JP2018010832A - Power storage device - Google Patents

Power storage device Download PDF

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JP2018010832A
JP2018010832A JP2016140415A JP2016140415A JP2018010832A JP 2018010832 A JP2018010832 A JP 2018010832A JP 2016140415 A JP2016140415 A JP 2016140415A JP 2016140415 A JP2016140415 A JP 2016140415A JP 2018010832 A JP2018010832 A JP 2018010832A
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holding
case
terminal
power storage
electrode
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JP2018010832A5 (en
Inventor
賢志 濱岡
Kenji Hamaoka
賢志 濱岡
加藤 崇行
Takayuki Kato
崇行 加藤
浩生 植田
Hiromi Ueda
浩生 植田
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Toyota Industries Corp
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Toyota Industries Corp
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Priority to PCT/JP2017/014224 priority patent/WO2018012061A1/en
Publication of JP2018010832A publication Critical patent/JP2018010832A/en
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    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01MPROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
    • H01M50/00Constructional details or processes of manufacture of the non-active parts of electrochemical cells other than fuel cells, e.g. hybrid cells
    • H01M50/50Current conducting connections for cells or batteries
    • H01M50/531Electrode connections inside a battery casing
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01MPROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
    • H01M10/00Secondary cells; Manufacture thereof
    • H01M10/42Methods or arrangements for servicing or maintenance of secondary cells or secondary half-cells
    • H01M10/48Accumulators combined with arrangements for measuring, testing or indicating the condition of cells, e.g. the level or density of the electrolyte
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01MPROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
    • H01M50/00Constructional details or processes of manufacture of the non-active parts of electrochemical cells other than fuel cells, e.g. hybrid cells
    • H01M50/20Mountings; Secondary casings or frames; Racks, modules or packs; Suspension devices; Shock absorbers; Transport or carrying devices; Holders
    • H01M50/244Secondary casings; Racks; Suspension devices; Carrying devices; Holders characterised by their mounting method
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01MPROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
    • H01M50/00Constructional details or processes of manufacture of the non-active parts of electrochemical cells other than fuel cells, e.g. hybrid cells
    • H01M50/50Current conducting connections for cells or batteries
    • H01M50/572Means for preventing undesired use or discharge
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02HEMERGENCY PROTECTIVE CIRCUIT ARRANGEMENTS
    • H02H7/00Emergency protective circuit arrangements specially adapted for specific types of electric machines or apparatus or for sectionalised protection of cable or line systems, and effecting automatic switching in the event of an undesired change from normal working conditions
    • H02H7/18Emergency protective circuit arrangements specially adapted for specific types of electric machines or apparatus or for sectionalised protection of cable or line systems, and effecting automatic switching in the event of an undesired change from normal working conditions for batteries; for accumulators
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01MPROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
    • H01M50/00Constructional details or processes of manufacture of the non-active parts of electrochemical cells other than fuel cells, e.g. hybrid cells
    • H01M50/10Primary casings, jackets or wrappings of a single cell or a single battery
    • H01M50/172Arrangements of electric connectors penetrating the casing
    • H01M50/174Arrangements of electric connectors penetrating the casing adapted for the shape of the cells
    • H01M50/176Arrangements of electric connectors penetrating the casing adapted for the shape of the cells for prismatic or rectangular cells
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01MPROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
    • H01M50/00Constructional details or processes of manufacture of the non-active parts of electrochemical cells other than fuel cells, e.g. hybrid cells
    • H01M50/20Mountings; Secondary casings or frames; Racks, modules or packs; Suspension devices; Shock absorbers; Transport or carrying devices; Holders
    • H01M50/204Racks, modules or packs for multiple batteries or multiple cells
    • H01M50/207Racks, modules or packs for multiple batteries or multiple cells characterised by their shape
    • H01M50/209Racks, modules or packs for multiple batteries or multiple cells characterised by their shape adapted for prismatic or rectangular cells
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01MPROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
    • H01M50/00Constructional details or processes of manufacture of the non-active parts of electrochemical cells other than fuel cells, e.g. hybrid cells
    • H01M50/20Mountings; Secondary casings or frames; Racks, modules or packs; Suspension devices; Shock absorbers; Transport or carrying devices; Holders
    • H01M50/218Mountings; Secondary casings or frames; Racks, modules or packs; Suspension devices; Shock absorbers; Transport or carrying devices; Holders characterised by the material
    • H01M50/22Mountings; Secondary casings or frames; Racks, modules or packs; Suspension devices; Shock absorbers; Transport or carrying devices; Holders characterised by the material of the casings or racks
    • H01M50/222Inorganic material
    • H01M50/224Metals
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01MPROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
    • H01M50/00Constructional details or processes of manufacture of the non-active parts of electrochemical cells other than fuel cells, e.g. hybrid cells
    • H01M50/20Mountings; Secondary casings or frames; Racks, modules or packs; Suspension devices; Shock absorbers; Transport or carrying devices; Holders
    • H01M50/271Lids or covers for the racks or secondary casings
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E60/00Enabling technologies; Technologies with a potential or indirect contribution to GHG emissions mitigation
    • Y02E60/10Energy storage using batteries

Abstract

PROBLEM TO BE SOLVED: To provide a power storage device that is able to detect a temperature rise appropriately.SOLUTION: A power storage device 10 comprises: a case 11 housing an electrode assembly 12; first and second electrode terminals 21, 31 having polarities different from each other, and provided on an external face side of a lid part 11b of the case 11; an electric current shut-off device 8 having an electrification plate 43 provided on an electrification path P between the electrode assembly 12 and one of the first and second electrode terminals 21, 31 in the case, and configured to disconnect the electrification path P by breaking the electrification plate 43 if pressure in the case 11 increases above a predetermined level; and a temperature detection element 70 disposed near one of the first and second electrode terminals 21, 31 than the other of the first and second electrode terminals 21, 31 on the external face side of the lid part 11b of the case 11.SELECTED DRAWING: Figure 2

Description

本発明は、蓄電装置に関する。   The present invention relates to a power storage device.

従来、蓄電装置として、リチウムイオン電池等の二次電池等が知られている。このような蓄電装置には、過充電や過放電の防止を目的として、装置の温度を検出する温度センサが取り付けられている。例えば、特許文献1に記載された蓄電装置では、温度検出素子がケース表面に取り付けられており、当該温度検出素子が検出した温度に基づいて、蓄電装置の温度の過度な上昇の有無が監視されている。   Conventionally, secondary batteries such as lithium ion batteries are known as power storage devices. Such a power storage device is provided with a temperature sensor for detecting the temperature of the device for the purpose of preventing overcharge and overdischarge. For example, in the power storage device described in Patent Document 1, the temperature detection element is attached to the surface of the case, and whether or not the temperature of the power storage device is excessively increased is monitored based on the temperature detected by the temperature detection element. ing.

特開2009−176601号公報JP 2009-176601 A

しかしながら、蓄電装置の使用時には、例えば、ケース内に収容された電極組立体の構成や、ケース表面に設けられた電極端子の配置等に起因して、ケース表面の温度が不均一になることが考えられる。このため、温度検出素子の取り付け位置によっては、蓄電装置の温度上昇を適切に検知できなくなり、過充電や過放電の検知タイミングが遅延してしまうおそれがある。   However, when the power storage device is used, the temperature of the case surface may become non-uniform due to, for example, the configuration of the electrode assembly housed in the case or the arrangement of electrode terminals provided on the case surface. Conceivable. For this reason, depending on the attachment position of the temperature detection element, it becomes impossible to appropriately detect the temperature rise of the power storage device, and the detection timing of overcharge or overdischarge may be delayed.

そこで、本発明は、温度上昇を適切に検知できる蓄電装置を提供することを目的とする。   Therefore, an object of the present invention is to provide a power storage device that can appropriately detect a temperature rise.

本発明の一側面に係る蓄電装置は、電極組立体が収容されたケースと、互いに異なる極性を有し、ケースにおける一面の外面側に設けられた第1及び第2の電極端子と、ケース内において第1及び第2の電極端子の一方と電極組立体との間の通電経路上に設けられた通電板を有し、ケースの内圧が所定レベルを超えて上昇した際に通電板が破断することで通電経路を遮断する電流遮断装置と、ケースにおける一面の外面側において、第1及び第2の電極端子の他方よりも第1及び第2の電極端子の一方寄りに配置された温度検出素子と、を備える。   A power storage device according to one aspect of the present invention includes a case in which an electrode assembly is accommodated, first and second electrode terminals that have different polarities and are provided on one outer surface side of the case, In FIG. 1, there is an energization plate provided on the energization path between one of the first and second electrode terminals and the electrode assembly, and the energization plate breaks when the internal pressure of the case rises above a predetermined level. A current interrupting device that interrupts the energization path, and a temperature detection element disposed on one outer surface side of the case closer to one of the first and second electrode terminals than the other of the first and second electrode terminals And comprising.

この蓄電装置では、ケースの内圧が所定レベルを超えて上昇した際に破断する通電板を有する電流遮断装置が備えられている。通電板を破断させるタイプの電流遮断装置では、ケース内圧の上昇時の破断容易性を確保するため、通電板に破断溝が設けられる場合や、通電板の破断予定部分が薄化されている場合がある。そのため、通電板の電気抵抗は、他の導電部分と比して高くなり、蓄電装置においては、電流遮断装置が配置されている方の電極端子の近傍では、電流遮断装置が配置されていない方の電極端子の近傍に比べて温度が上昇し易い、という傾向がある。この蓄電装置では、ケースにおける一面の外面側において、電流遮断装置が配置されていない電極端子よりも、電流遮断装置が配置されている電極端子に寄せて温度検出素子が配置されている。このように、温度が上昇し易い位置に温度検出素子が配置することで、温度上昇を適切に検知することが可能となる。   This power storage device includes a current interrupt device having an energization plate that breaks when the internal pressure of the case rises above a predetermined level. In the case of a current interrupting device that breaks the energizing plate, in order to ensure the easiness of breaking when the internal pressure of the case increases, the energizing plate is provided with a breaking groove or the energizing plate is thinned. There is. For this reason, the electrical resistance of the current-carrying plate is higher than that of other conductive parts, and in the power storage device, the one where the current interrupting device is not disposed in the vicinity of the electrode terminal where the current interrupting device is disposed. There is a tendency that the temperature is likely to rise as compared with the vicinity of the electrode terminal. In this power storage device, the temperature detection element is arranged closer to the electrode terminal on which the current interrupting device is disposed than on the electrode terminal on which the current interrupting device is not disposed on the outer surface side of one surface of the case. As described above, by arranging the temperature detecting element at a position where the temperature is likely to rise, it is possible to appropriately detect the temperature rise.

また、ケース内において、電極組立体を構成する複数の電極板の集電部が導電部材を介して第1及び第2の電極端子の一方と電気的に接続され、温度検出素子は、一面を挟んで集電部と導電部材との接続部分と対向するように配置されていてもよい。電極板の集電部と導電部材との接続部分においては、電気抵抗が高くなり、温度が上昇し易い傾向がある。したがって、一面を挟んで接続部分と対向するように温度検出素子を配置することで、温度上昇を一層適切に検知することが可能となる。   Further, in the case, the current collectors of the plurality of electrode plates constituting the electrode assembly are electrically connected to one of the first and second electrode terminals via the conductive member, and the temperature detecting element You may arrange | position so that it may oppose and the connection part of a current collection part and an electrically-conductive member on both sides. In the connection portion between the current collecting portion and the conductive member of the electrode plate, the electric resistance tends to increase and the temperature tends to rise. Therefore, it is possible to more appropriately detect the temperature rise by arranging the temperature detection element so as to face the connection portion across the one surface.

また、ケース内において、電極組立体を構成する複数の電極板の集電部が導電部材を介して第1及び第2の電極端子の一方と電気的に接続され、温度検出素子は、一面を挟んで導電部材と対向するように配置されていてもよい。上述したように、電流遮断装置が配置されている電極端子の近傍、及び電極板の集電部と導電部材との接続部分においては、温度が上昇し易い傾向がある。そのため、当該電極端子と集電部とに接続された導電部材においても、温度が上昇し易くなる。したがって、一面を挟んで導電部材と対向するように温度検出素子を配置することで、温度上昇をより一層適切に検知することが可能となる。   Further, in the case, the current collectors of the plurality of electrode plates constituting the electrode assembly are electrically connected to one of the first and second electrode terminals via the conductive member, and the temperature detecting element You may arrange | position so that it may oppose and a conductive member on both sides. As described above, the temperature tends to rise easily in the vicinity of the electrode terminal where the current interrupting device is disposed and in the connection portion between the current collector of the electrode plate and the conductive member. Therefore, the temperature easily rises even in the conductive member connected to the electrode terminal and the current collector. Therefore, it is possible to more appropriately detect the temperature rise by arranging the temperature detection element so as to face the conductive member across the one surface.

また、ケースを保持するホルダを更に備え、ホルダは、第1及び第2の電極端子をそれぞれ保持する一対の端子保持部と、複数のホルダの拘束に用いられる拘束ボルトが挿通される挿通部と、温度検出素子を保持する素子保持部と、を有し、第1及び第2の電極端子の一方が保持される端子保持部と素子保持部との間に挿通部が配置されていてもよい。この場合、電流遮断装置が配置されている電極端子に寄せて温度検出素子を配置しつつ、当該電極端子からケース外部の空気を介して温度検出素子に伝わる熱を挿通部によって遮ることができ、温度上昇をより一層適切に検知することが可能となる。   The holder further includes a holder for holding the case, and the holder includes a pair of terminal holding portions that respectively hold the first and second electrode terminals, and an insertion portion through which a restriction bolt used for restraining the plurality of holders is inserted. And an element holding part for holding the temperature detection element, and an insertion part may be disposed between the terminal holding part for holding one of the first and second electrode terminals and the element holding part. . In this case, while the temperature detection element is arranged close to the electrode terminal where the current interruption device is arranged, the heat transmitted from the electrode terminal to the temperature detection element via the air outside the case can be blocked by the insertion portion, It becomes possible to more appropriately detect the temperature rise.

また、ケースを保持するホルダを更に備え、ホルダは、第1及び第2の電極端子をそれぞれ保持する一対の端子保持部と、複数のホルダの拘束に用いられる拘束ボルトが挿通される挿通部と、温度検出素子を保持する素子保持部と、を有し、素子保持部、第1及び第2の電極端子の一方が保持される端子保持部、挿通部が、この順に配置されていてもよい。この場合、電流遮断装置が配置されている電極端子に寄せて温度検出素子を配置でき、温度上昇をより一層適切に検知することが可能となる。   The holder further includes a holder for holding the case, and the holder includes a pair of terminal holding portions that respectively hold the first and second electrode terminals, and an insertion portion through which a restriction bolt used for restraining the plurality of holders is inserted. And an element holding part that holds the temperature detection element, and the element holding part, the terminal holding part that holds one of the first and second electrode terminals, and the insertion part may be arranged in this order. . In this case, the temperature detection element can be arranged close to the electrode terminal where the current interruption device is arranged, and the temperature rise can be detected more appropriately.

また、ケースを保持するホルダを更に備え、ホルダは、第1及び第2の電極端子をそれぞれ保持する一対の端子保持部と、複数のホルダの拘束に用いられる拘束ボルトが挿通される挿通部と、温度検出素子を保持する素子保持部と、を有し、挿通部、前記素子保持部、前記第1及び第2の電極端子の一方が保持される前記端子保持部が、この順に配置されていてもよい。この場合、電流遮断装置が配置されている電極端子に寄せて温度検出素子を配置でき、温度上昇をより一層適切に検知することが可能となる。   The holder further includes a holder for holding the case, and the holder includes a pair of terminal holding portions that respectively hold the first and second electrode terminals, and an insertion portion through which a restriction bolt used for restraining the plurality of holders is inserted. And an element holding part for holding the temperature detection element, and the terminal holding part for holding one of the insertion part, the element holding part, and the first and second electrode terminals is arranged in this order. May be. In this case, the temperature detection element can be arranged close to the electrode terminal where the current interruption device is arranged, and the temperature rise can be detected more appropriately.

本発明によれば、温度上昇を適切に検知することが可能となる。   According to the present invention, it is possible to appropriately detect a temperature rise.

本発明の一実施形態に係る蓄電モジュールの斜視図である。It is a perspective view of the electrical storage module which concerns on one Embodiment of this invention. 図1に示した蓄電モジュールを構成する蓄電装置の断面図である。It is sectional drawing of the electrical storage apparatus which comprises the electrical storage module shown in FIG. 通常時の電流遮断装置の近傍を示す断面図である。It is sectional drawing which shows the vicinity of the electric current interruption apparatus at the normal time. 作動時の電流遮断装置の近傍を示す断面図である。It is sectional drawing which shows the vicinity of the electric current interruption apparatus at the time of an action | operation. 蓄電モジュールの第1変形例を示す断面図である。It is sectional drawing which shows the 1st modification of an electrical storage module. 蓄電モジュールの第2変形例を示す断面図である。It is sectional drawing which shows the 2nd modification of an electrical storage module.

以下、本発明の一実施形態について、図面を参照しつつ詳細に説明する。なお、以下の説明において、同一又は相当要素には同一符号を用い、重複する説明を省略する。   Hereinafter, an embodiment of the present invention will be described in detail with reference to the drawings. In the following description, the same reference numerals are used for the same or corresponding elements, and duplicate descriptions are omitted.

図1に示される蓄電モジュール1は、例えば、フォークリフト等の車両のバッテリーとして用いられる。蓄電モジュール1は、複数(この例では、7つ)の蓄電装置10が配列されてなる配列体2と、配列体2に対して配列方向に拘束荷重を付加する拘束部材3と、を備えている。   The power storage module 1 shown in FIG. 1 is used as a battery of a vehicle such as a forklift. The power storage module 1 includes an array body 2 in which a plurality (seven in this example) of power storage devices 10 are arrayed, and a restraining member 3 that applies a restraining load to the array body 2 in the array direction. Yes.

配列体2において、各蓄電装置10は、ホルダ61によって保持された状態で配列されている。ホルダ61の構成については後述する。複数の蓄電装置10は、極性の異なる電極端子同士が配列方向に隣り合うように配列されており、バスバ7によって電気的に直列に接続されている。   In the array body 2, the power storage devices 10 are arrayed while being held by the holder 61. The configuration of the holder 61 will be described later. The plurality of power storage devices 10 are arranged so that electrode terminals having different polarities are adjacent to each other in the arrangement direction, and are electrically connected in series by a bus bar 7.

拘束部材3は、例えば、配列体2に対して配列方向の両端にそれぞれ配置された一対のエンドプレート4,4と、エンドプレート4,4同士を締結する拘束ボルト5と、拘束ボルト5の両端に螺合されるナット6と、を有している。拘束ボルト5は、この例では4本設けられており、各拘束ボルト5は、エンドプレート4,4及び各ホルダ61に挿通されている。拘束ボルト5へのナット6の螺合によってエンドプレート4,4同士が締結され、配列体2に拘束荷重が加えられている。   The restraining member 3 includes, for example, a pair of end plates 4 and 4 disposed at both ends in the arrangement direction with respect to the array 2, a restraining bolt 5 that fastens the end plates 4 and 4, and both ends of the restraining bolt 5. And a nut 6 to be screwed together. In this example, four restraint bolts 5 are provided, and each restraint bolt 5 is inserted through the end plates 4 and 4 and each holder 61. The end plates 4, 4 are fastened together by screwing the nut 6 to the restraint bolt 5, and a restraint load is applied to the array 2.

蓄電モジュール1を構成する蓄電装置10は、例えばリチウムイオン電池等の二次電池である。図2に示されるように、蓄電装置10は、電極組立体12が収容されたケース11と、正極端子(第1の電極端子)21と、負極端子(第2の電極端子)31と、電流遮断装置8と、を備えている。   The power storage device 10 constituting the power storage module 1 is a secondary battery such as a lithium ion battery, for example. As illustrated in FIG. 2, the power storage device 10 includes a case 11 in which the electrode assembly 12 is accommodated, a positive terminal (first electrode terminal) 21, a negative terminal (second electrode terminal) 31, a current And a shut-off device 8.

ケース11は、電極組立体12を収容する本体部11aと、本体部11aの開口を閉塞する蓋部(一面)11bと、を有している。本体部11aは矩形箱状をなし、蓋部11bは矩形平板状をなしている。ケース11は、例えば、ステンレスやアルミニウム等の金属からなる。ケース11の内面側には、ケース11と電極組立体12との間を絶縁する絶縁シート13が設けられている。蓋部11bの外面側には、正極端子21及び負極端子31が互いに離間して設けられている。正極端子21は、蓋部11bの幅方向Dの一方側に配置され、負極端子31は、幅方向Dの他方側に配置されている。   The case 11 has a main body portion 11a that houses the electrode assembly 12, and a lid portion (one surface) 11b that closes the opening of the main body portion 11a. The main body portion 11a has a rectangular box shape, and the lid portion 11b has a rectangular flat plate shape. Case 11 consists of metals, such as stainless steel and aluminum, for example. An insulating sheet 13 that insulates between the case 11 and the electrode assembly 12 is provided on the inner surface side of the case 11. A positive electrode terminal 21 and a negative electrode terminal 31 are provided apart from each other on the outer surface side of the lid portion 11b. The positive electrode terminal 21 is disposed on one side in the width direction D of the lid portion 11 b, and the negative electrode terminal 31 is disposed on the other side in the width direction D.

電極組立体12は、正極(電極板)及び負極(電極板)がセパレータを介して交互に積層された積層型の電極組立体である。セパレータは、例えば微多孔膜であり、セパレータには電解液が含浸されている。セパレータは、例えば袋状に形成されて正極を収容していてもよいし、或いはシート状に形成されていてもよい。例えば、セパレータ付き正極として、正極の両面に2枚のシート状のセパレータが各々接合され、ユニット化された正極が用いられてもよい。   The electrode assembly 12 is a stacked electrode assembly in which positive electrodes (electrode plates) and negative electrodes (electrode plates) are alternately stacked via separators. The separator is, for example, a microporous film, and the separator is impregnated with an electrolytic solution. The separator may be formed, for example, in a bag shape and accommodate the positive electrode, or may be formed in a sheet shape. For example, as a positive electrode with a separator, a united positive electrode may be used in which two sheet-like separators are joined to both sides of the positive electrode.

正極は、例えばアルミニウム箔からなる金属箔と、金属箔の両面に形成された正極活物質層と、を有している。正極活物質層は、正極活物質とバインダとを含んで形成されている。正極活物質の例としては、例えば、複合酸化物、金属リチウム及び硫黄等が挙げられる。複合酸化物の例にとしては、例えば、マンガン、ニッケル、コバルト及びアルミニウムの少なくとも1つと、リチウムと、が挙げられる。   The positive electrode includes, for example, a metal foil made of an aluminum foil and a positive electrode active material layer formed on both surfaces of the metal foil. The positive electrode active material layer is formed including a positive electrode active material and a binder. Examples of the positive electrode active material include composite oxide, metallic lithium, and sulfur. Examples of the composite oxide include at least one of manganese, nickel, cobalt, and aluminum, and lithium.

正極の上縁部(蓋部11b側の縁部)において、正極端子21よりも幅方向Dの内側の位置には、正極集電部22が形成されている。各正極の正極集電部22は、例えば電極組立体12における積層方向の一方側で集約され、正極導電部材23を介して正極端子21に電気的に接続されている。正極集電部22と正極導電部材23、及び、正極導電部材23と正極端子21とは、例えば溶接によって接合されている。   In the upper edge of the positive electrode (the edge on the lid 11b side), a positive electrode current collector 22 is formed at a position inside the positive electrode terminal 21 in the width direction D. The positive electrode current collector 22 of each positive electrode is collected on one side in the stacking direction of the electrode assembly 12, for example, and is electrically connected to the positive electrode terminal 21 via the positive electrode conductive member 23. The positive electrode current collector 22 and the positive electrode conductive member 23, and the positive electrode conductive member 23 and the positive electrode terminal 21 are joined by welding, for example.

一方、負極は、例えば銅箔からなる金属箔と、金属箔の両面に形成された負極活物質層と、を有している。負極活物質層は、負極活物質とバインダとを含んで形成されている。負極活物質の例としては、例えば、黒鉛、高配向性グラファイト、メソカーボンマイクロビーズ、ハードカーボン及びソフトカーボン等のカーボン、リチウム及びナトリウム等のアルカリ金属、金属化合物、SiOx(0.5≦x≦1.5)等の金属酸化物、並びにホウ素添加炭素等が挙げられる。   On the other hand, the negative electrode has, for example, a metal foil made of copper foil and a negative electrode active material layer formed on both surfaces of the metal foil. The negative electrode active material layer is formed including a negative electrode active material and a binder. Examples of the negative electrode active material include, for example, graphite such as graphite, highly oriented graphite, mesocarbon microbeads, hard carbon and soft carbon, alkali metals such as lithium and sodium, metal compounds, SiOx (0.5 ≦ x ≦ 1.5) and the like, and boron-added carbon and the like.

負極の上縁部(蓋部11b側の縁部)において、負極端子31よりも幅方向Dの内側の位置には、負極集電部32が形成されている。各負極の負極集電部32は、電極組立体12における積層方向の一方側で集約され、負極導電部材33を介して負極端子31に電気的に接続されている。負極端子31の下部には、電流遮断装置8が設けられている。電流遮断装置8は、負極端子31と負極導電部材33との間に設けられ、負極端子31と負極導電部材33とを電気的に直列に接続している。負極集電部32と負極導電部材33、及び、負極導電部材33と電流遮断装置8とは、例えば溶接によって接合されている。   A negative electrode current collector 32 is formed at a position on the inner side in the width direction D of the negative electrode terminal 31 at the upper edge of the negative electrode (the edge on the lid 11b side). The negative electrode current collector 32 of each negative electrode is concentrated on one side in the stacking direction of the electrode assembly 12 and is electrically connected to the negative electrode terminal 31 via the negative electrode conductive member 33. A current interrupt device 8 is provided below the negative terminal 31. The current interrupting device 8 is provided between the negative electrode terminal 31 and the negative electrode conductive member 33 and electrically connects the negative electrode terminal 31 and the negative electrode conductive member 33 in series. The negative electrode current collector 32 and the negative electrode conductive member 33, and the negative electrode conductive member 33 and the current interrupt device 8 are joined together by welding, for example.

続いて、図3及び図4を参照しつつ、電流遮断装置8について説明する。電流遮断装置8は、負極端子31と負極導電部材33との間を接続する通電経路Pを有している。電流遮断装置8は、ケース11の内圧が所定レベルを超えて上昇した際に、通電経路Pを遮断することによって、負極端子31と負極導電部材33との間に流れる電流を遮断する。ここで、「所定レベルの圧力」とは、蓄電装置10が過充電状態等の異常状態になったときのケース11の内圧を意味する。電流遮断装置8は、第1変形板41と、第2変形板42と、通電板43と、端子部44と、を有している。   Subsequently, the current interrupting device 8 will be described with reference to FIGS. 3 and 4. The current interrupt device 8 has an energization path P that connects between the negative electrode terminal 31 and the negative electrode conductive member 33. The current interrupting device 8 interrupts the current flowing between the negative electrode terminal 31 and the negative electrode conductive member 33 by interrupting the energization path P when the internal pressure of the case 11 rises above a predetermined level. Here, the “predetermined level of pressure” means the internal pressure of the case 11 when the power storage device 10 is in an abnormal state such as an overcharged state. The current interrupt device 8 includes a first deformation plate 41, a second deformation plate 42, an energization plate 43, and a terminal portion 44.

第1変形板41及び第2変形板42は、例えば金属製のダイアフラムであり、通常時に中央部が下向き(電極組立体12側)に突出するように設けられている。第1変形板41の上面の中央部には、絶縁性を有する突起45が設けられている。通電板43は、第1変形板41と第2変形板42との間に配置されている。   The first deformable plate 41 and the second deformable plate 42 are, for example, metal diaphragms, and are provided so that the central portion protrudes downward (on the electrode assembly 12 side) at normal times. An insulating protrusion 45 is provided at the center of the upper surface of the first deformation plate 41. The energization plate 43 is disposed between the first deformation plate 41 and the second deformation plate 42.

通電板43と第1変形板41とは互いの外縁部において接触しており、通電板43と第2変形板42とは通常時には互いの中央部において接触している。第2変形板42の外縁部と通電板43との間は、環状の絶縁部材46によって絶縁されている。通電板43は、外縁部において負極導電部材33に電気的に接続されている。通電板43の中央部には、ケース11の内圧が所定レベルを超えて上昇した際に確実に破断するように、破断溝43aが設けられている。   The current-carrying plate 43 and the first deformation plate 41 are in contact with each other at the outer edge portion, and the current-carrying plate 43 and the second deformation plate 42 are normally in contact with each other at the center portion. The outer edge of the second deformable plate 42 and the energizing plate 43 are insulated by an annular insulating member 46. The energizing plate 43 is electrically connected to the negative electrode conductive member 33 at the outer edge portion. A breaking groove 43a is provided in the central portion of the energizing plate 43 so as to be surely broken when the internal pressure of the case 11 rises above a predetermined level.

端子部44は、蓋部11bに形成された開口11cを貫通するように配置され、ケース11内において第2変形板42に電気的に接続されている。端子部44は、略円板状の板部47と、板部47の中央部から上側に延在する筒部48と、筒部48の外周面に螺合されるナット部49と、筒部48の上面にバスバ7を締結するための締結部50と、有し、負極端子31を構成している。板部47と筒部48とは一体に形成されている。蓋部11bは、板部47とナット部49との間で挟まれている。板部47と第2変形板42との間は、環状の絶縁部材51によって絶縁されている。開口11c(蓋部11b)と端子部44との間は、環状の絶縁部材52,53,54によって絶縁されると共に、気密にシールされている。   The terminal portion 44 is disposed so as to pass through the opening 11 c formed in the lid portion 11 b and is electrically connected to the second deformation plate 42 in the case 11. The terminal portion 44 includes a substantially disc-shaped plate portion 47, a cylindrical portion 48 extending upward from the central portion of the plate portion 47, a nut portion 49 screwed to the outer peripheral surface of the cylindrical portion 48, and a cylindrical portion A fastening portion 50 for fastening the bus bar 7 is provided on the upper surface of 48 and constitutes the negative electrode terminal 31. The plate part 47 and the cylinder part 48 are formed integrally. The lid portion 11 b is sandwiched between the plate portion 47 and the nut portion 49. The plate portion 47 and the second deformation plate 42 are insulated by an annular insulating member 51. The opening 11c (lid portion 11b) and the terminal portion 44 are insulated by an annular insulating member 52, 53, 54 and hermetically sealed.

例えば蓄電装置10が過充電状態となってケース11内でガスが発生し、ケース11の内圧が所定レベルを超えて上昇した場合、電流遮断装置8が作動する。この作動時には、ケース11の内圧によって第1変形板41が上方に変形する。第1変形板41が上方に変形すると、突起45が通電板43の中央部に当接し、通電板43が破断溝43aを起点として破断し、通電板43の一部が分離される。そして、通電板43から分離した一部が突起45によって第2変形板42の中央部に当接させられ、第2変形板42の中央部が上方に変形する。その結果、作動時には通電板43と第2変形板42とが非接触になり、通電経路Pが不可逆的に遮断される。   For example, when the power storage device 10 is overcharged and gas is generated in the case 11 and the internal pressure of the case 11 rises above a predetermined level, the current interrupt device 8 operates. During this operation, the first deformation plate 41 is deformed upward by the internal pressure of the case 11. When the first deforming plate 41 is deformed upward, the protrusion 45 comes into contact with the central portion of the energizing plate 43, the energizing plate 43 is broken starting from the breaking groove 43a, and a part of the energizing plate 43 is separated. Then, a part separated from the energization plate 43 is brought into contact with the central portion of the second deformation plate 42 by the protrusion 45, and the central portion of the second deformation plate 42 is deformed upward. As a result, during operation, the energization plate 43 and the second deformation plate 42 are not in contact with each other, and the energization path P is irreversibly blocked.

続いて、図1及び図2を参照しつつ、ホルダ61の構成について説明する。ホルダ61は、例えばポリプロピレン等の樹脂材料により形成され、枠体62と、一対の端子保持部63,63と、挿通部64と、素子保持部65と、を有している。   Subsequently, the configuration of the holder 61 will be described with reference to FIGS. 1 and 2. The holder 61 is formed of a resin material such as polypropylene, for example, and includes a frame body 62, a pair of terminal holding portions 63 and 63, an insertion portion 64, and an element holding portion 65.

枠体62は、底板66と、一対の側板67,67と、仕切板68と、を有している。一対の側板67,67は、互いに対向するように底板66の幅方向Dの縁部に立設されている。仕切板68は、配列方向の一方側(紙面奥側)において、ケース11の高さに応じた位置で側板67,67同士を連結している。ケース11がホルダ61によって保持された状態では、枠体62内にケース11が嵌め込まれ、ケース11の底面が底板66に、幅方向Dの両側面が側板67,67に、配列方向の一方側の側面が仕切板68に、それぞれ接触している。   The frame body 62 includes a bottom plate 66, a pair of side plates 67 and 67, and a partition plate 68. The pair of side plates 67 and 67 are erected on the edge of the bottom plate 66 in the width direction D so as to face each other. The partition plate 68 connects the side plates 67 and 67 at a position corresponding to the height of the case 11 on one side in the arrangement direction (the back side in the drawing). In a state where the case 11 is held by the holder 61, the case 11 is fitted into the frame body 62, the bottom surface of the case 11 is on the bottom plate 66, both side surfaces in the width direction D are on the side plates 67 and 67, and one side in the arrangement direction. Are in contact with the partition plate 68.

端子保持部63,63は、蓄電装置10の正極端子21及び負極端子31をそれぞれ保持する部分である。端子保持部63,63は、仕切板68上において、正極端子21及び負極端子31それぞれに対応する位置に設けられている。端子保持部63,63は、枠体62にケース11が嵌め込まれた状態において、正極端子21及び負極端子31をそれぞれ包囲する。   Terminal holding portions 63 and 63 are portions that hold positive electrode terminal 21 and negative electrode terminal 31 of power storage device 10, respectively. The terminal holding parts 63 and 63 are provided on the partition plate 68 at positions corresponding to the positive electrode terminal 21 and the negative electrode terminal 31, respectively. The terminal holding parts 63, 63 surround the positive terminal 21 and the negative terminal 31, respectively, in a state where the case 11 is fitted in the frame body 62.

挿通部64は、拘束部材3の拘束ボルト5が挿通される部分であり、この例では4つ設けられている。各挿通部64は、拘束ボルト5が挿通される挿通孔64aを有している。4つの挿通部64は、底板66及び仕切板68のそれぞれに2つずつ設けられている。仕切板68側の挿通部64は、仕切板68上において、端子保持部63の内側に隣接して設けられている。底板66側の挿通部64は、底板66の幅方向Dの端部において、底板66の底面側に設けられている。   The insertion part 64 is a part through which the restriction bolt 5 of the restriction member 3 is inserted, and four insertion parts 64 are provided in this example. Each insertion portion 64 has an insertion hole 64a through which the restraint bolt 5 is inserted. Two four insertion portions 64 are provided on each of the bottom plate 66 and the partition plate 68. The insertion portion 64 on the partition plate 68 side is provided adjacent to the inside of the terminal holding portion 63 on the partition plate 68. The insertion portion 64 on the bottom plate 66 side is provided on the bottom surface side of the bottom plate 66 at the end in the width direction D of the bottom plate 66.

素子保持部65は、温度検出素子70を保持する部分である。温度検出素子70は、蓄電装置10の過充電や過放電の防止を目的として設けられるものであり、蓄電装置10の温度の過度な上昇の有無を監視するために用いられる。温度検出素子70は、例えばサーミスタであり、検出対象との接触位置において温度を検出し、配線を介して外部の制御装置(図示省略)に検出結果を出力する。   The element holding unit 65 is a part that holds the temperature detection element 70. The temperature detection element 70 is provided for the purpose of preventing overcharge and overdischarge of the power storage device 10, and is used for monitoring whether or not the temperature of the power storage device 10 is excessively increased. The temperature detection element 70 is, for example, a thermistor, detects a temperature at a contact position with a detection target, and outputs a detection result to an external control device (not shown) via wiring.

素子保持部65は、仕切板68上において、負極端子31が保持された端子保持部63よりも内側の位置に端子保持部63に隣接して設けられている。すなわち、本実施形態では、負極端子31が保持される端子保持部63と素子保持部65との間に挿通部64が配置されている。素子保持部65は、仕切板68上において、正極端子21が保持された端子保持部63よりも負極端子31が保持された端子保持部63寄りに配置されている。すなわち、素子保持部65は、正極端子21が保持された端子保持部63よりも負極端子31が保持された端子保持部63の近くに配置されている。また、端子保持部63は、ケース11の蓋部11bを挟んで、負極集電部32と負極導電部材33との接続部分C、及び負極導電部材33の双方と対向するように配置されている。   The element holding portion 65 is provided on the partition plate 68 adjacent to the terminal holding portion 63 at a position inside the terminal holding portion 63 where the negative electrode terminal 31 is held. That is, in the present embodiment, the insertion portion 64 is disposed between the terminal holding portion 63 that holds the negative electrode terminal 31 and the element holding portion 65. The element holding portion 65 is disposed on the partition plate 68 closer to the terminal holding portion 63 that holds the negative electrode terminal 31 than the terminal holding portion 63 that holds the positive electrode terminal 21. That is, the element holding unit 65 is disposed closer to the terminal holding unit 63 that holds the negative electrode terminal 31 than the terminal holding unit 63 that holds the positive electrode terminal 21. Further, the terminal holding part 63 is disposed so as to face both the connection part C between the negative electrode current collecting part 32 and the negative electrode conductive member 33 and the negative electrode conductive member 33 with the lid part 11 b of the case 11 interposed therebetween. .

これにより、素子保持部65に保持されている温度検出素子70は、ケース11における蓋部11bの外面側において、正極端子21よりも負極端子31寄りに配置されている。また、温度検出素子70は、ケース11の蓋部11bを挟んで、接続部分C及び負極導電部材33の双方と対向するように配置されている。なお、温度検出素子70は、蓋部11bの外面に接触していてもよいし、素子保持部65の一面を介して蓋部11bの外面上に配置されていてもよい。   Accordingly, the temperature detection element 70 held by the element holding portion 65 is disposed closer to the negative electrode terminal 31 than the positive electrode terminal 21 on the outer surface side of the lid portion 11 b in the case 11. The temperature detection element 70 is disposed so as to face both the connection portion C and the negative electrode conductive member 33 with the lid portion 11 b of the case 11 interposed therebetween. Note that the temperature detection element 70 may be in contact with the outer surface of the lid portion 11 b or may be disposed on the outer surface of the lid portion 11 b via one surface of the element holding portion 65.

以上説明した蓄電装置10では、ケース11の内圧が所定レベルを超えて上昇した際に破断する通電板43を有する電流遮断装置8が備えられている。通電板43を破断させるタイプの電流遮断装置8では、ケース11の内圧の上昇時の破断容易性を確保するため、通電板43に破断溝43aが設けられる場合や、通電板43の破断予定部分が薄化されている場合がある。そのため、通電板43の電気抵抗は、他の導電部分と比して高くなり、蓄電装置10においては、電流遮断装置8が配置されている方の負極端子31の近傍では、電流遮断装置8が配置されていない方の正極端子21の近傍に比べて温度が上昇し易い、という傾向がある。蓄電装置10では、ケース11における蓋部11bの外面側において、電流遮断装置8が配置されていない正極端子21よりも、電流遮断装置8が配置されている負極端子31に寄せて温度検出素子70が配置されている。このように、温度が上昇し易い位置に温度検出素子70を配置することで、温度上昇を適切に検知することが可能となっている。   The power storage device 10 described above includes the current interrupt device 8 having the energization plate 43 that breaks when the internal pressure of the case 11 rises above a predetermined level. In the current interrupting device 8 of the type that breaks the energization plate 43, in order to ensure the easiness of breakage when the internal pressure of the case 11 is increased, the energization plate 43 is provided with a breaking groove 43a or the energization plate 43 is scheduled to break. May be thinned. Therefore, the electrical resistance of the current-carrying plate 43 is higher than that of other conductive portions. In the power storage device 10, the current interrupt device 8 is located near the negative electrode terminal 31 on which the current interrupt device 8 is disposed. There is a tendency that the temperature is likely to rise as compared with the vicinity of the positive electrode terminal 21 that is not arranged. In the power storage device 10, on the outer surface side of the lid portion 11 b in the case 11, the temperature detection element 70 is brought closer to the negative electrode terminal 31 where the current interruption device 8 is arranged than the positive electrode terminal 21 where the current interruption device 8 is not arranged. Is arranged. Thus, by arranging the temperature detection element 70 at a position where the temperature is likely to rise, it is possible to appropriately detect the temperature rise.

また、蓄電装置10では、ケース11内において、負極集電部32が負極導電部材33を介して負極端子31と電気的に接続されており、蓋部11bを挟んで負極集電部32と負極導電部材33との接続部分Cと対向するように温度検出素子70が配置されている。負極集電部32と負極導電部材33との接続部分Cにおいては、電気抵抗が高くなり、温度が上昇し易い傾向がある。したがって、蓋部11bを挟んで接続部分Cと対向するように温度検出素子70を配置することで、温度上昇を一層適切に検知することが可能となっている。   Further, in the power storage device 10, the negative electrode current collector 32 is electrically connected to the negative electrode terminal 31 through the negative electrode conductive member 33 in the case 11, and the negative electrode current collector 32 and the negative electrode are sandwiched by the lid 11 b. The temperature detection element 70 is disposed so as to face the connection portion C with the conductive member 33. In the connection portion C between the negative electrode current collector 32 and the negative electrode conductive member 33, the electric resistance tends to increase and the temperature tends to rise. Therefore, by arranging the temperature detection element 70 so as to face the connection portion C across the lid portion 11b, it is possible to more appropriately detect the temperature rise.

また、蓄電装置10では、蓋部11bを挟んで負極導電部材33と対向するように温度検出素子70が配置されている。上述したように、電流遮断装置8が配置されている負極端子31の近傍、及び負極集電部32と負極導電部材33との接続部分Cにおいては、温度が上昇し易い傾向がある。そのため、負極端子31と負極集電部32とに接続された負極導電部材33においても、温度が上昇し易くなる。したがって、蓋部11bを挟んで負極導電部材33と対向するように温度検出素子70を配置することで、温度上昇をより一層適切に検知することが可能となっている。   In the power storage device 10, the temperature detection element 70 is disposed so as to face the negative electrode conductive member 33 with the lid portion 11 b interposed therebetween. As described above, the temperature tends to increase in the vicinity of the negative electrode terminal 31 where the current interrupting device 8 is disposed and in the connection portion C between the negative electrode current collector 32 and the negative electrode conductive member 33. Therefore, the temperature easily rises in the negative electrode conductive member 33 connected to the negative electrode terminal 31 and the negative electrode current collector 32. Therefore, by arranging the temperature detection element 70 so as to face the negative electrode conductive member 33 across the lid portion 11b, it is possible to more appropriately detect the temperature rise.

また、蓄電装置10では、ホルダ61が、正極端子21及び負極端子31をそれぞれ保持する一対の端子保持部63と、拘束ボルト5が挿通される挿通部64と、温度検出素子70を保持する素子保持部65と、を有し、負極端子31が保持される端子保持部63と素子保持部65との間に挿通部64が配置されている。これにより、電流遮断装置8が配置されている負極端子31に寄せて温度検出素子70を配置しつつ、負極端子31からケース11外部の空気を介して温度検出素子70に伝わる熱を挿通部64によって遮ることができ、温度上昇をより一層適切に検知することが可能となっている。   In the power storage device 10, the holder 61 includes a pair of terminal holding portions 63 that respectively hold the positive electrode terminal 21 and the negative electrode terminal 31, an insertion portion 64 through which the restraint bolt 5 is inserted, and an element that holds the temperature detection element 70. The insertion part 64 is disposed between the element holding part 65 and the terminal holding part 63 that has the holding part 65 and holds the negative electrode terminal 31. As a result, the temperature detecting element 70 is arranged close to the negative electrode terminal 31 where the current interrupting device 8 is arranged, and the heat transmitted from the negative electrode terminal 31 to the temperature detecting element 70 via the air outside the case 11 is inserted through the insertion portion 64. The temperature rise can be detected more appropriately.

以上、本発明の一実施形態について説明したが、本発明は、上記実施形態に限られない。例えば、図5に示される第1変形例では、挿通部64が端子保持部63の外側に隣接して設けられ、素子保持部65が端子保持部63の内側に隣接して設けられている。すなわち、第1変形例では、幅方向Dの内側から外側に向けて、素子保持部65、負極端子31が保持される端子保持部63、挿通部64がこの順に配置されている。このような第1変形例によっても、第1の実施形態の場合と同様に、電流遮断装置8が配置されている負極端子31に寄せて温度検出素子70を配置でき、温度上昇を適切に検知することが可能となる。   Although one embodiment of the present invention has been described above, the present invention is not limited to the above embodiment. For example, in the first modification shown in FIG. 5, the insertion portion 64 is provided adjacent to the outside of the terminal holding portion 63, and the element holding portion 65 is provided adjacent to the inside of the terminal holding portion 63. That is, in the first modification example, the element holding portion 65, the terminal holding portion 63 that holds the negative electrode terminal 31, and the insertion portion 64 are arranged in this order from the inner side to the outer side in the width direction D. Also according to the first modification, the temperature detection element 70 can be arranged close to the negative electrode terminal 31 where the current interrupting device 8 is arranged as in the case of the first embodiment, and the temperature rise is appropriately detected. It becomes possible to do.

なお、第1変形例において、幅方向Dの外側から内側に向けて、素子保持部65、負極端子31が保持される端子保持部63、挿通部64がこの順に配置されていてもよい。この場合でも、電流遮断装置8が配置されている負極端子31に寄せて温度検出素子70を配置でき、温度上昇を適切に検知することが可能となる。   In the first modification, the element holding portion 65, the terminal holding portion 63 that holds the negative electrode terminal 31, and the insertion portion 64 may be arranged in this order from the outer side to the inner side in the width direction D. Even in this case, the temperature detection element 70 can be arranged close to the negative electrode terminal 31 where the current interrupting device 8 is arranged, and the temperature rise can be detected appropriately.

また、図6に示される第2変形例では、素子保持部65が端子保持部63の内側に隣接して設けられ、挿通部64が素子保持部65の内側に隣接して設けられている。すなわち、第2変形例では、幅方向Dの内側から外側に向けて、挿通部64、素子保持部65、負極端子31が保持される端子保持部63がこの順に配置されている。このような第2変形例によっても、電流遮断装置8が配置されている負極端子31に寄せて温度検出素子70を配置でき、温度上昇を適切に検知することが可能となる。   In the second modified example shown in FIG. 6, the element holding portion 65 is provided adjacent to the inside of the terminal holding portion 63, and the insertion portion 64 is provided adjacent to the inside of the element holding portion 65. That is, in the second modification example, the insertion part 64, the element holding part 65, and the terminal holding part 63 that holds the negative electrode terminal 31 are arranged in this order from the inner side to the outer side in the width direction D. Also according to the second modified example, the temperature detecting element 70 can be disposed close to the negative terminal 31 where the current interrupting device 8 is disposed, and the temperature rise can be appropriately detected.

なお、第2変形例において、幅方向Dの外側から内側に向けて、挿通部64、素子保持部65、負極端子31が保持される端子保持部63がこの順に配置されていてもよい。この場合でも、電流遮断装置8が配置されている負極端子31に寄せて温度検出素子70を配置でき、温度上昇を適切に検知することが可能となる。   In the second modification, the insertion portion 64, the element holding portion 65, and the terminal holding portion 63 that holds the negative electrode terminal 31 may be arranged in this order from the outer side to the inner side in the width direction D. Even in this case, the temperature detection element 70 can be arranged close to the negative electrode terminal 31 where the current interrupting device 8 is arranged, and the temperature rise can be detected appropriately.

また、上記実施形態では、ケース11の蓋部11bを挟んで負極集電部32と負極導電部材33との接続部分C及び負極導電部材33の双方と対向するように温度検出素子70が配置されていたが、蓋部11bを挟んで負極導電部材33のみと対向するように温度検出素子70が配置されてもよい。この場合にも、上記実施形態と同様に、温度が上昇し易い位置に温度検出素子70を配置でき、温度上昇を適切に検知することが可能となる。ただし、上記実施形態のように、蓋部11bを挟んで接続部分C及び負極導電部材33の双方と対向するように温度検出素子70が配置されている方が、温度上昇を一層適切に検知できる点で好ましい。   In the above embodiment, the temperature detection element 70 is disposed so as to face both the connecting portion C between the negative electrode current collector 32 and the negative electrode conductive member 33 and the negative electrode conductive member 33 with the lid portion 11 b of the case 11 interposed therebetween. However, the temperature detection element 70 may be disposed so as to face only the negative electrode conductive member 33 with the lid portion 11b interposed therebetween. Also in this case, similarly to the above-described embodiment, the temperature detection element 70 can be disposed at a position where the temperature is likely to rise, and the temperature rise can be appropriately detected. However, as in the above-described embodiment, the temperature increase can be more appropriately detected when the temperature detection element 70 is disposed so as to face both the connection portion C and the negative electrode conductive member 33 with the lid portion 11b interposed therebetween. This is preferable.

また、上記実施形態では、負極端子31と電極組立体12との間の通電経路P上に電流遮断装置8が配置されていたが、正極端子21と電極組立体12との間の通電経路上に電流遮断装置8が配置されてもよい。この場合、電流遮断装置8は、例えば、正極端子21と正極導電部材23との間に設けられ、正極端子21と正極導電部材23とを電気的に直列に接続してもよい。   In the above embodiment, the current interrupt device 8 is disposed on the energization path P between the negative electrode terminal 31 and the electrode assembly 12. However, on the energization path between the positive electrode terminal 21 and the electrode assembly 12. The current interrupting device 8 may be arranged in the. In this case, the current interrupt device 8 may be provided between the positive electrode terminal 21 and the positive electrode conductive member 23, for example, and the positive electrode terminal 21 and the positive electrode conductive member 23 may be electrically connected in series.

1…蓄電モジュール、5…拘束ボルト、8…電流遮断装置、10…蓄電装置、11…ケース、11a…本体部、11b…蓋部(一面)、12…電極組立体、21…正極端子(第1の電極端子)、31…負極端子(第2の電極端子)、32…負極集電部、33…負極導電部材、43…通電板、61…ホルダ、63…端子保持部、64…挿通部、65…素子保持部、70…温度検出素子、C…接続部分、P…通電経路。 DESCRIPTION OF SYMBOLS 1 ... Power storage module, 5 ... Restraint bolt, 8 ... Current interruption device, 10 ... Power storage device, 11 ... Case, 11a ... Body part, 11b ... Cover part (one side), 12 ... Electrode assembly, 21 ... Positive electrode terminal 1), 31... Negative electrode terminal (second electrode terminal), 32... Negative electrode current collector, 33... Negative electrode conductive member, 43. , 65 ... element holding part, 70 ... temperature detection element, C ... connection part, P ... energization path.

Claims (6)

電極組立体が収容されたケースと、
互いに異なる極性を有し、前記ケースにおける一面の外面側に設けられた第1及び第2の電極端子と、
前記ケース内において前記第1及び第2の電極端子の一方と前記電極組立体との間の通電経路上に設けられた通電板を有し、前記ケースの内圧が所定レベルを超えて上昇した際に前記通電板が破断することで前記通電経路を遮断する電流遮断装置と、
前記ケースにおける前記一面の外面側において、前記第1及び第2の電極端子の他方よりも前記第1及び第2の電極端子の一方寄りに配置された温度検出素子と、を備える蓄電装置。
A case containing the electrode assembly;
First and second electrode terminals having different polarities and provided on one outer surface side of the case;
In the case, having an energization plate provided on an energization path between one of the first and second electrode terminals and the electrode assembly, and when the internal pressure of the case rises above a predetermined level A current interrupting device that interrupts the energization path by breaking the energization plate;
A power storage device comprising: a temperature detection element disposed on an outer surface side of the one surface of the case, closer to one of the first and second electrode terminals than the other of the first and second electrode terminals.
前記ケース内において、前記電極組立体を構成する複数の電極板の集電部が導電部材を介して前記第1及び第2の電極端子の一方と電気的に接続され、
前記温度検出素子は、前記一面を挟んで前記集電部と前記導電部材との接続部分と対向するように配置されている、請求項1に記載の蓄電装置。
In the case, current collectors of a plurality of electrode plates constituting the electrode assembly are electrically connected to one of the first and second electrode terminals via a conductive member,
The power storage device according to claim 1, wherein the temperature detection element is disposed so as to face a connection portion between the current collector and the conductive member with the one surface interposed therebetween.
前記ケース内において、前記電極組立体を構成する複数の電極板の集電部が導電部材を介して前記第1及び第2の電極端子の一方と電気的に接続され、
前記温度検出素子は、前記一面を挟んで前記導電部材と対向するように配置されている、請求項1又は2に記載の蓄電装置。
In the case, current collectors of a plurality of electrode plates constituting the electrode assembly are electrically connected to one of the first and second electrode terminals via a conductive member,
The power storage device according to claim 1, wherein the temperature detection element is disposed so as to face the conductive member across the one surface.
前記ケースを保持するホルダを更に備え、
前記ホルダは、
前記第1及び第2の電極端子をそれぞれ保持する一対の端子保持部と、
複数の前記ホルダの拘束に用いられる拘束ボルトが挿通される挿通部と、
前記温度検出素子を保持する素子保持部と、を有し、
前記第1及び第2の電極端子の一方が保持される前記端子保持部と前記素子保持部との間に前記挿通部が配置されている、請求項1〜3のいずれか一項に記載の蓄電装置。
A holder for holding the case;
The holder is
A pair of terminal holding portions respectively holding the first and second electrode terminals;
An insertion part through which a constraint bolt used for restraining the plurality of holders is inserted;
An element holding part for holding the temperature detection element,
The said insertion part is arrange | positioned between the said terminal holding | maintenance part and one of the said element holding | maintenance parts in which one of the said 1st and 2nd electrode terminals is hold | maintained. Power storage device.
前記ケースを保持するホルダを更に備え、
前記ホルダは、
前記第1及び第2の電極端子をそれぞれ保持する一対の端子保持部と、
複数の前記ホルダの拘束に用いられる拘束ボルトが挿通される挿通部と、
前記温度検出素子を保持する素子保持部と、を有し、
前記素子保持部、前記第1及び第2の電極端子の一方が保持される前記端子保持部、前記挿通部が、この順に配置されている、請求項1〜3のいずれか一項に記載の蓄電装置。
A holder for holding the case;
The holder is
A pair of terminal holding portions respectively holding the first and second electrode terminals;
An insertion part through which a constraint bolt used for restraining the plurality of holders is inserted;
An element holding part for holding the temperature detection element,
The said element holding | maintenance part, the said terminal holding | maintenance part by which one of the said 1st and 2nd electrode terminal is hold | maintained, and the said insertion part are arrange | positioned in this order. Power storage device.
前記ケースを保持するホルダを更に備え、
前記ホルダは、
前記第1及び第2の電極端子をそれぞれ保持する一対の端子保持部と、
複数の前記ホルダの拘束に用いられる拘束ボルトが挿通される挿通部と、
前記温度検出素子を保持する素子保持部と、を有し、
前記挿通部、前記素子保持部、前記第1及び第2の電極端子の一方が保持される前記端子保持部が、この順に配置されている、請求項1〜3のいずれか一項に記載の蓄電装置。
A holder for holding the case;
The holder is
A pair of terminal holding portions respectively holding the first and second electrode terminals;
An insertion part through which a constraint bolt used for restraining the plurality of holders is inserted;
An element holding part for holding the temperature detection element,
The said terminal holding part by which one of the said insertion part, the said element holding | maintenance part, and the said 1st and 2nd electrode terminal is hold | maintained is arrange | positioned in this order. Power storage device.
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Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2015141790A (en) * 2014-01-28 2015-08-03 トヨタ自動車株式会社 battery system
JP2015187914A (en) * 2012-08-09 2015-10-29 三洋電機株式会社 Power supply device, and electrically driven vehicle and power storage device having the same
JP2015230795A (en) * 2014-06-04 2015-12-21 トヨタ自動車株式会社 Secondary battery
JP2016018740A (en) * 2014-07-10 2016-02-01 株式会社豊田自動織機 Battery module

Family Cites Families (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP6059997B2 (en) * 2013-01-31 2017-01-11 古河電池株式会社 Lead acid battery

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2015187914A (en) * 2012-08-09 2015-10-29 三洋電機株式会社 Power supply device, and electrically driven vehicle and power storage device having the same
JP2015141790A (en) * 2014-01-28 2015-08-03 トヨタ自動車株式会社 battery system
JP2015230795A (en) * 2014-06-04 2015-12-21 トヨタ自動車株式会社 Secondary battery
JP2016018740A (en) * 2014-07-10 2016-02-01 株式会社豊田自動織機 Battery module

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