500, a current fuse 16b for cutting off the current from the thin battery 1, and a current when an abnormal temperature is measured by the thermal element 16a.
- a battery pack comprising a connection point 71 at which the thermal element 16a is short-circuited to a wiring connecting the controller 16c and the thermal element 16a.
- the battery pack of the present invention is characterized in that a plurality of thin batteries can be firmly connected by a resin mold part, and all the thin batteries can be arranged and connected on the same plane without warping.
- at least one of the thin batteries has a terminal surface disposed at a position facing the circuit board, and the resin mold portion embeds the circuit board in a parallel posture in the thin battery. This is because it is buried as the center and connected so that the terminal surface of the thin battery is not firmly removed.
- the battery pack of this invention can provide an anchor part in a thin battery. In this battery pack, the anchor portion is embedded in the resin mold portion, and the thin battery can be connected to the resin mold portion so as not to be firmly removed. Furthermore, it is because the circuit board is embed
- a plurality of thin batteries are temporarily fixed at a fixed position of the mold, and each thin battery is arranged on the same plane, and in this state, molten resin is injected into the molding chamber of the mold.
- the resin mold part is molded and the circuit board and the thin battery are insert-molded and fixed to the resin mold part. Therefore, each thin battery is placed exactly on the same plane, and the thin battery is placed on the same plane. Since the resin mold part is molded while being held in a state, the thin battery is connected to a fixed position by the resin mold part that is reinforced by embedding the circuit board and not being detached from the thin battery. Realizes the feature that the whole can be manufactured without warping while connecting the batteries.
- FIG. 1 is a perspective view of a battery pack according to an embodiment of the present invention. It is a disassembled perspective view of the battery pack shown in FIG. It is a perspective view of the battery pack which concerns on the other Example of this invention.
- FIG. 4 is a cross-sectional view of the battery pack shown in FIG. 1 taken along the line IV-IV. It is a manufacturing process of the conventional battery pack, Comprising: It is a disassembled front view which shows the state which a metal mold
- FIG. 3 is an exploded front view illustrating a manufacturing process of the battery pack illustrated in FIG.
- FIG. 11 is a cross-sectional view taken along line XII-XII of the battery pack shown in FIG. It is a circuit diagram of the battery pack which concerns on the other Example of this invention.
- the battery packs 100 and 200 shown in FIGS. 1 to 3 embed a plurality of thin batteries 1 and 21, circuit boards 3 and 23 electrically connected to each of the thin batteries 1 and 21, and circuit boards 3 and 23. And resin mold parts 2 and 22 for molding the mold.
- the resin is embedded in the circuit boards 3 and 23 by arranging the terminal surfaces 1A and 21A of the plurality of thin batteries 1 at positions facing the circuit boards 3 and 23.
- a plurality of thin batteries 1 and 21 arranged in the same plane with the mold parts 2 and 22 are connected.
- the thin battery 1 is a prismatic battery in which an opening of a metal outer can 11 is hermetically closed with a sealing plate 12.
- the thin battery 1 not only a rectangular battery but also a laminated battery in which electrodes are arranged inside a plastic outer film can be used.
- the thin battery 1 is a lithium ion battery having a thickness of 3 mm to 10 mm.
- the thin battery 1 can be any other rechargeable secondary battery such as a nickel-hydrogen battery.
- the prismatic battery shown in the drawing has curved surfaces on both sides of the outer can 11.
- the battery pack 100 in which the thin battery 1 is a lithium ion battery can increase the overall battery capacity.
- the thin battery 1 is provided with a safety valve (not shown) on the sealing plate 12 of the terminal surface 1A on which the electrode terminal 13 is provided.
- the safety valve opens when the internal pressure becomes higher than the set pressure, and discharges internal gas and the like to prevent the internal pressure from rising.
- the safety valve of the thin battery 1 may be provided in the outer can 11. In that case, the battery packs 100 and 200 in which the sealing plate 12 is embedded in the resin mold parts 2 and 22 can easily discharge the internal gas from the side surface of the outer can 11.
- the thin battery 1 is provided with an anchor portion 4 on a terminal surface 1A embedded in the resin mold portion 2.
- the thin battery 1 shown in the exploded perspective view of FIG. 2 and the cross-sectional view of FIG. 4 has an opening edge of the outer can 11 projecting from the surface of the sealing plate 12, and a loop-shaped rib is provided on the outer periphery of the sealing plate 12. Part 4 is provided.
- the opening edge of the outer can 11 is embedded as an anchor part 4 in the resin mold part 2, and the thin battery 1 is firmly connected to the resin mold part 2.
- the lead plate 14 welded to the convex electrode 13 ⁇ / b> A that is the electrode terminal 13 is embedded in the resin mold portion 2 as the anchor portion 4.
- the lead plate 14 is bent in an L shape, and one end is fixed to the convex electrode 13 ⁇ / b> A of the thin battery 1 and the other end is fixed to the circuit board 3.
- the L-shaped lead plate 14 is connected so that a portion protruding from the convex electrode 13 ⁇ / b> A toward the circuit board 3 is embedded in the resin mold portion 2 and does not come out of the resin mold portion 2.
- the lead plate 14 shown in the cross-sectional view of FIG. 4 is provided with a protruding portion 14a protruding on the outer periphery of the protruding electrode 13A, and the protruding portion 14a is embedded in the resin mold portion 2 so as to be more firmly attached to the resin mold portion 2. It is connected.
- the lead plate 14 shown in FIG. 4 has a longer lead plate 14 and is provided with a protrusion 14a on the lower side of the convex electrode 13A.
- the width of the lead plate 14 is wider than that of the convex electrode 13A, Protruding portions can be provided on the lateral sides of the electrodes 13 ⁇ / b> A, and these can be embedded in the resin mold portion 2.
- the anchor portion 4 further includes an anchor plate 15 that is electrically insulated from the circuit board 3 on the terminal surface 1 ⁇ / b> A of the thin battery 1. Also good. In that case, the thin battery 1 and the resin mold part 2 can be more firmly connected in a place where the lead plate 14 is not provided.
- the anchor plate 15 is insulated by interposing the resin mold portion 2 with the circuit board 3 or by being formed of an insulating material such as a plastic plate attached to the sealing plate 12 with a double-sided tape.
- the anchor plate 15 when the anchor plate 15 is formed of an insulating material such as a plastic plate, one end of the anchor plate 15 is fixed to the sealing plate 12 and the other end is fixed to the circuit board 3 so that the thin battery 1 and the circuit are connected.
- the connection strength with the board 3 can be increased, and the thin battery 1 and the resin mold part 2 can be more firmly connected by embedding the anchor plate 15 fixed to the circuit board 3 in the resin mold part 2.
- the circuit board 3 to which the lead plate 14 is connected is mounted with an electronic component that realizes a protective circuit for the thin battery 1.
- the protection circuit detects the temperature and voltage of the thin battery 1 and controls the charge / discharge current.
- the circuit board 3 includes a voltage detection circuit (not shown) for detecting the voltage of the thin battery 1, a safety component 16 such as a breaker, a PTC element, and a fuse for protecting the thin battery 1,
- a temperature sensor 17 for detecting the temperature of the thin battery 1 and a semiconductor switching element (not shown) such as a field effect transistor (FET) that controls the current of the thin battery 1 with one of the safety components 16 are mounted. is doing.
- the safety component 16 detects the temperature of all the thin batteries 1 and cuts off the current when the temperature of any one of the thin batteries 1 becomes higher than the set temperature. Moreover, the temperature sensor 17 detects the temperature of all the thin batteries 1, and when the temperature of any of the thin batteries 1 becomes higher than the set temperature, the switching element is turned off to cut off the current.
- the safety component 16 is arranged at the end of the circuit board 3 on which the thin battery 1 is arranged on both sides, and the temperature of the thin battery 1 on both sides is detected by one safety component 16. .
- the safety component 16 is embedded in the resin mold portion 2 and disposed in a thermally coupled state to the thin batteries 1 on both sides via the resin mold portion 2.
- the temperature sensor 17 is disposed at the center of the circuit board 3 on which the thin battery 1 is disposed on both sides, and the thin battery 1 on both sides is disposed by one temperature sensor 17. Detect the temperature.
- the temperature sensor 17 is embedded in the resin mold part 2 and is disposed in a thermally coupled state to the thin batteries 1 on both sides via the resin mold part 2.
- the battery pack 100 is characterized in that the number of safety components 16 or temperature sensors 17 can be reduced because the temperature of the thin battery 1 on both sides can be detected by one safety component 16 or one temperature sensor 17. Further, since the safety component 16 or the temperature sensor 17 is mounted on the circuit board 3, it is not necessary to connect the safety component 16 or the temperature sensor 17 to the thin battery 1 with leads, and the assembly process can be simplified.
- the battery pack 100 since the battery pack 100 has the circuit board 3 embedded in the resin mold portion 2, a semiconductor switching element such as an FET is also embedded in the resin mold portion 2. With this structure, heat generated by the semiconductor switching element can be conducted to the resin mold portion 2 to be radiated. Therefore, the resin mold part 2 absorbs the heat generated by the semiconductor switching element to reduce the temperature rise, and further dissipates the absorbed thermal energy from the surface to reduce the temperature rise of the semiconductor switching element. Further, since the battery pack 100 of FIG. 4 has the circuit board 3 and the terminal surface 1A of the thin battery 1 embedded in the resin mold portion 2, the circuit board 3 and the terminal surface 1A of the thin battery 1 can be waterproofed. There are also features.
- the circuit boards 3 and 23 are epoxy resins reinforced with glass fibers and have sufficient strength as compared with the resin mold parts 2 and 22.
- the circuit boards 3 and 23 are embedded in the resin mold parts 2 and 22 to reinforce the resin mold parts 2 and 22.
- the circuit boards 3 and 23 are embedded in the resin mold parts 2 and 22 so as to extend in the arrangement direction of the thin batteries 1 and 21 to reinforce the bending strength of the resin mold parts 2 and 22.
- the circuit boards 3 and 23 embedded in the resin mold parts 2 and 22 in a posture extending in the arrangement direction of the thin batteries 1 and 21 are ideally arranged on both sides of the thin batteries 1 and 21 as shown in FIGS. And placed in a parallel posture.
- the circuit boards 3 and 23 are not necessarily in a posture parallel to both surfaces of the thin batteries 1 and 21, but are inclined with respect to both surfaces of the thin batteries 1 and 21, for example, at an angle of 30 degrees or less. It can also be buried in a posture. That is, the circuit board and both sides of the thin battery are not only in a completely parallel posture, but the inclination angle of the circuit board is 30 degrees or less with respect to both sides of the thin battery, and the both are in a substantially parallel posture. It can also be arranged.
- the resin mold parts 2 and 22 reinforced by the circuit boards 3 and 23 are Each of the thin batteries 1 and 21 is arranged on the same plane and connected to an integral structure. Since the battery packs 100 and 200 connect a plurality of thin batteries 1 and 21 to the integrated structure via the resin mold parts 2 and 22, the strength of the resin mold parts 2 and 22, particularly the bending strength, is important.
- the resin mold parts 2 and 22 are formed by temporarily fixing the circuit boards 3 and 23 and the thin batteries 1 and 21 at fixed positions of the mold and injecting molten resin into the mold forming chamber.
- the resin mold parts 2 and 22 embed the circuit boards 3 and 23, insert-mold the circuit boards 3 and 23 and the thin batteries 1 and 21 and connect and fix them in place.
- the resin mold parts 2 and 22 are molded by heating and injecting a thermoplastic resin into a molding chamber of a mold.
- a resin that can be molded by being heated to a low temperature and injected into a molding chamber at a low pressure for example, a polyamide resin, a polyolefin-based, or a urethane-based thermoplastic resin is used.
- the resin injected into the molding chamber at a low temperature and low pressure has a characteristic that it does not adversely affect the mounted parts of the thin batteries 1 and 21 and the circuit boards 3 and 23 due to heat. Since the polyolefin-based resin has a higher mechanical strength than the polyamide resin, it has a feature that the thin batteries 1 and 21 can be connected more firmly. Since the polyamide resin has a wider use temperature range of ⁇ 40 ° C. to 150 ° C. than the polyolefin-based resin, the polyamide resin has a feature that it can be firmly connected even when the thin batteries 1 and 21 become high temperature during use.
- the molten resin injected into the molding chamber of the mold embeds the circuit boards 3 and 23, embeds the terminal surfaces 1A and 21A of the thin batteries 1 and 21, inserts them, and fixes them in place.
- the wrap portion 4 is formed by integrally molding a wrap portion 2a extending on both surfaces of the thin battery 1.
- the wrap part 2 a is in close contact with both surfaces of the thin battery 1 and firmly connects the resin mold part 2 to the thin battery 1.
- the wrap portion 2 a is provided in the vicinity of the terminal surface 1 A of the thin battery 1 and is connected to the resin mold portion 2.
- the wrap portion 2a has a thickness (d) of 0.1 mm or more and 0.5 mm or less so that the amount of protrusion from the surface of the thin battery 1 can be reduced and the thin battery 1 can be firmly connected.
- the width (w) is 1 mm or more and 5 mm or less.
- the thin battery 1 is disposed between a pair of wrap portions 2a, the wrap portion 2a is in close contact with the thin battery 1, and the thin battery 1 is insert-molded and fixed to the resin mold portion 2. That is, the pair of wrap portions 2a that are in close contact with both surfaces of the thin battery 1 are connected to the resin mold portion 2 in a state that holds the thin battery 1 from both surfaces.
- both surfaces of the resin mold portion 2 and the thin battery 1 are arranged on the same plane.
- the width (w) of the wrap part 2a is set to 5 mm or less as described above, and the wrap part 2a is arranged in an area where the thin battery 1 does not swell. If so.
- the battery pack 100 does not substantially increase in thickness while being firmly connected to the resin mold portion 2 at the wrap portion 2a.
- the thin battery 1 is disposed on both sides of the circuit board 3, and the circuit board 3 between the thin batteries 1 is embedded in the resin mold portion 2.
- Each of the thin batteries 1 arranged on the same plane is connected by the mold part 2. Since the battery pack 100 connects the thin battery 1 to both sides of the circuit board 3, the total length is twice that of one thin battery 1, but the resin mold part 2 that connects the thin batteries 1 on both sides is sufficiently bent. It has excellent strength because it has strength.
- the battery pack 200 of FIG. 3 is a resin in which the circuit board 23 is formed into an elongated rectangle, and a plurality of thin batteries 21 are arranged along one side of the circuit board 23 in the longitudinal direction to embed the circuit board 23.
- positioned on the same plane is connected.
- a plurality of thin batteries 21 are arranged in the longitudinal direction of the circuit board 23, and the battery pack 200 becomes longer in this direction.
- the embedded circuit board 23 improves the bending strength of the resin mold part 22, the resin mold part 22.
- the entire battery pack can be made tough structure.
- the battery packs 100 and 200 cover the thin batteries 1 and 21 with an exterior film.
- the periphery of each thin battery 1 is covered with an exterior film.
- a plurality of thin batteries 21 arranged in the horizontal direction are integrally covered with an exterior film and connected.
- the circuit boards 3 and 23 connect a plurality of lead wires 5 and draw them out to the outside.
- the lead wire 5 includes a positive and negative power line 5A and a signal line 5B, and is directly connected to a connector of a device in which the battery packs 100 and 200 are set.
- a battery pack having a lead wire it is not necessary to provide a connector on the battery pack and connect a lead wire to this connector. Therefore, it is not necessary to connect the battery pack and the lead wire with a connector, and adverse effects such as poor connector contact can be prevented.
- a battery pack in which a plurality of lead wires are connected to the circuit board and pulled out from the resin mold part is difficult to mold the resin mold part for insert-molding the circuit board, and defective products are generated in this process. Probability increases. This is because when the circuit board is temporarily fixed and the mold is closed, the lead wire is pinched by the mold and is damaged.
- FIG. 5 is a front view showing a conventional battery pack manufacturing process, in which the mold 40 is clamped with the lead wire 5 interposed therebetween.
- the mold 40 needs to be sealed in the molding chamber with the upper and lower molds 40 sandwiching the lead wire 5 so that the molten resin to be injected does not leak.
- the lead wire 5 connected to the circuit board is pulled out to the outside of the molding chamber in a state where it is temporarily fixed to the die 40, so that there is no gap between the die 40 and the lead wire 5. It is necessary to tighten.
- the mold 40 of FIG. 5 is provided with a plurality of rows of guide grooves 41 for guiding the lead wire 5 in the lower mold 40A.
- the guide groove 41 has a semicircular shape along the lead-out line 5 at the groove bottom.
- the upper mold 40 ⁇ / b> B is provided with a plurality of rows of protruding ridges 42 to be inserted into the guide grooves 41, and the tip surface of the protruding ridges 42 is formed in a semicircular shape.
- the lead wire 5 is placed in a fixed position by inserting it into the guide groove 41, and the protrusion 42 is inserted into the guide groove 41 so that the upper and lower sides of the lead wire 5 are sandwiched between the upper die 40B and the lower die 40A.
- the mold 40 is in close contact with the surface of the lead wire 5.
- the metal mold 40 shown in FIG. 5 guides the lead wire 5 to the guide groove 41 of the lower die 40A whose upper surface is comb-shaped, seals the upper die 40B in the lower die 40A, and allows the lead wire 5 to be formed without a gap.
- the lead wire 5 may be damaged by being pinched between the upper die 40B and the lower die 40A when the die is clamped.
- the resin mold part is formed with the die 40 sandwiching the lead wire 5
- the molten resin leaks from between the lead wire 5 and the die 40, or the lead wire 5 sandwiched between the die 40 is damaged.
- the battery pack becomes a defective product. If a defective product is generated in this process, all parts including the thin battery become unusable, resulting in an extremely large economic loss.
- the battery pack 100 of FIGS. 1 and 2 includes a lead wire holder 6 in which the lead wire 5 is arranged at a fixed position in order to prevent the above-described adverse effects.
- the lead wire holder 6 is connected and fixed to a fixed position of the circuit board 3 with a fitting structure, for example.
- the lead wire holder 6 is provided with an insertion hole 7 in which each lead wire 5 is inserted separately and placed at a fixed position.
- the insertion hole 7 is provided with a core wire hole 7A for inserting the core wire 5a of the lead wire 5 and a guide hole 7B for inserting the outer skin 5b of the lead wire 5 without a gap.
- the core wire hole 7A has an inner diameter smaller than that of the guide hole 7B so that the core wire 5a can be inserted but the outer skin 5b cannot be inserted.
- the guide hole 7B has an inner diameter substantially equal to the outer diameter of the lead wire 5 so that the outer skin 5b of the lead wire 5 can be inserted and brought into close contact therewith.
- the guide hole 7B in FIG. 6 has a shape in which the opening is expanded in a tapered shape so that the lead wire 5 can be inserted smoothly.
- the lead wire holder 6 in FIG. 2 is composed of a first holder 6a and a second holder 6b which are divided into two vertically.
- the lead wire holder 6 is divided into two so as to cut a plurality of adjacent insertion holes 7 in the axial direction.
- the first holder 6a and the second holder 6b are provided with a groove portion for forming the core wire hole 7A and a groove portion for forming the guide hole 7B on each opposing surface.
- the core hole 7A and the guide hole 7B are formed in a state where the first holder 6a and the second holder 6b are connected to each other.
- the lead wire holder 6 allows the first holder 6a and the second holder 6b to be connected while being positioned by a fitting structure.
- the first holder 6a and the second holder 6b are provided with a fitting convex portion 18 on one facing surface, and a fitting concave portion 19 into which the fitting convex portion 18 is fitted on the other facing surface.
- the fitting convex part 18 By fitting the fitting convex part 18 into the fitting concave part 19, it can be connected at an accurate position.
- the lead wire holder 6 guides the core wire 5a of the lead wire 5 to the groove portion forming the core wire hole 7A of the first holder 6a and guides the outer skin 5b of the lead wire 5 to the groove portion forming the guide hole 7B.
- the core wire 5a and the outer skin 5b of the plurality of lead wires 5 can be arranged in the insertion hole 7 easily and accurately.
- the first holder 6a and the second holder 6b can be connected so as not to be detached by a structure in which the fitting convex portion 18 is press-fitted into the fitting concave portion 19 by being adhered and fixed.
- the battery pack in which the lead wire holder 6 is connected to the circuit board 3 is assembled in the following steps. 1.
- the first holder 6a of the lead wire holder 6 is connected to the circuit board 3, and the lead wire 5 is guided to the insertion hole 7 of the first holder 6a.
- the second holder 6 b is connected to the first holder 6 a and the plurality of lead wires 5 are arranged at fixed positions on the circuit board 3.
- the lead wire holder 6 guides the lead wire 5 to each insertion hole 7 of the first holder 6a, connects the second holder 6b, and arranges the lead wires 5 at fixed positions, and then the circuit board 3 It can also be connected to a fixed position.
- the core wire 5a of the lead wire 5 is connected to the circuit board 3 by soldering. Further, the circuit board 3 is connected to the thin battery 1 via the lead plate 14. 2.
- the thin battery 1, the circuit board 3, and the lead wire holder 6 are temporarily fixed at fixed positions of the mold 30, and the molding chamber is clamped. In this state, the lead wire holder 6 does not sandwich the lead wire 5 and pulls the lead wire 5 to the outside by sandwiching the lead wire holder 6 between the upper die 30B and the lower die 30A as shown in FIG.
- the opening of the molding chamber is hermetically sealed.
- the mold 30 Since the mold 30 is clamped with the lead wire holder 6 sandwiched without the lead wire 5 being sandwiched, the mold 30 is not damaged with the lead wire 5 sandwiched, and the lead wire holder 6 is used to form a molding chamber.
- the mold can be securely clamped in a sealed state. Since the mold 30 hermetically seals the molding chamber with the lead wire holder 6 interposed therebetween without hermetically sealing the molding chamber with the lead wire 5 interposed therebetween, the lead wire holder 6 pulls out the lead wire 5 to the outside. 6A is exposed to the outside. Therefore, the lead wire holder 6 exposes the lead surface 6A to the outside in the process of molding the resin mold portion 2. 3.
- the upper and lower molds 30 are opened to remove the battery pack.
- the thin battery 1 is connected to a fixed position via the resin mold part 2, the circuit board 3 is insert-molded in the resin mold part 2, and the lead wire 5 is drawn out from the lead wire holder 6 to the outside. It becomes a state.
- the circuit boards 3 and 23 and the thin batteries 1 and 21 are arranged at fixed positions.
- the plurality of thin batteries 1 and 21 are arranged so as to be located on the same plane.
- the resin mold parts 2 and 22 are insert-molded with the circuit boards 3 and 23 and the thin batteries 1 and 21 temporarily fixed to the mold and fixed in place.
- the plurality of thin batteries 1 and 21 are temporarily fixed to the same plane with a mold to form the resin mold parts 2 and 22, and the resin mold parts 2 and 22 are thin. Since the batteries 1 and 21 are firmly connected, the plurality of thin batteries 1 and 21 are arranged and fixed on the same plane without warping.
- FIGS. 1, 2, and 4 there is also a battery pack 100 in which the resin mold part 2 is molded in two steps of a first resin mold part 2A and a second resin mold part 2B. Therefore, it is possible to reduce the adverse effects caused by the defective lead wires 5.
- the resin mold portion 2 is inserted into the first resin mold portion 2A in which the lead wire 5 is insert-molded and fixed at a fixed position on the circuit board 3, and the lead wire is formed by the first resin mold portion 2A.
- a second resin mold portion 2B that insert-molds the circuit board 3 in which 5 is placed in a fixed position and inserts the circuit board 3 in the fixed position, and places each of the thin batteries 1 in the same plane and connects them to the fixed position; Consists of.
- the battery pack 100 has the first resin mold portion 2A to connect the lead wire 5 to a fixed position of the circuit board 3, and the second resin mold portion 2B to connect the lead wire 5 to a fixed position.
- the circuit board 3 is insert-molded and placed at a fixed position.
- the first resin mold portion 2A has the lead surface 6A of the lead wire 5 placed on the second resin mold portion 2B so that the mold does not sandwich the lead wire 5. It is exposed on the surface.
- This battery pack 100 is a mold for molding the second resin mold part 2B, and the first resin mold part 2A is sandwiched between the molds, and the molding chamber for molding the second resin mold part 2B is hermetically sealed. .
- the upper and lower molds hermetically seal the molding chamber for molding the first resin mold portion 2A with the lead wire 5 interposed therebetween. Therefore, a defective product may be generated with the die sandwiching the lead wire 5 in this process.
- the thin battery 1 is not connected in the molding process of the first resin mold portion 2A. Therefore, the defective product generated in this process does not include the thin battery 1, and the loss due to the generation of the defective product is extremely small.
- the mold for molding the second resin mold portion 2B does not sandwich the lead wire 5, and hermetically seals the molding chamber with the first resin mold portion 2A interposed therebetween. Therefore, in the molding process of the second resin mold portion 2B, the mold does not become a defective product with the lead wire 5 interposed therebetween.
- the thin battery 1 is temporarily fixed at a fixed position of a mold for forming the second resin mold portion 2B, and the second resin mold portion 2B is formed. Therefore, the second resin mold part 2B is molded, and the circuit board 3 in which the lead wires 5 are arranged at fixed positions is embedded in the first resin mold part 2A, and each thin battery 1 is connected to the fixed position. it can.
- the first resin mold portion 2A embeds an electronic component fixed to the circuit board 3 and insert-molds it at a fixed position to fix it.
- the resin mold part 2 is formed by temporarily fixing the circuit board 3 and the thin battery 1 at a fixed position of the mold and injecting molten resin into the mold forming chamber.
- a resin that can be molded by being heated to a low temperature and injected into a molding chamber at a low pressure for example, a polyamide resin, a polyolefin-based, or a urethane-based thermoplastic resin is used.
- the resin injected into the molding chamber at a low temperature and low pressure has a feature that does not adversely affect the mounted components of the thin battery 1 and the circuit board 3 due to heat. Since the polyolefin-based resin has higher mechanical strength than the polyamide resin, there is a feature that the thin battery 1 can be connected more firmly.
- the molten resin injected into the molding chamber of the mold embeds the circuit board 3, embeds the terminal surface 1A of the thin battery 1, inserts them, and fixes them in place.
- the battery pack includes a battery pack 100 in which two thin batteries 1 are arranged on both sides of the circuit board 3 as shown in FIG. 1 and a plurality of thin batteries 21 as shown in FIG.
- the battery pack 200 was arranged along one side of the substrate 23 in the longitudinal direction.
- the thin battery 31 may be a battery pack 300 arranged on both sides of the circuit board 33 and along the both sides of the circuit board 33 in the longitudinal direction. In that case, the circuit board and the battery pack can be shortened in the arrangement direction of the thin batteries 31 rather than arranging the plurality of thin batteries 21 on one side of the circuit board 23 as shown in FIG.
- the battery pack is configured such that all of the thin batteries 21 are arranged at positions where the terminal surface 21A faces the circuit board 23 as shown in FIG. 3, but as shown in FIG. At least one of the batteries 31 (four on the right side in FIG. 8) is arranged at a position where the terminal surface 31A faces the circuit board 33, and the other thin batteries 31 (two on the left side in FIG. 8) are terminals.
- the surface 31 ⁇ / b> A may be opposed to the anchor portion 4 that is the lead plate 14 connected to the circuit board 33 without facing the circuit board 33.
- the resin mold part 32 embeds the extended lead plate 14 as the center of the skeleton, and connects the terminal surface 31A of the thin battery 31 so as not to come off firmly.
- the lead plate 14 connected to the positive and negative electrode terminals 13 of the thin battery 31 whose terminal surface 31A does not face the circuit board 33 is arranged and connected along both surfaces of the circuit board 33 as shown in FIG. By doing so, it can arrange
- the battery pack has the resin mold portion 2 formed in two steps: a step of forming the first resin mold portion 2A and a step of forming the second resin mold portion 2B as shown in FIG.
- the resin mold part 2 may be formed in one step.
- the rated temperature (about 140 ° C.) of the thermal fuse which is one of the safety components 16 is lower than the temperature of the molten resin (about 240 ° C.), so the distance that the molten resin flows from the molten resin inlet to the thermal fuse The molten resin reaching the temperature fuse is made 140 ° C. or less.
- the temperature fuse and FET as the safety component 16 are surrounded by a U-shaped mold 61 excluding the surface facing the molten resin injection port (white arrow). After the molten resin injected from the inlet is pushed back on the surface facing the injection port as indicated by the dotted arrow, it flows into the inside of the U-shaped mold 61, and the molten resin cools to 140 ° C. or less and then the safety part 16 is in contact with a thermal fuse or FET. Therefore, as shown in FIG. 10, in the battery pack 400, a U-shaped resin groove 51 surrounding the thermal fuse and the FET is formed in the resin mold portion 2. In the battery pack 400, the temperature sensor 17 is disposed on the circuit board 3 in the vicinity of the thin battery 1, and molten resin is injected around the temperature sensor 17 while being surrounded by the U-shaped mold 62.
- FIG. 12A is a cross-sectional view taken along the line XIIa-XIIa of the battery pack 400 of FIG. 10, and FIG. 12B is a cross-sectional view taken along the line XIIb-XIIb.
- the temperature sensor 17 is formed with the resin mold portion 2 between the thin battery 1 and the other periphery is formed with a U-shaped resin groove 52. Therefore, the temperature sensor 17 can detect the heat generation of the thin battery 1 via the resin mold portion 2 and can prevent the heat dissipation by the resin groove 52.
- the resin fuse 51 is formed between the temperature sensor 17 and the thin battery 1 in the temperature fuse and FET that are the safety components 16.
- the temperature sensor 17 can measure the temperature of the thin battery 1 with higher accuracy by the U-shaped resin grooves 51 and 52.
- the resin grooves 51 and 52 surround the three directions of the safety component 16 and the temperature sensor 17, and may have a shape in which a part of the periphery is opened, such as a U shape, a U shape, and a C shape.
- the battery pack has the resin mold portion 2 formed in two steps: a step of forming the first resin mold portion 2A and a step of forming the second resin mold portion 2B as shown in FIG.
- the resin mold part 2 may be formed in one step.
- the safety component 16 on the circuit board 3 includes a temperature sensitive element 16a for measuring the temperature of the battery pack 500, a current fuse 16b for cutting off the current from the thin battery 1, and the thermal sensitive element 16a.
- a control unit 16c that cuts off the current fuse 16b when an abnormal temperature is measured is provided, and a connection point 71 at which the thermal element 16a is short-circuited to a wiring that connects the control unit 16c and the thermal element 16a.
- the control part 16c has short-circuited the thermal element 16a. Therefore, it is determined that the temperature is normal, and the current fuse 16b is not cut off. Then, after the molten resin is cooled to a temperature lower than the abnormal temperature, the mold 81 is removed from the battery pack 500. After the mold 81 is removed, it is covered with a tape or label, or an adhesive or resin is injected so that the connection point 71 is not exposed. Thereby, it becomes possible to shape
- abnormal temperature for example, 130 degreeC or more
- the battery pack of the present invention can be connected to a plurality of thin batteries on the same plane and firmly connected without warping, so it is suitable for portable devices such as smartphones and tablets that are thin and require a high voltage or high battery capacity battery pack. Used for.
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Abstract
Description
制御部16cと感熱素子16aを接続する配線に感熱素子16aが短絡する接続点71を有することを特徴とする電池パック。
薄型電池1、21の各々を同一平面に配置して一体構造に連結する。この電池パック100、200は、複数の薄型電池1、21を樹脂モールド部2、22を介して一体構造に連結するので、樹脂モールド部2、22の強度、とくに曲げ強度が大切である。
1.リード線ホルダー6の第1ホルダー6aを回路基板3に連結し、第1ホルダー6aの挿入孔7に引き出し線5を案内する。その後、第2ホルダー6bを第1ホルダー6aに連結して複数の引き出し線5を回路基板3の定位置に配置する。ただ、リード線ホルダー6は、第1ホルダー6aの各々の挿入孔7に引き出し線5を案内し、第2ホルダー6bを連結して複数の引き出し線5を定位置に配置した後、回路基板3の定位置に連結することもできる。以上の状態で、引き出し線5の芯線5aは回路基板3にハンダ付けして連結される。さらに、回路基板3は、リード板14を介して薄型電池1に連結される。
2.薄型電池1と、回路基板3と、リード線ホルダー6とを金型30の定位置に仮止めして、成形室を型締めする。この状態で、リード線ホルダー6は、引き出し線5を挟むことなく、図7に示すように、上型30Bと下型30Aとでリード線ホルダー6を挟んで、引き出し線5を外部に引き出している成形室の開口部を気密に密閉する。金型30が引き出し線5を挟むことなく、リード線ホルダー6を挟んで型締めするので、金型30が引き出し線5を挟んで損傷することがなく、また、リード線ホルダー6で成形室を確実に密閉状態で型締めできる。金型30が引き出し線5を挟んで成形室を気密に密閉することなく、リード線ホルダー6を挟んで成形室を密閉するので、リード線ホルダー6は引き出し線5を外部に引き出している引き出し面6Aを外部に露出させている。したがって、樹脂モールド部2が成形される工程で、リード線ホルダー6は引き出し面6Aを外部に露出させる。
3.溶融樹脂が硬化した後、上下の金型30を開いて電池パックを脱型する。この状態で、薄型電池1は樹脂モールド部2を介して定位置に連結され、樹脂モールド部2には回路基板3がインサート成形され、さらに引き出し線5はリード線ホルダー6から外部に引き出された状態となる。
1、21、31…………………………………薄型電池
1A、21A、31A…………………………端子面
2、22、32…………………………………樹脂モールド部
2A………………………………………………第1の樹脂モールド部
2B………………………………………………第2の樹脂モールド部
2a………………………………………………ラップ部
3、23、33…………………………………回路基板
4…………………………………………………アンカー部
5…………………………………………………引き出し線
5A………………………………………………電力ライン
5B………………………………………………信号ライン
5a………………………………………………芯線
5b………………………………………………外皮
6…………………………………………………リード線ホルダー
6a………………………………………………第1ホルダー
6b………………………………………………第2ホルダー
6A………………………………………………引き出し面
7…………………………………………………挿入孔
7A………………………………………………芯線孔
7B………………………………………………ガイド孔
11………………………………………………外装缶
12………………………………………………封口板
13………………………………………………電極端子
13A……………………………………………凸部電極
14………………………………………………リード板
14a……………………………………………突出部
15………………………………………………アンカー板
16………………………………………………安全部品
17………………………………………………温度センサ
18………………………………………………嵌合凸部
19………………………………………………嵌合凹部
30、40………………………………………金型
30A、40A…………………………………下型
30B、40B…………………………………上型
41………………………………………………案内溝
42………………………………………………凸条
51、52………………………………………樹脂溝
61、62、81………………………………金型
71………………………………………………接続点
Claims (14)
- 複数の薄型電池と、前記薄型電池の各々に電気接続してなるひとつの回路基板と、前記回路基板を埋設してなる樹脂モールド部とを有する電池パックであって、
前記薄型電池の少なくとも1つ以上は、端子面が前記回路基板と対向する位置に配置され、
前記樹脂モールド部が、前記薄型電池の端子面と前記回路基板を埋設して、前記薄型電池の各々を同一平面に配置すると共に、前記回路基板を前記薄型電池の両面と平行姿勢で一体構造に連結固定してなることを特徴とする電池パック。 - 請求項1に記載される電池パックであって、
前記薄型電池は、前記端子面に前記樹脂モールド部に埋設されるアンカー部を有することを特徴とする電池パック。 - 請求項2に記載される電池パックであって、
前記アンカー部が前記薄型電池の電極端子に固定してなるリード板であることを特徴とする電池パック。 - 請求項1ないし3のいずれかに記載される電池パックであって、
前記樹脂モールド部が前記薄型電池の両面に延びる一対のラップ部を一体的に成形して設けており、前記薄型電池が前記一対のラップ部の間に配置されて、前記薄型電池が前記樹脂モールド部にインサート成形して固定されてなることを特徴とする電池パック。 - 請求項4に記載される電池パックであって、
前記ラップ部が、厚さを0.1mm以上であって0.5mm以下とし、
横幅を1mm以上であって5mm以下としてなることを特徴とする電池パック。 - 請求項1ないし5のいずれかに記載される電池パックであって、
前記樹脂モールド部と前記薄型電池の両面を同一平面に配置してなることを特徴とする電池パック。 - 請求項1ないし6のいずれかに記載される電池パックであって、
前記薄型電池が前記回路基板の両側に配設され、前記薄型電池の間に配設される前記回路基板が前記樹脂モールド部に埋設され、前記回路基板を埋設してなる前記樹脂モールド部が、同一平面に配置してなる前記薄型電池の各々を前記回路基板の両側に固定してなることを特徴とする電池パック。 - 請求項1ないし6のいずれかに記載される電池パックであって、
前記薄型電池の各々が前記回路基板の片側に、かつ前記回路基板の長手方向に並べて配設され、前記回路基板を埋設してなる前記樹脂モールド部が、同一平面に配置してなる前記薄型電池の各々を前記回路基板の片側に固定してなることを特徴とする電池パック。 - 請求項1ないし8のいずれかに記載される電池パックであって、
前記回路基板に一端を連結して他端を前記樹脂モールド部から外部に引き出してなる複数の引き出し線と、
前記引き出し線を定位置に配置してなるリード線ホルダーとを備え、
前記リード線ホルダーが前記樹脂モールド部にインサート成形して固定され、
さらに、前記リード線ホルダーが、前記引き出し線を外部に引き出してなる引き出し面を前記樹脂モールド部の表面に露出する状態で前記樹脂モールド部にインサート成形して固定されてなることを特徴とする電池パック。 - 請求項1ないし9のいずれかに記載される電池パックであって、
前記回路基板に一端を連結して他端を前記樹脂モールド部から外部に引き出してなる複数の引き出し線を備え、
前記樹脂モールド部が、前記引き出し線をインサート成形して前記回路基板の定位置に固定してなる第1の樹脂モールド部と、
前記第1の樹脂モールド部で前記引き出し線を定位置に配置してなる回路基板をインサート成形して定位置に配置し、かつ、前記薄型電池の各々を同一平面に配置して定位置に連結してなる第2の樹脂モールド部とを有することを特徴とする電池パック。 - 請求項10に記載される電池パックであって、
前記回路基板に電子部品を固定しており、この電子部品を固定してなる前記回路基板を前記第1の樹脂モールド部にインサート成形して定位置に配置してなることを特徴とする電池パック。 - 請求項1ないし11のいずれかに記載される電池パックであって、
前記回路基板に、隣接する薄型電池の間に配置してなる安全部品又は温度センサを固定しており、
前記樹脂モールド部に前記安全部品又は前記温度センサを埋設して、ひとつの前記安全部品又は前記温度センサで複数の薄型電池の温度を検出するようにしてなることを特徴とする電池パック。 - 請求項1ないし11のいずれかに記載される電池パックであって、
前記回路基板に、安全部品又は温度センサを固定しており、
前記樹脂モールド部に前記安全部品又は前記温度センサを埋設して、前記安全部品又は前記温度センサの周囲に樹脂溝を有することを特徴とする電池パック。 - 請求項1ないし11のいずれかに記載される電池パックであって、
前記回路基板に、当該電池パックの温度を測定する感熱素子と、前記薄型電池からの電流を遮断する電流ヒューズと、前記感熱素子で異常温度を測定した時に前記電流ヒューズを遮断させる制御部とを備え、
前記制御部と前記感熱素子を接続する配線に前記感熱素子が短絡する接続点を有することを特徴とする電池パック。
Priority Applications (3)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CN201580050583.1A CN107078244B (zh) | 2014-09-30 | 2015-02-24 | 电池组 |
| JP2016551470A JP6449315B2 (ja) | 2014-09-30 | 2015-02-24 | 電池パック |
| US15/506,775 US11158915B2 (en) | 2014-09-30 | 2015-02-24 | Battery pack |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| JP2014201583 | 2014-09-30 | ||
| JP2014-201583 | 2014-09-30 |
Publications (1)
| Publication Number | Publication Date |
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| WO2016051616A1 true WO2016051616A1 (ja) | 2016-04-07 |
Family
ID=55629698
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/JP2015/000898 Ceased WO2016051616A1 (ja) | 2014-09-30 | 2015-02-24 | 電池パック |
Country Status (4)
| Country | Link |
|---|---|
| US (1) | US11158915B2 (ja) |
| JP (1) | JP6449315B2 (ja) |
| CN (1) | CN107078244B (ja) |
| WO (1) | WO2016051616A1 (ja) |
Cited By (5)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JP6056957B2 (ja) * | 2013-03-29 | 2017-01-11 | 富士通株式会社 | バッテリパック及び電子機器 |
| CN110521017A (zh) * | 2017-04-06 | 2019-11-29 | 三星Sdi株式会社 | 电池包 |
| US11552343B2 (en) * | 2017-11-07 | 2023-01-10 | Lg Energy Solution, Ltd. | Apparatus and method for estimating temperature of battery |
| JP2025507872A (ja) * | 2022-03-11 | 2025-03-21 | エルジー エナジー ソリューション リミテッド | バッテリーモジュール、バッテリーパック及び電力貯蔵装置 |
| JP2025521039A (ja) * | 2022-11-25 | 2025-07-04 | 珠海冠宇電源有限公司 | 電池および電子機器 |
Families Citing this family (6)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| KR102092071B1 (ko) * | 2016-02-03 | 2020-04-14 | 주식회사 엘지화학 | 열가소성 수지에 의한 고정 구조를 포함하는 전지팩의 제조방법 및 제조장치 |
| DE102018207536A1 (de) * | 2018-05-15 | 2019-11-21 | Audi Ag | Hochvoltbatterie für ein Kraftfahrzeug und Kraftfahrzeug |
| CN114930669A (zh) * | 2020-03-30 | 2022-08-19 | 三洋电机株式会社 | 电动自行车用的电池组和具备该电池组的电动自行车 |
| CN113764795B (zh) * | 2021-08-11 | 2025-04-04 | 湖北亿纬动力有限公司 | 电池模组 |
| CN115149222A (zh) * | 2022-07-15 | 2022-10-04 | 珠海市嘉德电能科技有限公司 | 一种新型电池、制作该新型电池的治具及利用该治具制作新型电池的方法 |
| DE102022209760A1 (de) * | 2022-09-16 | 2024-03-21 | Robert Bosch Gesellschaft mit beschränkter Haftung | Energiespeichereinheit für einen elektrischen Verbraucher |
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- 2015-02-24 WO PCT/JP2015/000898 patent/WO2016051616A1/ja not_active Ceased
- 2015-02-24 JP JP2016551470A patent/JP6449315B2/ja active Active
- 2015-02-24 CN CN201580050583.1A patent/CN107078244B/zh active Active
- 2015-02-24 US US15/506,775 patent/US11158915B2/en active Active
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| JP2001256937A (ja) * | 2000-03-14 | 2001-09-21 | Matsushita Electric Ind Co Ltd | 組電池及び電池パック |
| JP2003077436A (ja) * | 2001-08-31 | 2003-03-14 | Sanyo Electric Co Ltd | パック電池とその製造方法 |
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| Publication number | Priority date | Publication date | Assignee | Title |
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| JP6056957B2 (ja) * | 2013-03-29 | 2017-01-11 | 富士通株式会社 | バッテリパック及び電子機器 |
| CN110521017A (zh) * | 2017-04-06 | 2019-11-29 | 三星Sdi株式会社 | 电池包 |
| CN110521017B (zh) * | 2017-04-06 | 2022-08-09 | 三星Sdi株式会社 | 电池包 |
| US11552343B2 (en) * | 2017-11-07 | 2023-01-10 | Lg Energy Solution, Ltd. | Apparatus and method for estimating temperature of battery |
| JP2025507872A (ja) * | 2022-03-11 | 2025-03-21 | エルジー エナジー ソリューション リミテッド | バッテリーモジュール、バッテリーパック及び電力貯蔵装置 |
| JP2025521039A (ja) * | 2022-11-25 | 2025-07-04 | 珠海冠宇電源有限公司 | 電池および電子機器 |
Also Published As
| Publication number | Publication date |
|---|---|
| US11158915B2 (en) | 2021-10-26 |
| CN107078244B (zh) | 2020-03-24 |
| JPWO2016051616A1 (ja) | 2017-07-13 |
| JP6449315B2 (ja) | 2019-01-09 |
| CN107078244A (zh) | 2017-08-18 |
| US20170279106A1 (en) | 2017-09-28 |
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