JP2017212091A - Battery pack - Google Patents

Battery pack Download PDF

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JP2017212091A
JP2017212091A JP2016103965A JP2016103965A JP2017212091A JP 2017212091 A JP2017212091 A JP 2017212091A JP 2016103965 A JP2016103965 A JP 2016103965A JP 2016103965 A JP2016103965 A JP 2016103965A JP 2017212091 A JP2017212091 A JP 2017212091A
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temperature
heat
battery cell
heat transfer
housing
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崇 酒井
Takashi Sakai
崇 酒井
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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    • 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 battery pack in which the temperature of battery cells can be controlled appropriately.SOLUTION: A battery pack includes a battery module having an array including multiple battery cells arranged in one direction, an enclosure for housing the battery module, a heat conduction member interposed between the array and the enclosure, a first heat transmission changeover member enabling heat transmission between the battery cell and the heat conduction member, by coming into contact with both battery cell and heat conduction member, and a second heat transmission changeover member enabling heat transmission between the housing and the heat conduction member, by coming into contact with both housing and heat conduction member. The first heat transmission changeover member enables heat transmission between the battery cell and the heat conduction member, when the temperature of the battery cell becomes higher than a first temperature, and the second heat transmission changeover member disables heat transmission between the housing and the heat conduction member, when the temperature of the outdoor air becomes higher than a second temperature equal to or higher than the first temperature.SELECTED DRAWING: Figure 5

Description

本発明は、電池パックに関する。   The present invention relates to a battery pack.

電池ホルダに保持された状態の電池セルが複数配列されてなる電池モジュールが知られている。特許文献1には、複数の電池(二次電池)と、複数の電池セルを収容する筐体と、電池セルにおける温度が所定の高温領域で複数の電池セルに接触すると共に所定の低温領域で複数の電池セルの各々の表面から離間する放熱部材と、を備える電池モジュール(組電池モジュール)が開示されている。   A battery module in which a plurality of battery cells held in a battery holder are arranged is known. In Patent Document 1, a plurality of batteries (secondary batteries), a housing that accommodates a plurality of battery cells, a temperature in the battery cells contacts the plurality of battery cells in a predetermined high temperature region, and in a predetermined low temperature region. A battery module (assembled battery module) is disclosed that includes a heat dissipating member that is separated from the surface of each of a plurality of battery cells.

特開2015−125930号公報JP2015-125930A

しかしながら、上記従来の電池モジュールでは、外気温の温度を考慮することなく、電池セルの温度のみで放熱の有無が制御される。このため、例えば、外気温が電池セルの温度よりも高い場合であっても、放熱部材は複数の電池セルに接触しているので、電池セルの温度上昇を助長することがある。   However, in the conventional battery module, the presence or absence of heat dissipation is controlled only by the temperature of the battery cell without considering the temperature of the outside air temperature. For this reason, for example, even when the outside air temperature is higher than the temperature of the battery cell, since the heat dissipation member is in contact with the plurality of battery cells, the temperature increase of the battery cell may be promoted.

そこで、本発明の目的は、電池セルの温度を適切に制御することができる電池パックを提供することにある。   Then, the objective of this invention is providing the battery pack which can control the temperature of a battery cell appropriately.

本発明の電池パックは、一方向に配列される複数の電池セルを含む配列体を有する電池モジュールと、電池モジュールを収容する筐体と、配列体と筐体との間に配置される熱伝導部材と、電池セルと熱伝導部材との両方に接触することによって、電池セルと熱伝導部材との間を伝熱可能にする第一伝熱切替部材と、筐体と熱伝導部材との両方に接触することによって、筐体と熱伝導部材との間を伝熱可能にする第二伝熱切替部材と、を備え、第一伝熱切替部材は、電池セルの温度が第一温度よりも高くなると、電池セルと熱伝導部材との間の伝熱を可能にし、第二伝熱切替部材は、外気の温度が第一温度以上である第二温度よりも高くなると、筐体と熱伝導部材との間の伝熱を不能にする。   The battery pack of the present invention includes a battery module having an array including a plurality of battery cells arranged in one direction, a housing that houses the battery module, and heat conduction that is disposed between the array and the housing. The first heat transfer switching member that enables heat transfer between the battery cell and the heat conducting member by contacting both the member, the battery cell, and the heat conducting member, and both the housing and the heat conducting member A second heat transfer switching member that enables heat transfer between the housing and the heat conduction member by contacting the first heat transfer switching member, wherein the temperature of the battery cell is lower than the first temperature. When it becomes higher, heat transfer between the battery cell and the heat conducting member is enabled, and when the temperature of the outside air becomes higher than the second temperature that is equal to or higher than the first temperature, the second heat transfer switching member Disables heat transfer between members.

この構成の電池パックでは、電池セルの温度が第一温度よりも高くなると、電池セルと熱伝導部材との間を伝熱可能な状態にする第一伝熱切替部材を備えているので、第一温度よりも高くなった電池セルの温度を熱伝導部材に伝熱させることができる。これにより、第一温度よりも高くなった電池セルの温度を低下させることができる。また、この構成の電池パックでは、外気の温度が第一温度と同じ又は第一温度よりも高い第二温度よりも高くなると、筐体と熱伝導部材との間を伝熱不能な状態とする第二伝熱切替部材を備えているので、第二温度より高くなった外気から熱伝導部材に接触する電池セルに熱が伝熱されることが抑制される。これにより、外気から筐体に伝わる熱が原因となって電池セルの温度が第一温度よりも上昇することを抑制できる。この結果、電池セルの温度を適切に制御することができる。   The battery pack having this configuration includes the first heat transfer switching member that enables heat transfer between the battery cell and the heat conducting member when the temperature of the battery cell becomes higher than the first temperature. The temperature of the battery cell that has become higher than one temperature can be transferred to the heat conducting member. Thereby, the temperature of the battery cell which became higher than 1st temperature can be reduced. Further, in the battery pack having this configuration, when the temperature of the outside air becomes higher than the second temperature that is the same as the first temperature or higher than the first temperature, the heat transfer between the housing and the heat conducting member is disabled. Since the 2nd heat transfer switching member is provided, it is suppressed that heat is transferred from the external air which became higher than 2nd temperature to the battery cell which contacts a heat conductive member. Thereby, it can suppress that the temperature of a battery cell raises rather than 1st temperature due to the heat | fever transmitted to a housing | casing from external air. As a result, the temperature of the battery cell can be appropriately controlled.

第一伝熱切替部材は、電池セルにおいて一方向に直交する主面の一方に接触配置されており、電池セルの温度が第一温度よりも高くなると、熱伝導部材に対して離反する状態から熱伝導部材に接触する状態となり、第二伝熱切替部材は、筐体と熱伝導部材との間において筐体に接触配置され、筐体の温度が第二温度よりも高くなると、熱伝導部材に接触する状態から熱伝導部材に対して離反する状態となってもよい。   The first heat transfer switching member is disposed in contact with one of the main surfaces orthogonal to one direction in the battery cell, and when the temperature of the battery cell is higher than the first temperature, the first heat transfer switching member is separated from the heat conduction member. When the second heat transfer switching member is placed in contact with the housing between the housing and the heat conducting member, and the temperature of the housing becomes higher than the second temperature, the heat conducting member is brought into contact with the heat conducting member. It may be in a state of being separated from the heat conducting member from the state of contacting with the heat conducting member.

この構成の電池パックでは、電池セルの温度が第一温度よりも高くなると熱伝導部材に対して離反する状態から熱伝導部材に接触する状態となる第一伝熱切替部材を備えているので、第一温度よりも高くなった電池セルの熱を熱伝導部材に伝熱させることができる。これにより、第一温度よりも高くなった電池セルの温度を低下させることができる。また、この構成の電池パックでは、筐体の温度が第一温度と同じ又は第一温度よりも高い第二温度よりも高くなると、熱伝導部材に接触する状態から熱伝導部材に対して離反する状態となる第二伝熱切替部材を備えているので、第二温度より高くなった筐体から熱伝導部材に接触する電池セルに熱が伝熱されることが抑制される。これにより、外気から筐体に伝わる熱が原因となって電池セルの温度が第一温度よりも上昇することを抑制できる。この結果、電池セルの温度を適切に制御することができる。   Since the battery pack of this configuration includes the first heat transfer switching member that comes into contact with the heat conduction member from the state separated from the heat conduction member when the temperature of the battery cell is higher than the first temperature, The heat of the battery cell that has become higher than the first temperature can be transferred to the heat conducting member. Thereby, the temperature of the battery cell which became higher than 1st temperature can be reduced. Further, in the battery pack having this configuration, when the temperature of the housing becomes higher than the second temperature which is the same as the first temperature or higher than the first temperature, the case is separated from the state in contact with the heat conductive member. Since the 2nd heat-transfer switching member used as a state is provided, it is suppressed that heat is transferred from the housing | casing which became higher than 2nd temperature to the battery cell which contacts a heat conductive member. Thereby, it can suppress that the temperature of a battery cell raises rather than 1st temperature due to the heat | fever transmitted to a housing | casing from external air. As a result, the temperature of the battery cell can be appropriately controlled.

第一伝熱切替部材は、電池セルの温度が第一温度よりも低い第三温度未満になると、電池セルと熱伝導部材との間の伝熱を可能にすると共に、電池セルの温度が第一温度よりも高くなると、電池セルと熱伝導部材との間の伝熱を可能にし、第二伝熱切替部材は、外気の温度が第二温度よりも低い第四温度未満になると、筐体と熱伝導部材との間の伝熱を不能にすると共に、外気の温度が第一温度以上である第二温度よりも高くなると、筐体と熱伝導部材との間の伝熱を不能にしてもよい。   The first heat transfer switching member enables heat transfer between the battery cell and the heat conducting member when the temperature of the battery cell becomes lower than the third temperature lower than the first temperature, and the temperature of the battery cell is the first temperature. When the temperature is higher than one temperature, heat transfer between the battery cell and the heat conduction member is enabled, and the second heat transfer switching member is configured such that when the outside air temperature is lower than the fourth temperature and lower than the fourth temperature, the housing The heat transfer between the housing and the heat conducting member is disabled when the temperature of the outside air becomes higher than the second temperature which is equal to or higher than the first temperature. Also good.

この構成の電池パックの構成では、電池セルの温度が第一温度よりも低い第三温度未満になると、電池セルと熱伝導部材との間が伝熱可能な状態になるので、電池セルが適正温度に満たない場合に熱伝導部材の熱を電池セルに伝熱可能になる。これにより、電池セルの温度を低下させることができるという効果に加えて、電池セルが適正温度以下の場合には電池セルの温度を上昇させることができるという効果が得られる。また、この構成の電池パックの構成では、外気の温度が第二温度よりも低い第四温度未満になると、筐体と熱伝導部材との間が伝熱不能な状態になるので、電池セルが適正温度以下の外気に熱を奪われ、電池セルの温度が低下し過ぎることを抑制できる。これにより、外気から筐体に伝わる熱が原因となって熱伝導部材に接触する電池セルの温度が上昇することを抑制できるという効果に加えて、熱伝導部材に接触する電池セルの温度が低くなり過ぎることを抑制できるという効果が得られる。この結果、電池セルの温度をより一層適切に制御することができる。   In the configuration of the battery pack of this configuration, when the temperature of the battery cell becomes lower than the third temperature lower than the first temperature, the battery cell and the heat conducting member are in a state capable of transferring heat, so the battery cell is appropriate. When the temperature is not reached, the heat of the heat conducting member can be transferred to the battery cell. Thereby, in addition to the effect that the temperature of the battery cell can be lowered, the effect that the temperature of the battery cell can be raised when the battery cell is below the appropriate temperature is obtained. Further, in the configuration of the battery pack of this configuration, when the temperature of the outside air becomes lower than the fourth temperature lower than the second temperature, the heat transfer between the housing and the heat conducting member becomes impossible. It is possible to suppress the heat of the outside air below the appropriate temperature from being lost and the temperature of the battery cell too low. Thereby, in addition to the effect that it can suppress that the temperature of the battery cell which contacts a heat conductive member rises due to the heat transmitted to a housing | casing from external air, the temperature of the battery cell which contacts a heat conductive member is low. The effect that it can suppress becoming too much is acquired. As a result, the temperature of the battery cell can be more appropriately controlled.

第一伝熱切替部材は、電池セルにおいて一方向に直交する主面の一方に接触配置されており、電池セルの温度が第一温度よりも低い第三温度未満になると熱伝導部材から離反する状態から熱伝導部材に接触する状態になると共に、電池セルの温度が第一温度よりも高くなると熱伝導部材に対して離反する状態から熱伝導部材に接触する状態となり、第二伝熱切替部材は、筐体と熱伝導部材との間において筐体に接触配置され、筐体の温度が第二温度よりも低い第四温度未満になると熱伝導部材に接触する状態から熱伝導部材に対して離反する状態になると共に、筐体の温度が第二温度よりも高くなると熱伝導部材に接触する状態から熱伝導部材に対して離反する状態となってもよい。   The first heat transfer switching member is disposed in contact with one of the main surfaces orthogonal to one direction in the battery cell, and is separated from the heat conducting member when the temperature of the battery cell becomes lower than the third temperature lower than the first temperature. When the battery cell is brought into contact with the heat conducting member from the state, and when the temperature of the battery cell is higher than the first temperature, the state is brought into contact with the heat conducting member from the state separated from the heat conducting member, and the second heat transfer switching member Is disposed in contact with the housing between the housing and the heat conducting member, and when the temperature of the housing is lower than the fourth temperature lower than the second temperature, the heat conducting member is contacted with respect to the heat conducting member. In addition to being in a state of separating, the housing may be separated from the state of contact with the heat conducting member when the temperature of the housing is higher than the second temperature.

この構成の電池パックの構成では、電池セルの温度が第一温度よりも低い第三温度未満になると熱伝導部材から離反する状態から熱伝導部材に接触する状態になるので、電池セルが適正温度に満たない場合に熱伝導部材の熱が電池セルに伝熱可能になる。これにより、電池セルの温度を低下させることができるという効果に加えて、電池セルが適正温度以下の場合には温度を上昇させることができるという効果が得られる。また、この構成の電池パックの構成では、筐体の温度が第二温度よりも低い第四温度未満になると熱伝導部材に接触する状態から熱伝導部材に対して離反する状態になるので、電池セルが適正温度以下の筐体に熱を奪われ、電池セルの温度が低下し過ぎることを抑制できる。これにより、外気から筐体に伝わる熱が原因となって熱伝導部材に接触する電池セルの温度が上昇することを抑制できるという効果に加えて、熱伝導部材に接触する電池セルの温度が低くなり過ぎることを抑制できるという効果が得られる。この結果、電池セルの温度をより一層適切に制御することができる。   In the configuration of the battery pack having this configuration, when the temperature of the battery cell becomes lower than the third temperature lower than the first temperature, the battery cell is brought into contact with the heat conductive member from the state separated from the heat conductive member. If it is less than 1, the heat of the heat conducting member can be transferred to the battery cell. Thereby, in addition to the effect that the temperature of the battery cell can be lowered, the effect that the temperature can be raised when the battery cell is below the appropriate temperature is obtained. Further, in the configuration of the battery pack of this configuration, when the temperature of the housing is lower than the fourth temperature lower than the second temperature, the battery pack is separated from the heat conductive member from the state in contact with the heat conductive member. It can suppress that a cell loses heat to the housing | casing below appropriate temperature, and the temperature of a battery cell falls too much. Thereby, in addition to the effect that it can suppress that the temperature of the battery cell which contacts a heat conductive member rises due to the heat transmitted to a housing | casing from external air, the temperature of the battery cell which contacts a heat conductive member is low. The effect that it can suppress becoming too much is acquired. As a result, the temperature of the battery cell can be more appropriately controlled.

第一伝熱切替部材は及び第二伝熱切替部材は、バイメタルにより形成されており、第一伝熱切替部材は、電池セルの表面温度に応じて状態が切り替わり、第二伝熱切替部材は、筐体の表面温度に応じて状態が切り替わってもよい。   The first heat transfer switching member and the second heat transfer switching member are formed of bimetal, the state of the first heat transfer switching member is switched according to the surface temperature of the battery cell, and the second heat transfer switching member is The state may be switched according to the surface temperature of the housing.

この構成の電池パックの構成では、電池セルの温度に応じて状態が切り替わる第一伝熱切替部材、及び筐体の温度に応じて状態が切り替わる第二伝熱切替部材を容易に構成することができる。   In the configuration of the battery pack of this configuration, it is possible to easily configure the first heat transfer switching member whose state is switched according to the temperature of the battery cell and the second heat transfer switching member whose state is switched according to the temperature of the housing. it can.

配列の方向において配列体の中心部近くに位置する第一伝熱切替部材ほど低い温度で電池セルと熱伝導部材との間を伝熱可能にしてもよい。   The first heat transfer switching member located near the center of the array in the direction of the array may be configured to be able to transfer heat between the battery cell and the heat conducting member at a lower temperature.

この構成の電池パックの構成では、配列体において端部に配置される電池セルに比べて放熱性に劣る配列体において中心部に配置される電池セルの放熱性を高めることができる。これにより、電池セルの温度を均一化することができる。   In the configuration of the battery pack having this configuration, the heat dissipation of the battery cell disposed in the center portion in the array body inferior in heat dissipation compared to the battery cell disposed in the end portion in the array body can be enhanced. Thereby, the temperature of a battery cell can be equalize | homogenized.

第二伝熱切替部材は、一の部材により形成されていてもよい。   The second heat transfer switching member may be formed of one member.

この構成の電池パックでは、複数の電池セルの温度を均一化することができる。   In the battery pack having this configuration, the temperatures of the plurality of battery cells can be made uniform.

本発明によれば、電池セルの温度をより適切に制御することができる。   According to the present invention, the temperature of the battery cell can be controlled more appropriately.

一実施形態における電池パックを示す斜視図である。It is a perspective view which shows the battery pack in one Embodiment. 図1の電池モジュールを示す側面図である。It is a side view which shows the battery module of FIG. 図2の電池セル、電池ホルダ及び伝熱プレートを示す分解斜視図である。It is a disassembled perspective view which shows the battery cell of FIG. 2, a battery holder, and a heat-transfer plate. (a)伝熱プレートの第二本体部を拡大して示した拡大断面図である。(b)電池セルの温度が第一温度よりも高くなった場合の第二本体部を拡大して示した拡大断面図である。(A) It is the expanded sectional view which expanded and showed the 2nd main-body part of the heat-transfer plate. (B) It is the expanded sectional view which expanded and showed the 2nd main-body part in case the temperature of a battery cell becomes higher than 1st temperature. 筐体に固定された電池モジュールの一状態を示す側面図である。It is a side view which shows one state of the battery module fixed to the housing | casing. 筐体に固定された電池モジュールの一状態を示す側面図である。It is a side view which shows one state of the battery module fixed to the housing | casing. (a)伝熱切替部材の斜視図である。(b)伝熱切替部材の一状態を示す側面図である。(c)伝熱切替部材の一状態を示す側面図である。(A) It is a perspective view of a heat-transfer switching member. (B) It is a side view which shows one state of the heat-transfer switching member. (C) It is a side view which shows one state of the heat-transfer switching member. 筐体に固定された電池モジュールの一状態を示す側面図である。It is a side view which shows one state of the battery module fixed to the housing | casing. 筐体に固定された電池モジュールの一状態を示す側面図である。It is a side view which shows one state of the battery module fixed to the housing | casing. 変形例1の電池パックに備わる伝熱プレート及び伝熱切替部材の状態の変化を示す図である。It is a figure which shows the change of the state of the heat-transfer plate with which the battery pack of the modification 1 is provided, and a heat-transfer switching member. 変形例2の電池パックにおける機能構成を示す機能ブロック図である。12 is a functional block diagram showing a functional configuration in a battery pack according to modification example 2. FIG.

以下、図面を参照して第一実施形態に係る電池パック10について説明する。図面の説明において、同一要素には同一符号を付し、重複する説明を省略する。図面の寸法比率は、説明の電池モジュール及び電池パックと必ずしも一致していない。   Hereinafter, the battery pack 10 according to the first embodiment will be described with reference to the drawings. In the description of the drawings, the same elements are denoted by the same reference numerals, and redundant description is omitted. The dimensional ratios in the drawings do not necessarily match the battery modules and battery packs described.

図1に示されるように、電池パック10は、筐体11を有している。筐体11には複数の電池モジュール21が収容されている。筐体11は、四角箱状をなしており、矩形平板状の底板12と、底板12の周縁から立設する矩形平板状の側壁13と、側壁13によって囲まれる開口部を閉塞する矩形平板状の天板14と、を有している。   As shown in FIG. 1, the battery pack 10 has a housing 11. A plurality of battery modules 21 are accommodated in the housing 11. The casing 11 has a rectangular box shape, a rectangular flat plate-like bottom plate 12, a rectangular flat plate-like side wall 13 standing from the periphery of the bottom plate 12, and a rectangular flat plate shape that closes an opening surrounded by the side wall 13. The top plate 14 is provided.

図2に示されるように、電池モジュール21は、複数の電池セル23(図1参照)と、一対のブラケット25,25と、弾性部材47と、ボルトB及びナットNと、伝熱プレート(第一伝熱切替部材)41と、熱伝導部材51と、伝熱切替部材(第二伝熱切替部材)61と、を備えている。   2, the battery module 21 includes a plurality of battery cells 23 (see FIG. 1), a pair of brackets 25, 25, an elastic member 47, bolts B and nuts N, and a heat transfer plate (first plate). One heat transfer switching member) 41, a heat conduction member 51, and a heat transfer switching member (second heat transfer switching member) 61.

電池セル23は、例えば、リチウムイオン二次電池及びニッケル水素蓄電池などの二次電池である。電池セル23は、電池ホルダ22に保持された状態で一方向Dに並設されている。図3に示されるように、電池ホルダ22は、第一被覆部31と、第二被覆部32と、第三被覆部33と、第四被覆部34と、一対の脚部36,36と、を有している。   The battery cell 23 is a secondary battery such as a lithium ion secondary battery or a nickel hydride storage battery. The battery cells 23 are juxtaposed in one direction D while being held by the battery holder 22. As shown in FIG. 3, the battery holder 22 includes a first covering portion 31, a second covering portion 32, a third covering portion 33, a fourth covering portion 34, a pair of leg portions 36 and 36, have.

第一被覆部31は、矩形平板状に形成され、電池セル23の底面24cを覆う部分である。第二被覆部32及び第三被覆部33は、第一被覆部31の長手方向両端から立設する部分である。第二被覆部32及び第三被覆部33は、矩形平板状に形成され、電池セル23の側面24bを覆う。第四被覆部34は、矩形平板状に形成され、電池セル23の一方の主面(厚み方向に直交する面)24aの一部を覆う部分である。第四被覆部34は、第二被覆部32の長手方向における第一端部32a(第一被覆部31が設けられる端部とは反対側の端部)と、第三被覆部33の長手方向における第一端部33a(第一被覆部31が設けられる端部とは反対側の端部)とに接続されている。第四被覆部34は、その厚み方向が電池セル23の並設方向と一致し、長手方向が第二被覆部32及び第三被覆部33の対向方向と一致するように配置されている。第一被覆部31、第二被覆部32、第三被覆部33に囲まれる領域は、電池セル23が収容される収容部Sとなる。   The first covering portion 31 is a portion that is formed in a rectangular flat plate shape and covers the bottom surface 24 c of the battery cell 23. The second covering portion 32 and the third covering portion 33 are portions erected from both longitudinal ends of the first covering portion 31. The second covering portion 32 and the third covering portion 33 are formed in a rectangular flat plate shape and cover the side surface 24 b of the battery cell 23. The fourth covering portion 34 is a portion that is formed in a rectangular flat plate shape and covers a part of one main surface (surface orthogonal to the thickness direction) 24 a of the battery cell 23. The fourth covering portion 34 includes a first end portion 32 a (an end portion opposite to the end portion on which the first covering portion 31 is provided) in the longitudinal direction of the second covering portion 32 and a longitudinal direction of the third covering portion 33. Is connected to the first end 33a (the end opposite to the end where the first covering portion 31 is provided). The fourth covering portion 34 is arranged such that the thickness direction thereof coincides with the juxtaposed direction of the battery cells 23 and the longitudinal direction thereof coincides with the opposing direction of the second covering portion 32 and the third covering portion 33. A region surrounded by the first covering portion 31, the second covering portion 32, and the third covering portion 33 is a housing portion S in which the battery cell 23 is housed.

第二被覆部32及び第三被覆部33の長手方向における第一端部32a,33aには、それぞれ第二被覆部32及び第三被覆部33と連設され、第二被覆部32及び第三被覆部33の長手方向に延びる矩形平板状の突出部35が設けられている。また、第二被覆部32及び第三被覆部33の長手方向における第二端部32c、33cには、それぞれ四角柱状の脚部36,36が設けられている。   The first end portions 32a and 33a in the longitudinal direction of the second covering portion 32 and the third covering portion 33 are connected to the second covering portion 32 and the third covering portion 33, respectively. A rectangular flat plate-like projecting portion 35 extending in the longitudinal direction of the covering portion 33 is provided. In addition, square columnar leg portions 36 and 36 are provided at second end portions 32 c and 33 c in the longitudinal direction of the second covering portion 32 and the third covering portion 33, respectively.

図1に示されるように、一対のブラケット25,25は、一方向Dに並設された電池セル23の並設方向両端に設けられている。ブラケット25は、挟持部25aと、固定部25bと、固定部25bに形成された挿通孔25cと、を有している。電池モジュール21は、ブラケット25の固定部25bが側壁13に固定されることによって、筐体11に固定される。具体的には、挿通孔25cに挿通されるボルト(図示せず)が側壁13にねじ込まれることにより、ブラケット25、すなわち電池モジュール21が、筐体11に固定される。   As shown in FIG. 1, the pair of brackets 25, 25 are provided at both ends of the battery cells 23 arranged in parallel in one direction D. The bracket 25 has a clamping part 25a, a fixing part 25b, and an insertion hole 25c formed in the fixing part 25b. The battery module 21 is fixed to the housing 11 by fixing the fixing portion 25 b of the bracket 25 to the side wall 13. Specifically, a bolt (not shown) inserted through the insertion hole 25 c is screwed into the side wall 13, whereby the bracket 25, that is, the battery module 21 is fixed to the housing 11.

図2に示されるように、弾性部材47は、配列体28の一方の端部に配置されている。弾性部材47は、ウレタン系ゴム等の材料により形成されている。配列体28及び弾性部材47は、後段にて詳述するボルトB及びナットNによって、電池セル23の配列方向(一方向D)に加圧した状態で拘束される。弾性部材47は、電池セル23の膨張を一定の範囲で吸収する。   As shown in FIG. 2, the elastic member 47 is disposed at one end of the array 28. The elastic member 47 is made of a material such as urethane rubber. The array body 28 and the elastic member 47 are restrained in a state where they are pressed in the array direction (one direction D) of the battery cells 23 by bolts B and nuts N described in detail later. The elastic member 47 absorbs the expansion of the battery cell 23 within a certain range.

ボルトB及びナットNは、一対のブラケット25,25同士を連結する。一対のブラケット25,25には、ボルトBが挿通されている。ボルトBは、一方のブラケット25から、他方のブラケット25に向けて挿通されると共に、他方のブラケット25を挿通した位置でナットNに螺合されている。一対のブラケット25,25は、一方向Dに配列される複数の電池セル23と、電池セル23の一方向D(配列の方向)に交差する面である主面24aに接触するように配置される複数の伝熱プレート41と、からなる配列体28及び弾性部材47を一方向Dに加圧した状態で拘束する。   The bolt B and the nut N connect the pair of brackets 25 and 25 to each other. Bolts B are inserted through the pair of brackets 25, 25. The bolt B is inserted from one bracket 25 toward the other bracket 25 and is screwed into the nut N at a position where the other bracket 25 is inserted. The pair of brackets 25, 25 are arranged so as to contact a plurality of battery cells 23 arranged in one direction D and a main surface 24 a that is a surface intersecting one direction D (array direction) of the battery cells 23. The plurality of heat transfer plates 41 and the array body 28 and the elastic member 47 are restrained in a state of being pressed in one direction D.

図3及び図5に示されるように、伝熱プレート41は、電池ホルダ22に収容された電池セル23の主面24aに接触して配置される板状の部材である。伝熱プレート41は、矩形平板状の第一本体部42と、第一本体部42の長手方向一端から直角に屈曲する矩形平板状の第二本体部43と、を有している。第一本体部42は、電池セル23の厚み方向において電池セル23と隣り合った状態で収容部Sに設けられる。第二本体部43は、第二被覆部32の一方の側面(第二被覆部32の厚み方向の面において収容部Sとは反対側の面)を覆っている。第二本体部43は、後段にて詳述する熱伝導部材51と対向する対向面を有する。   As shown in FIGS. 3 and 5, the heat transfer plate 41 is a plate-like member disposed in contact with the main surface 24 a of the battery cell 23 accommodated in the battery holder 22. The heat transfer plate 41 includes a rectangular flat plate-shaped first main body portion 42 and a rectangular flat plate-shaped second main body portion 43 bent at a right angle from one longitudinal end of the first main body portion 42. The first main body portion 42 is provided in the accommodating portion S in a state adjacent to the battery cell 23 in the thickness direction of the battery cell 23. The second main body portion 43 covers one side surface of the second covering portion 32 (the surface on the opposite side of the accommodating portion S in the thickness direction surface of the second covering portion 32). The 2nd main-body part 43 has an opposing surface facing the heat conductive member 51 explained in full detail in a back | latter stage.

伝熱プレート41における第二本体部43は、例えば、図4(a)に示されるように、熱膨張係数が互いに異なる二種類の金属板43a,43bが貼り合わされたバイメタルにより形成されており、電池セル23の温度Tbに応じて形状が変形する。金属板43bの熱膨張係数は、金属板43aの熱膨張係数よりも小さい。第二本体部43は、電池セル23に接触する第一本体部42から熱が伝熱されると、図4(a)に示される直線形状から、図4(b)に示されるように、端部(左端)が下方に反る形状に変形する。   For example, as shown in FIG. 4A, the second main body portion 43 of the heat transfer plate 41 is formed of a bimetal in which two types of metal plates 43a and 43b having different thermal expansion coefficients are bonded to each other. The shape is deformed according to the temperature Tb of the battery cell 23. The thermal expansion coefficient of the metal plate 43b is smaller than the thermal expansion coefficient of the metal plate 43a. When heat is transferred from the first main body portion 42 that contacts the battery cell 23, the second main body portion 43 changes from the linear shape shown in FIG. 4 (a) to the end as shown in FIG. 4 (b). The part (left end) is deformed to warp downward.

このような構成の第二本体部43を有することにより、伝熱プレート41は、電池セル23の温度Tbが第一温度T1よりも高くなると、熱伝導部材51に対して離反する状態(図6参照)から熱伝導部材51に接触する状態(図5参照)となる。例えば、電池セル23の温度Tbが60℃よりも高くなることがないように第一温度T1が適宜設定され、金属板43a,43bの材料も適宜選択される。例えば、金属板43aの材料を銅合金とし、金属板43bの材料をインバー(不変鋼)とすることができる。   By having the second main body 43 having such a configuration, the heat transfer plate 41 is separated from the heat conducting member 51 when the temperature Tb of the battery cell 23 becomes higher than the first temperature T1 (FIG. 6). (Refer to FIG. 5). For example, the first temperature T1 is appropriately set so that the temperature Tb of the battery cell 23 does not become higher than 60 ° C., and the materials of the metal plates 43a and 43b are also appropriately selected. For example, the material of the metal plate 43a can be a copper alloy, and the material of the metal plate 43b can be invar (invariant steel).

図5に示される熱伝導部材51は、その厚みが、例えば、0.5mm〜8.0mmでほぼ一様のシート状部材である。熱伝導部材51の例は、TIM(Thermal Interface Material)である。熱伝導部材51は、一対のブラケット25,25に適宜の方法にて固定されている。熱伝導部材51は、絶縁性を有している。このような絶縁性を有する熱伝導部材として、金属フィラーを含まない熱伝導シートを用いることができる。また、このような熱伝導部材51には、シリコーン系の熱伝導シートと、アクリル系の熱伝導シートとがある。シリコーン系の熱伝導シートを用いる場合には、耐寒性及び耐熱性に優れているため使用温度の範囲を広くすることができる。また、金属フィラーを使用していないシリコーン系の熱伝導シートは、温度及び周波数による電気特性の変化が小さいため絶縁材料に適する。一方、アクリル系のシートは、シロキサンガスの発生がないため、密閉空間における機械接点の接点障害、及び磨耗が発生しない。また、アクリル系のシートは、一般的にシリコーンより安価である。   The heat conductive member 51 shown in FIG. 5 is a substantially uniform sheet-like member having a thickness of, for example, 0.5 mm to 8.0 mm. An example of the heat conducting member 51 is TIM (Thermal Interface Material). The heat conducting member 51 is fixed to the pair of brackets 25 and 25 by an appropriate method. The heat conducting member 51 has insulating properties. As the heat conductive member having such an insulating property, a heat conductive sheet not including a metal filler can be used. In addition, the heat conductive member 51 includes a silicone heat conductive sheet and an acrylic heat conductive sheet. When a silicone-based heat conductive sheet is used, the range of operating temperature can be widened because of excellent cold resistance and heat resistance. In addition, a silicone-based heat conductive sheet that does not use a metal filler is suitable for an insulating material because the change in electrical characteristics due to temperature and frequency is small. On the other hand, since the acryl-based sheet does not generate siloxane gas, the contact failure of the mechanical contact and the abrasion do not occur in the sealed space. Acrylic sheets are generally less expensive than silicone.

伝熱切替部材61は、筐体11と熱伝導部材51との間において筐体11に接触配置される。伝熱切替部材61は、例えば、図7(a)に示されるように、熱膨張係数が互いに異なる二種類の金属板61b,61cが貼り合わされたバイメタルにより形成されており、筐体11(側壁13)の温度Tcに応じて形状が変形する。金属板61bの熱膨張係数は、金属板61cの熱膨張係数よりも大きい。伝熱切替部材61では、筐体11に接触する接触部61aから熱が伝熱されたときの金属板61bの膨張量が、金属板61cの膨張量よりも大きい。このため、伝熱切替部材61は、筐体11に接触する接触部61aから熱が伝熱されると、図7(b)に示される形状から、図7(c)に示されるような高さ方向(熱伝導部材51が配置されている方向)に屈曲した形状に変形し、伝熱切替部材61と熱伝導部材51とが離反する(非接触の)状態となる。   The heat transfer switching member 61 is disposed in contact with the housing 11 between the housing 11 and the heat conducting member 51. For example, as shown in FIG. 7A, the heat transfer switching member 61 is formed of a bimetal in which two types of metal plates 61b and 61c having different thermal expansion coefficients are bonded to each other, and the casing 11 (side wall The shape is deformed according to the temperature Tc of 13). The thermal expansion coefficient of the metal plate 61b is larger than the thermal expansion coefficient of the metal plate 61c. In the heat transfer switching member 61, the amount of expansion of the metal plate 61b when heat is transferred from the contact portion 61a that contacts the housing 11 is larger than the amount of expansion of the metal plate 61c. For this reason, when heat is transferred from the contact portion 61a that contacts the housing 11, the heat transfer switching member 61 has a height as shown in FIG. It is deformed into a shape bent in the direction (direction in which the heat conducting member 51 is disposed), and the heat transfer switching member 61 and the heat conducting member 51 are separated (non-contact).

このような構成の伝熱切替部材61を有することにより、伝熱切替部材61は、筐体11の温度Tcが第一温度T1と同じ又は第一温度T1よりも高い第二温度T2よりも高くなると、熱伝導部材51に接触する状態(図5参照)から熱伝導部材51に対して離反する状態(図8参照)となる。例えば、電池セル23の温度Tbが60℃よりも高くなることがないように第二温度T2が適宜設定され、金属板61b,61cの材料も適宜選択される。例えば、金属板61bの材料を銅合金とし、金属板61cの材料をインバー(不変鋼)とすることができる。   By having the heat transfer switching member 61 having such a configuration, the heat transfer switching member 61 has a temperature Tc of the housing 11 that is the same as the first temperature T1 or higher than the second temperature T2 that is higher than the first temperature T1. If it becomes, it will be in the state (refer FIG. 8) which leaves | separates with respect to the heat conductive member 51 from the state (refer FIG. 5) which contacts the heat conductive member 51. FIG. For example, the second temperature T2 is appropriately set so that the temperature Tb of the battery cell 23 does not become higher than 60 ° C., and the materials of the metal plates 61b and 61c are also appropriately selected. For example, the material of the metal plate 61b can be a copper alloy, and the material of the metal plate 61c can be invar (invariant steel).

次に、上記実施形態の電池パック10の作用効果について説明する。本実施形態の電池パック10では、電池セル23の温度Tbが第一温度T1よりも高くなると熱伝導部材51に対して離反する状態(図6参照)から熱伝導部材51に接触する状態(図5参照)となる伝熱プレート41を備えているので、第一温度T1よりも高くなった電池セル23の温度Tbを熱伝導部材51に伝熱させることができる。これにより、電池セル23の温度Tbを低下させ、電池セル23の温度Tbが、例えば60℃よりも高くなることを抑制できる。   Next, the effect of the battery pack 10 of the said embodiment is demonstrated. In the battery pack 10 of the present embodiment, when the temperature Tb of the battery cell 23 becomes higher than the first temperature T1, the state (see FIG. 6) is in contact with the heat conductive member 51 from the state where the temperature is separated from the heat conductive member 51 (see FIG. 6). 5), the temperature Tb of the battery cell 23 that has become higher than the first temperature T1 can be transferred to the heat conducting member 51. Thereby, the temperature Tb of the battery cell 23 can be reduced, and the temperature Tb of the battery cell 23 can be suppressed from becoming higher than 60 ° C., for example.

また、本実施形態の電池パック10では、筐体11の温度Tcが第二温度T2よりも高くなると、熱伝導部材51に接触する状態(図5参照)から熱伝導部材51に対して離反する状態(図8参照)となる伝熱切替部材61を備えているので、第二温度T2より高くなった筐体11から熱伝導部材51に伝熱プレート41を介して接触する電池セル23に熱が伝熱されることが抑制される。これにより、筐体11の熱が原因となって電池セル23の温度Tbが上昇し、電池セル23の温度Tbが、例えば60℃よりも高くなることが抑制できる。この結果、電池セル23の温度Tbをより適切に制御することができる。   Further, in the battery pack 10 of the present embodiment, when the temperature Tc of the housing 11 becomes higher than the second temperature T2, the battery pack 10 is separated from the heat conductive member 51 from the state in contact with the heat conductive member 51 (see FIG. 5). Since the heat transfer switching member 61 that is in a state (see FIG. 8) is provided, the battery cell 23 that is in contact with the heat conductive member 51 via the heat transfer plate 41 from the casing 11 that is higher than the second temperature T2 is heated. Heat transfer is suppressed. Thereby, the temperature Tb of the battery cell 23 rises due to the heat of the housing 11, and the temperature Tb of the battery cell 23 can be suppressed from becoming higher than 60 ° C., for example. As a result, the temperature Tb of the battery cell 23 can be controlled more appropriately.

なお、電池セル23の温度Tbが第一温度T1以下となり、筐体11の温度Tcが第二温度T2よりも高くなると、図9に示されるように、伝熱プレート41は、熱伝導部材51に対して離反する状態となり、伝熱切替部材61も、熱伝導部材51に対して離反する状態となる。   When the temperature Tb of the battery cell 23 becomes equal to or lower than the first temperature T1 and the temperature Tc of the housing 11 becomes higher than the second temperature T2, as shown in FIG. The heat transfer switching member 61 is also in a state of separating from the heat conducting member 51.

更に、上記実施形態の伝熱プレート41及び伝熱切替部材61は、バイメタルにより形成されているので、電池セル23の温度Tbが第一温度T1よりも高くなると熱伝導部材51に対して離反する状態(図6参照)から熱伝導部材51に接触する状態(図5参照)となる伝熱プレート41、及び筐体11の温度Tcが第二温度T2よりも高くなると、熱伝導部材51に接触する状態(図5参照)から熱伝導部材51に対して離反する状態(図8参照)となる伝熱切替部材61を容易に構成することができる。   Furthermore, since the heat transfer plate 41 and the heat transfer switching member 61 of the above embodiment are formed of bimetal, they are separated from the heat conducting member 51 when the temperature Tb of the battery cell 23 becomes higher than the first temperature T1. When the temperature Tc of the heat transfer plate 41 and the housing 11 that come into contact with the heat conducting member 51 from the state (see FIG. 6) and the housing 11 become higher than the second temperature T2, the heat conducting member 51 comes into contact. It is possible to easily configure the heat transfer switching member 61 that is in a state (see FIG. 8) that is separated from the heat conducting member 51 from the state (see FIG. 5).

更に、上記実施形態の伝熱切替部材61は、一の部材により形成されているので、複数の電池セル23の温度Tbを均一化することができる。   Furthermore, since the heat transfer switching member 61 of the above embodiment is formed of one member, the temperatures Tb of the plurality of battery cells 23 can be made uniform.

以上、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ず、発明の趣旨を逸脱しない範囲で種々の変更が可能である。   Although one embodiment has been described above, the present invention is not limited to the above embodiment, and various modifications can be made without departing from the spirit of the invention.

<変形例1>
上記実施形態の伝熱プレート41に代えて、電池セル23の温度Tbが第一温度T1よりも低い第三温度T3未満になると熱伝導部材51から離反する状態から熱伝導部材51に接触する状態になると共に、電池セル23の温度Tbが第一温度T1よりも高くなると熱伝導部材51に対して離反する状態から熱伝導部材51に接触する状態となる伝熱プレート(第一伝熱切替部材)141を採用してもよい。すなわち、図10に示されるように、伝熱プレート141は、電池セル23の温度Tbが第三温度T3以上になると熱伝導部材51に接触する状態から熱伝導部材51に対して離反し、電池セル23の温度Tbが第一温度T1よりも高くなると熱伝導部材51に再び接触してもよい。
<Modification 1>
Instead of the heat transfer plate 41 of the above embodiment, when the temperature Tb of the battery cell 23 is lower than the third temperature T3 lower than the first temperature T1, the state contacting the heat conduction member 51 from the state separating from the heat conduction member 51. In addition, when the temperature Tb of the battery cell 23 becomes higher than the first temperature T1, the heat transfer plate (first heat transfer switching member) that comes into contact with the heat conductive member 51 from the state separated from the heat conductive member 51. 141) may be employed. That is, as shown in FIG. 10, when the temperature Tb of the battery cell 23 becomes equal to or higher than the third temperature T3, the heat transfer plate 141 is separated from the heat conductive member 51 from the state in contact with the heat conductive member 51. When the temperature Tb of the cell 23 becomes higher than the first temperature T1, the heat conduction member 51 may be contacted again.

伝熱プレート141は、矩形平板状の第一本体部142と、第一本体部142の長手方向一端から屈曲する矩形平板状の第二本体部143と、を有している。第一本体部142は、電池セル23における一方の主面に接しており、電池セル23から熱が伝熱可能に配置されている。第二本体部143は、熱伝導部材51に接触可能な対向面を有している。第一本体部142は、熱膨張係数が互いに異なる二種類の金属板142a,142bが貼り合わされたバイメタルにより形成されており、電池セル23の温度に応じて変形する。これにより、第二本体部143が熱伝導部材51に接触したり、熱伝導部材51から離反したりする。具体的には、図10に示されるように、電池セル23の温度Tbが第三温度T3以上第一温度T1以下であると、金属板142a,142bに延び縮みが生じず、熱伝導部材51から離反する。電池セル23の温度Tbが第三温度T3より低くなると、金属板142bのみが縮み、第二本体部143は熱伝導部材51に接触する。一方、電池セル23の温度Tbが第一温度T1より高くなると、金属板142bのみが伸び、第二本体部143は熱伝導部材51に接触する。   The heat transfer plate 141 includes a rectangular flat plate-shaped first main body portion 142 and a rectangular flat plate-shaped second main body portion 143 bent from one longitudinal end of the first main body portion 142. The first main body 142 is in contact with one main surface of the battery cell 23 and is arranged so that heat can be transferred from the battery cell 23. The second main body 143 has a facing surface that can contact the heat conducting member 51. The first main body 142 is formed of a bimetal in which two types of metal plates 142 a and 142 b having different thermal expansion coefficients are bonded to each other, and deforms according to the temperature of the battery cell 23. Thereby, the 2nd main-body part 143 contacts the heat conductive member 51, or leaves | separates from the heat conductive member 51. FIG. Specifically, as shown in FIG. 10, when the temperature Tb of the battery cell 23 is not less than the third temperature T3 and not more than the first temperature T1, the metal plates 142a and 142b do not expand and contract, and the heat conducting member 51 Get away from. When the temperature Tb of the battery cell 23 becomes lower than the third temperature T3, only the metal plate 142b contracts, and the second main body portion 143 contacts the heat conducting member 51. On the other hand, when the temperature Tb of the battery cell 23 becomes higher than the first temperature T <b> 1, only the metal plate 142 b extends and the second main body portion 143 contacts the heat conducting member 51.

また、上記実施形態の伝熱切替部材61に代えて、筐体11の温度が第二温度T2よりも低い第四温度T4未満になると熱伝導部材51に接触する状態から熱伝導部材51に対して離反する状態になると共に、筐体11の温度が第二温度T2よりも高くなると熱伝導部材51に接触する状態から熱伝導部材51に対して離反する状態となる伝熱切替部材(第二伝熱切替部材)161を採用してもよい。すなわち、図10に示されるように、伝熱切替部材161は、筐体11の温度が第四温度T4以上になると熱伝導部材51に対して離反する状態から熱伝導部材51に接触し、筐体11の温度が第二温度T2よりも高くなると熱伝導部材51から再び離反してもよい。   Moreover, it replaces with the heat transfer switching member 61 of the said embodiment, and when the temperature of the housing | casing 11 becomes less than 4th temperature T4 lower than 2nd temperature T2, it will be with respect to the heat conductive member 51 from the state which contacts the heat conductive member 51. When the temperature of the housing 11 becomes higher than the second temperature T <b> 2, the heat transfer switching member (second state) is changed from the state in contact with the heat conduction member 51 to the state away from the heat conduction member 51. (Heat transfer switching member) 161 may be employed. That is, as shown in FIG. 10, the heat transfer switching member 161 comes into contact with the heat conducting member 51 from the state of being separated from the heat conducting member 51 when the temperature of the housing 11 becomes the fourth temperature T4 or more, and the housing 11 When the temperature of the body 11 becomes higher than the second temperature T2, it may be separated from the heat conducting member 51 again.

伝熱切替部材161は、矩形平板状の第一本体部162と、第一本体部162の長手方向一端から屈曲する矩形平板状の第二本体部163と、を有している。第一本体部162は、筐体11の側壁13に接しており、筐体11から熱が伝熱可能に配置されている。第二本体部163は、熱伝導部材51に接触可能な対向面を有している。第一本体部162は、熱膨張係数が互いに異なる二種類の金属板162a,162bが貼り合わされたバイメタルにより形成されており、筐体11の温度に応じて変形する。これにより、第二本体部163が熱伝導部材51に接触したり、熱伝導部材51から離反したりする。具体的には、図10に示されるように、筐体11の温度Tcが第四温度T4以上第二温度T2以下であると、金属板162aのみが伸び、第二本体部163が熱伝導部材51に接触する。筐体11の温度Tbが第四温度T4より低くなると、金属板162a、162bに伸び縮みが生じず、第二本体部163は熱伝導部材51から離反する。また、筐体11の温度Tcが第二温度T2より高くなると、金属板142a,142bが互いに同程度伸び、第二本体部163は熱伝導部材51から離反する。   The heat transfer switching member 161 includes a rectangular flat plate-shaped first main body portion 162 and a rectangular flat plate-shaped second main body portion 163 bent from one end in the longitudinal direction of the first main body portion 162. The first main body 162 is in contact with the side wall 13 of the housing 11 and is arranged so that heat can be transferred from the housing 11. The second main body 163 has a facing surface that can contact the heat conducting member 51. The first main body 162 is formed of a bimetal in which two types of metal plates 162 a and 162 b having different thermal expansion coefficients are bonded to each other, and deforms according to the temperature of the housing 11. Thereby, the 2nd main-body part 163 contacts the heat conductive member 51, or leaves | separates from the heat conductive member 51. FIG. Specifically, as shown in FIG. 10, when the temperature Tc of the housing 11 is equal to or higher than the fourth temperature T4 and equal to or lower than the second temperature T2, only the metal plate 162a extends and the second main body portion 163 becomes the heat conducting member. 51 is contacted. When the temperature Tb of the housing 11 becomes lower than the fourth temperature T4, the metal plates 162a and 162b do not expand and contract, and the second main body 163 separates from the heat conducting member 51. When the temperature Tc of the housing 11 becomes higher than the second temperature T2, the metal plates 142a and 142b extend to the same extent, and the second main body 163 is separated from the heat conducting member 51.

この変形例1の伝熱プレート141では、電池セル23の温度Tbが第三温度T3未満になると、熱伝導部材51から離反する状態から熱伝導部材51に接触する状態になるので、電池セル23の適正温度に満たない場合に熱伝導部材51から熱を伝熱させることができる。これにより、電池セル23の温度Tbを低下させることができるという効果に加えて、電池セル23の温度Tbが適正温度以下の場合には、温度を上昇させることができるという効果が得られる。   In the heat transfer plate 141 of the first modification, when the temperature Tb of the battery cell 23 is lower than the third temperature T3, the battery cell 23 is in a state of being in contact with the heat conductive member 51 from being separated from the heat conductive member 51. When the temperature does not reach the proper temperature, heat can be transferred from the heat conducting member 51. Thereby, in addition to the effect that the temperature Tb of the battery cell 23 can be lowered, the effect that the temperature can be raised when the temperature Tb of the battery cell 23 is equal to or lower than the appropriate temperature is obtained.

また、この変形例1の伝熱切替部材161は、筐体11の温度が第四温度T4未満になると熱伝導部材51に接触する状態から熱伝導部材51に対して離反する状態になるので、電池セル23が適正温度以下の筐体11に熱を奪われ、電池セル23の温度Tbが低下し過ぎることを抑制できる。これにより、筐体11が原因となって熱伝導部材51に接触する電池セル23の温度が上昇することを抑制できるという効果に加えて、熱伝導部材51に接触する電池セル23の温度が低くなり過ぎることを抑制できるという効果が得られる。この結果、電池セル23の温度をより一層適切に制御することができる。なお、第三温度T3及び第四温度T4は、電池セル23の温度Tbが適正温度の下限(例えば、−20℃)となるように適宜設定される。   In addition, since the heat transfer switching member 161 of the first modification is in a state of being separated from the heat conductive member 51 from a state in contact with the heat conductive member 51 when the temperature of the housing 11 becomes lower than the fourth temperature T4, It can suppress that the battery cell 23 loses heat to the housing | casing 11 below appropriate temperature, and the temperature Tb of the battery cell 23 falls too much. Thereby, in addition to the effect that it can suppress that the temperature of the battery cell 23 which contacts the heat conductive member 51 due to the housing | casing 11 raises, the temperature of the battery cell 23 which contacts the heat conductive member 51 is low. The effect that it can suppress becoming too much is acquired. As a result, the temperature of the battery cell 23 can be more appropriately controlled. The third temperature T3 and the fourth temperature T4 are appropriately set so that the temperature Tb of the battery cell 23 becomes the lower limit (for example, −20 ° C.) of the appropriate temperature.

<変形例2>
上記実施形態又は変形例において、電池セル23に接触配置されると共にバイメタルにより形成される伝熱プレート41及び筐体11の側壁13に接触配置されると共にバイメタルにより形成される伝熱切替部材61に代えて、図11に示されるように、電池セル23の温度を取得する電池セル温度取得部201と、筐体11が配置される外気の温度を取得する外気温度取得部202と、電池セル23と熱伝導部材51との両方に接触することによって、電池セル23と熱伝導部材51との間を伝熱可能にする第一伝熱切替部材241と、筐体11と熱伝導部材51との両方に接触することによって、筐体11と熱伝導部材51との間を伝熱可能にする第二伝熱切替部材261と、電池セル23の温度Tbが第一温度T1よりも高くなると電池セル23と熱伝導部材51との間を伝熱可能な状態になるように第一伝熱切替部材241を制御すると共に、外気の温度Taが第一温度T1以上である第二温度T2よりも高くなると、筐体11と熱伝導部材51との間を伝熱不能な状態となるように第二伝熱切替部材261を制御する切替制御部220と、を備えていてもよい。
<Modification 2>
In the above-described embodiment or modification, the heat transfer plate 41 that is disposed in contact with the battery cell 23 and formed of bimetal and the heat transfer switching member 61 that is disposed in contact with the side wall 13 of the housing 11 and formed of bimetal. Instead, as shown in FIG. 11, the battery cell temperature acquisition unit 201 that acquires the temperature of the battery cell 23, the outside air temperature acquisition unit 202 that acquires the temperature of the outside air in which the housing 11 is disposed, and the battery cell 23. The first heat transfer switching member 241 that enables heat transfer between the battery cell 23 and the heat conductive member 51, and the housing 11 and the heat conductive member 51. When the temperature Tb of the second heat transfer switching member 261 that enables heat transfer between the housing 11 and the heat conducting member 51 and the battery cell 23 becomes higher than the first temperature T1 by contacting both, the electric power is supplied. The first heat transfer switching member 241 is controlled so that heat can be transferred between the cell 23 and the heat conducting member 51, and the outside air temperature Ta is higher than the second temperature T2 which is equal to or higher than the first temperature T1. When it becomes high, you may provide the switching control part 220 which controls the 2nd heat transfer switching member 261 so that it may be in the state which cannot heat-transfer between the housing | casing 11 and the heat conductive member 51. FIG.

電池セル温度取得部201は、例えば、温度センサ又は電池モジュール21の制御部から電池セル23の温度を取得する。外気温度取得部202は、温度センサ等から筐体11が配置される外気の温度を取得する。   The battery cell temperature acquisition unit 201 acquires the temperature of the battery cell 23 from, for example, a temperature sensor or the control unit of the battery module 21. The outside air temperature acquisition unit 202 acquires the temperature of the outside air where the housing 11 is disposed from a temperature sensor or the like.

第一伝熱切替部材241は、例えば、モータ等の駆動部により、電池セル23と熱伝導部材51とが接触する状態(伝熱可能な状態)と、電池セル23と熱伝導部材51とが離反する状態(伝熱不能な状態)とに切り替えられる。第二伝熱切替部材261も、同様に、モータ等の駆動部により、筐体11の側壁13と熱伝導部材51とが接触する状態(伝熱可能な状態)と、筐体11の側壁13と熱伝導部材51とが離反する状態(伝熱不能な状態)とに切り替えられる。   The first heat transfer switching member 241 includes, for example, a state in which the battery cell 23 and the heat conducting member 51 are in contact with each other by a driving unit such as a motor (a state in which heat conduction is possible), and the battery cell 23 and the heat conducting member 51. It can be switched to a state of separation (a state where heat cannot be transferred). Similarly, the second heat transfer switching member 261 is also in a state where the side wall 13 of the housing 11 and the heat conducting member 51 are in contact with each other by a driving unit such as a motor (a state where heat can be transferred), and the side wall 13 of the housing 11. And the heat conducting member 51 are switched to a separated state (a state where heat cannot be transferred).

変形例2に係る電池パック210であっても、電池セル23の温度Tbが第一温度T1よりも高くなると、電池セル23と熱伝導部材51との間を伝熱可能な状態にする第一伝熱切替部材241を備えているので、第一温度T1よりも高くなった電池セル23の温度Tbを熱伝導部材51に伝熱させることができる。これにより、第一温度T1よりも高くなった電池セル23の温度Tbを低下させることができる。また、変形例2に係る電池パック210では、外気の温度Taが第一温度T1と同じ又は第一温度T1よりも高い第二温度T2よりも高くなると、筐体11と熱伝導部材51との間を伝熱不能な状態にする第二伝熱切替部材261を備えているので、第二温度T2より高くなった外気から熱伝導部材51に接触する電池セル23に熱が伝熱されることが抑制される。これにより、外気から筐体11に伝わる熱が原因となって電池セル23の温度Tbが第一温度T1よりも上昇することを抑制できる。この結果、電池セル23の温度Tbを適切に制御することができる。   Even in the battery pack 210 according to the modified example 2, when the temperature Tb of the battery cell 23 becomes higher than the first temperature T1, the first state that allows heat transfer between the battery cell 23 and the heat conducting member 51 is achieved. Since the heat transfer switching member 241 is provided, the temperature Tb of the battery cell 23 higher than the first temperature T1 can be transferred to the heat conducting member 51. Thereby, temperature Tb of the battery cell 23 which became higher than 1st temperature T1 can be reduced. Further, in the battery pack 210 according to the modified example 2, when the temperature Ta of the outside air is higher than the second temperature T2 that is the same as the first temperature T1 or higher than the first temperature T1, the housing 11 and the heat conducting member 51 Since the second heat transfer switching member 261 that makes the space incapable of transferring heat is provided, heat can be transferred from the outside air that is higher than the second temperature T2 to the battery cell 23 that contacts the heat conducting member 51. It is suppressed. Thereby, it can suppress that temperature Tb of the battery cell 23 rises from 1st temperature T1 due to the heat | fever transmitted to the housing | casing 11 from external air. As a result, the temperature Tb of the battery cell 23 can be controlled appropriately.

また、変形例2に係る電池パック210において、切替制御部220は、電池セル23の温度Tbが第一温度T1よりも低い第三温度T3未満になると、電池セル23と熱伝導部材51との間を伝熱可能な状態となるように第一伝熱切替部材241を制御し、外気の温度Taが第二温度T2よりも低い第四温度T4未満になると、筐体11と熱伝導部材51との間を伝熱不能な状態となるように第二伝熱切替部材261を制御してもよい。   Further, in the battery pack 210 according to the modified example 2, when the temperature Tb of the battery cell 23 becomes lower than the third temperature T3 that is lower than the first temperature T1, the switching control unit 220 determines whether the battery cell 23 and the heat conducting member 51 When the first heat transfer switching member 241 is controlled to be in a state in which heat can be transferred between them and the outside air temperature Ta becomes lower than the fourth temperature T4 lower than the second temperature T2, the casing 11 and the heat transfer member 51 The second heat transfer switching member 261 may be controlled so as to be in a state in which heat transfer is impossible.

この変形例2に係る電池パック210では、電池セル23の温度Tbが第一温度T1よりも低い第三温度T3未満になると、電池セル23と熱伝導部材51との間が伝熱可能な状態になるので、電池セル23の温度Tbが適正温度に満たない場合に熱伝導部材51の熱を電池セル23に伝熱することが可能になる。これにより、電池セル23の温度Tbを低下させることができるという効果に加えて、電池セル23の温度Tbが適正温度以下の場合には電池セル23の温度Tbを上昇させることができるという効果が得られる。また、変形例2に係る電池パック210の構成では、外気の温度Taが第二温度T2よりも低い第四温度T4未満になると、筐体11と熱伝導部材51との間が伝熱不能な状態になるので、電池セル23が適正温度以下の外気に熱を奪われ、電池セル23の温度Tbが低下し過ぎることを抑制できる。これにより、外気から筐体11に伝わる熱が原因となって熱伝導部材51に接触する電池セル23の温度Tbが上昇することを抑制できるという効果に加えて、熱伝導部材51に接触する電池セル23の温度Tbが低くなり過ぎることを抑制できるという効果が得られる。この結果、電池セル23の温度Tbをより一層適切に制御することができる。   In the battery pack 210 according to the second modification, when the temperature Tb of the battery cell 23 becomes lower than the third temperature T3 lower than the first temperature T1, the heat transfer between the battery cell 23 and the heat conducting member 51 is possible. Therefore, the heat of the heat conducting member 51 can be transferred to the battery cell 23 when the temperature Tb of the battery cell 23 is less than the appropriate temperature. Thereby, in addition to the effect that the temperature Tb of the battery cell 23 can be lowered, the effect that the temperature Tb of the battery cell 23 can be raised when the temperature Tb of the battery cell 23 is equal to or lower than the appropriate temperature. can get. Further, in the configuration of the battery pack 210 according to the modified example 2, when the outside air temperature Ta becomes lower than the fourth temperature T4 lower than the second temperature T2, heat cannot be transferred between the housing 11 and the heat conducting member 51. Since it will be in a state, it can suppress that the battery cell 23 loses heat to the external air below appropriate temperature, and the temperature Tb of the battery cell 23 falls too much. Thereby, in addition to the effect that it can control that temperature Tb of battery cell 23 which contacts heat conduction member 51 rises due to the heat transmitted to case 11 from the outside air, the battery which contacts heat conduction member 51 The effect that it can suppress that temperature Tb of the cell 23 becomes low too much is acquired. As a result, the temperature Tb of the battery cell 23 can be more appropriately controlled.

<変形例3>
上記変形例2において、電池セル温度取得部201により取得される電池セル23の温度、及び外気温度取得部202により取得される外気の温度を利用して下記のような制御を行ってもよい。すなわち、電池セル23が適正温度よりも高く、外気の温度Taが電池セル23の温度Tbよりも低ければ、電池セル23と熱伝導部材51との間を第一伝熱切替部材241によって伝熱可能な状態にすると共に、筐体11と熱伝導部材51との間を第二伝熱切替部材261によって伝熱可能な状態にすることによって電池セル23の放熱性を良くする。また、電池セル23が適正温度よりも高く、外気の温度Taが電池セル23の温度Tb以上ならば、電池セル23と熱伝導部材51との間を第一伝熱切替部材241によって伝熱可能な状態にすると共に、筐体11と熱伝導部材51との間を第二伝熱切替部材261によって伝熱不能な状態にすることによって電池セル23の放熱性を悪くする。また、電池セル23が適正温度よりも低く、外気の温度Taが電池セル23の温度Tbよりも低ければ、電池セル23と熱伝導部材51との間を第一伝熱切替部材241によって伝熱可能な状態にすると共に、筐体11と熱伝導部材51との間を第二伝熱切替部材261によって伝熱不能な状態にすることによって電池セル23の放熱性を悪くする。また、電池セル23が適正温度よりも低く、外気の温度Taが電池セル23の温度Tb以上ならば、電池セル23と熱伝導部材51との間を第一伝熱切替部材241によって伝熱可能にすると共に、筐体11と熱伝導部材51との間を第二伝熱切替部材261によって伝熱可能な状態にすることによって電池セル23の放熱性を良くする。このような制御により、電池セル23の温度をより適切に制御することができる。
<Modification 3>
In the second modification, the following control may be performed using the temperature of the battery cell 23 acquired by the battery cell temperature acquisition unit 201 and the temperature of the outside air acquired by the outside air temperature acquisition unit 202. That is, if the battery cell 23 is higher than the appropriate temperature and the outside air temperature Ta is lower than the temperature Tb of the battery cell 23, the first heat transfer switching member 241 transfers heat between the battery cell 23 and the heat conduction member 51. The heat dissipation of the battery cell 23 is improved by making the state in which heat transfer is possible between the housing 11 and the heat conducting member 51 by the second heat transfer switching member 261. Further, if the battery cell 23 is higher than the appropriate temperature and the outside air temperature Ta is equal to or higher than the temperature Tb of the battery cell 23, heat can be transferred between the battery cell 23 and the heat conducting member 51 by the first heat transfer switching member 241. In addition, the heat dissipation of the battery cell 23 is deteriorated by making the heat transfer impossible state between the housing 11 and the heat conducting member 51 by the second heat transfer switching member 261. Further, when the battery cell 23 is lower than the appropriate temperature and the outside air temperature Ta is lower than the temperature Tb of the battery cell 23, the first heat transfer switching member 241 transfers heat between the battery cell 23 and the heat conduction member 51. While making it possible, the heat dissipation of the battery cell 23 is deteriorated by making the heat transfer impossible state between the housing 11 and the heat conducting member 51 by the second heat transfer switching member 261. Further, if the battery cell 23 is lower than the appropriate temperature and the outside air temperature Ta is equal to or higher than the temperature Tb of the battery cell 23, heat can be transferred between the battery cell 23 and the heat conducting member 51 by the first heat transfer switching member 241. In addition, the heat dissipation of the battery cell 23 is improved by making the heat transferable state between the housing 11 and the heat conducting member 51 by the second heat transfer switching member 261. By such control, the temperature of the battery cell 23 can be controlled more appropriately.

<変形例4>
上記実施形態又は変形例の構成に代えて、例えば、電池セル23の配列の方向において配列体28の中心部近くに配置される伝熱プレート(第一伝熱切替部材)41,141及び第一伝熱切替部材241ほど低い温度で、電池セル23と熱伝導部材51との間が伝熱可能な状態になるようにしてもよい。このような構成は、例えば、バイメタルによって形成される伝熱プレート41,141の場合には、同じ温度でも第二本体部43,143の曲がりを大きくしたり、第二本体部43,143が曲り始める温度を低くしたりすることにより、実現することが可能となる。変形例4では、配列体28において端部に配置される電池セル23に比べて放熱性に劣る配列体28において中心部に配置される電池セル23の放熱性を高めることができる。これにより、電池セル23の温度を均一化することができる。
<Modification 4>
Instead of the configuration of the above-described embodiment or modification, for example, the heat transfer plates (first heat transfer switching members) 41, 141 and the first arranged near the center of the array 28 in the direction of the array of the battery cells 23 The heat transfer switching member 241 may be at a temperature as low as possible so that heat can be transferred between the battery cell 23 and the heat conducting member 51. For example, in the case of the heat transfer plates 41 and 141 formed of bimetal, such a configuration increases the bending of the second main body portions 43 and 143 even at the same temperature, or the second main body portions 43 and 143 bend. It can be realized by lowering the starting temperature. In the modification 4, the heat dissipation of the battery cell 23 arranged in the center part in the array 28 that is inferior in heat dissipation compared to the battery cell 23 arranged at the end in the array 28 can be improved. Thereby, the temperature of the battery cell 23 can be equalized.

<その他の変形例>
上記実施形態又は変形例では、吸熱構成の筐体11を例に挙げて説明したが、例えば、放熱フィン等を装着し、外気に熱を放熱する構成としてもよい。
<Other variations>
In the said embodiment or modification, although demonstrated taking the case 11 of the heat absorption structure as an example, it is good also as a structure which mounts | wears with a radiation fin etc. and radiates heat to external air, for example.

上記実施形態又は変形例では、伝熱プレート41,141及び伝熱切替部材61,161を変形させることによって、また、第一伝熱切替部材241及び第二伝熱切替部材261の形状が変形することによって、電池セル23と熱伝導部材51との接触の有無、筐体11と熱伝導部材51との接触の有無を切り替える例を挙げて説明したが、本発明はこれに限定されない。例えば、第一伝熱切替部材241及び第二伝熱切替部材261では、例えば、熱伝導部材51に対する突出量を調整することにより、電池セル23と熱伝導部材51との接触の有無、筐体11と熱伝導部材51との接触の有無を切り替えてもよい。   In the said embodiment or modification, the shape of the 1st heat-transfer switching member 241 and the 2nd heat-transfer switching member 261 deform | transforms by changing the heat-transfer plates 41 and 141 and the heat-transfer switching members 61 and 161. Although the example which switches the presence or absence of the contact of the battery cell 23 and the heat conductive member 51 and the presence or absence of the contact of the housing | casing 11 and the heat conductive member 51 by giving an example was demonstrated, this invention is not limited to this. For example, in the first heat transfer switching member 241 and the second heat transfer switching member 261, for example, by adjusting the protrusion amount with respect to the heat conduction member 51, the presence or absence of contact between the battery cell 23 and the heat conduction member 51, the housing The presence or absence of contact between the heat transfer member 11 and the heat conducting member 51 may be switched.

また、上記実施形態又は変形例において、モータ等の駆動部によって第一伝熱切替部材241及び第二伝熱切替部材261における変形を行うことによって上記状態を切り替える構成とする場合、例えば、セルの劣化量に応じて上記状態が異なるように切り替えてもよい。ここで、電池セル23の劣化量が大きくなるほど抵抗が大きくなり、電池セル23の温度が上昇しやすくなる。そこで、例えば、電池セル23の劣化量が大きくなるほど低い温度で変形が開始されるようにすれば、効果的に電池セル23の温度上昇を抑制することができる。また、劣化量が小さい時には変形を生じさせ難くして、モータ等の駆動機構で使用されるエネルギー量を抑制することができる。   Moreover, in the said embodiment or modification, when it is set as the structure which switches the said state by performing the deformation | transformation in the 1st heat transfer switching member 241 and the 2nd heat transfer switching member 261 by drive parts, such as a motor, You may switch so that the said state may differ according to deterioration amount. Here, as the deterioration amount of the battery cell 23 increases, the resistance increases, and the temperature of the battery cell 23 easily rises. Therefore, for example, if the deformation is started at a lower temperature as the deterioration amount of the battery cell 23 increases, an increase in the temperature of the battery cell 23 can be effectively suppressed. Further, when the amount of deterioration is small, it is difficult to cause deformation, and the amount of energy used in a drive mechanism such as a motor can be suppressed.

上記実施形態又は変形例では、伝熱プレート41における第二本体部43は、第一本体部42から弾性部材47が配置された方向に折れ曲がっている例を挙げて説明したが、全ての伝熱プレート41における一部又は全ての第二本体部43が第一本体部42から弾性部材47が配置された方向とは反対側に折れ曲がっていてもよい。   In the said embodiment or modification, although the 2nd main-body part 43 in the heat-transfer plate 41 gave and demonstrated the example bent in the direction in which the elastic member 47 was arrange | positioned from the 1st main-body part 42, all the heat transfer was demonstrated. A part or all of the second main body 43 in the plate 41 may be bent from the first main body 42 to the opposite side to the direction in which the elastic member 47 is arranged.

上記実施形態又は変形例では、筐体11への取り付け機能を有する一対のブラケット25,25によって配列体28を一方向Dに加圧した状態で拘束された電池モジュール21を例に挙げて説明したが、筐体11への取り付け機能を有さない一対のエンドプレートによって配列体28を一方向Dに加圧した状態で拘束される構成の電池モジュールであってもよい。この構成の電池モジュールは、例えば、一対のエンドプレートとは別部材のブラケットによって筐体11に取り付けられる。   In the above-described embodiment or modification, the battery module 21 restrained in a state where the array body 28 is pressed in one direction D by the pair of brackets 25 and 25 having a function of attaching to the housing 11 has been described as an example. However, the battery module of the structure restrained in the state which pressurized the array 28 to the one direction D with a pair of end plate which does not have the attachment function to the housing | casing 11 may be sufficient. The battery module having this configuration is attached to the housing 11 by, for example, a bracket that is a separate member from the pair of end plates.

上記実施形態又は変形例では、弾性部材47は、配列体28の一方の端部に一つだけ配置される例を挙げて説明したが、本発明はこれに限定されない。例えば、弾性部材47は、配列体28の両方の端部に配置されてもよいし、電池セル23の間に配置されてもよい。また、弾性部材47は、全て又は一部の電池セル23間に分散されて配置されてもよい。   In the said embodiment or modification, although the elastic member 47 gave and demonstrated the example arrange | positioned only at one edge part of the array 28, this invention is not limited to this. For example, the elastic member 47 may be disposed at both ends of the array 28, or may be disposed between the battery cells 23. In addition, the elastic member 47 may be distributed between all or some of the battery cells 23.

上記実施形態又は変形例では、ウレタン系ゴム等の弾性材料によって形成されている弾性部材47を例に挙げて説明したが、本発明はこれに限定されることなく、例えば、バネ等の弾性部材であってもよい。   In the above-described embodiment or modification, the elastic member 47 formed of an elastic material such as urethane rubber has been described as an example. However, the present invention is not limited thereto, and for example, an elastic member such as a spring. It may be.

上記実施形態又は変形例では、電池ホルダ22に保持された状態の電池セル23が並設された電池モジュール21を例に挙げて説明したが、電池ホルダ22には保持されず、電池セル23のみからなる電池モジュール21を用いてもよい。   In the said embodiment or modification, although the battery module 21 in which the battery cell 23 of the state hold | maintained at the battery holder 22 was arranged in parallel was mentioned as an example, it was not hold | maintained at the battery holder 22, but only the battery cell 23 was demonstrated. You may use the battery module 21 which consists of.

以上説明した種々の実施形態及び変形例は、本発明の趣旨を逸脱しない範囲で種々、組み合わせられてもよい。   Various embodiments and modifications described above may be combined in various ways without departing from the spirit of the present invention.

10…電池パック、11…筐体、13…側壁、21…電池モジュール、22…電池ホルダ、23…電池セル、24a…主面、41…伝熱プレート(第一伝熱切替部材)、42…第一本体部、43…第二本体部、51…熱伝導部材、61…伝熱切替部材(第二伝熱切替部材)、141…伝熱プレート(第一伝熱切替部材)、142…第一本体部、143…第二本体部、161…伝熱切替部材(第二伝熱切替部材)、162…第一本体部、163…第二本体部、201…電池セル温度取得部、202…外気温度取得部、210…電池パック、220…切替制御部、241…第一伝熱切替部材、261…第二伝熱切替部材。   DESCRIPTION OF SYMBOLS 10 ... Battery pack, 11 ... Housing, 13 ... Side wall, 21 ... Battery module, 22 ... Battery holder, 23 ... Battery cell, 24a ... Main surface, 41 ... Heat transfer plate (first heat transfer switching member), 42 ... First body part 43 ... Second body part 51 ... Heat conduction member 61 ... Heat transfer switching member (second heat transfer switching member) 141 ... Heat transfer plate (first heat transfer switching member) 142 ... First One body part, 143 ... second body part, 161 ... heat transfer switching member (second heat transfer switching member), 162 ... first body part, 163 ... second body part, 201 ... battery cell temperature acquisition part, 202 ... Outside air temperature acquisition unit, 210 ... battery pack, 220 ... switch control unit, 241 ... first heat transfer switching member, 261 ... second heat transfer switching member.

Claims (7)

一方向に配列される複数の電池セルを含む配列体を有する電池モジュールと、
前記電池モジュールを収容する筐体と、
前記配列体と前記筐体との間に配置される熱伝導部材と、
前記電池セルと前記熱伝導部材との両方に接触することによって、前記電池セルと前記熱伝導部材との間を伝熱可能にする第一伝熱切替部材と、
前記筐体と前記熱伝導部材との両方に接触することによって、前記筐体と前記熱伝導部材との間を伝熱可能にする第二伝熱切替部材と、
を備え、
前記第一伝熱切替部材は、前記電池セルの温度が第一温度よりも高くなると、前記電池セルと前記熱伝導部材との間の伝熱を可能にし、
第二伝熱切替部材は、外気の温度が前記第一温度以上である第二温度よりも高くなると、前記筐体と前記熱伝導部材との間の伝熱を不能にする、電池パック。
A battery module having an array including a plurality of battery cells arranged in one direction;
A housing for housing the battery module;
A heat conducting member disposed between the array and the housing;
A first heat transfer switching member that enables heat transfer between the battery cell and the heat conducting member by contacting both the battery cell and the heat conducting member;
A second heat transfer switching member that enables heat transfer between the housing and the heat conducting member by contacting both the housing and the heat conducting member;
With
When the temperature of the battery cell is higher than the first temperature, the first heat transfer switching member enables heat transfer between the battery cell and the heat conducting member,
The second heat transfer switching member is a battery pack that disables heat transfer between the housing and the heat conducting member when an outside air temperature becomes higher than a second temperature that is equal to or higher than the first temperature.
前記第一伝熱切替部材は、前記電池セルにおいて前記一方向に直交する主面の一方に接触配置されており、前記電池セルの温度が前記第一温度よりも高くなると、前記熱伝導部材に対して離反する状態から前記熱伝導部材に接触する状態となり、
前記第二伝熱切替部材は、前記筐体と前記熱伝導部材との間において前記筐体に接触配置され、前記筐体の温度が前記第二温度よりも高くなると、前記熱伝導部材に接触する状態から前記熱伝導部材に対して離反する状態となる、請求項1記載の電池パック。
The first heat transfer switching member is disposed in contact with one of the main surfaces orthogonal to the one direction in the battery cell, and when the temperature of the battery cell becomes higher than the first temperature, the heat transfer member It becomes a state in contact with the heat conducting member from a state of separating from,
The second heat transfer switching member is disposed in contact with the housing between the housing and the heat conducting member, and contacts the heat conducting member when a temperature of the housing becomes higher than the second temperature. The battery pack according to claim 1, wherein the battery pack is separated from the heat conducting member.
前記第一伝熱切替部材は、前記電池セルの温度が前記第一温度よりも低い第三温度未満になると、前記電池セルと前記熱伝導部材との間の伝熱を可能にすると共に、前記電池セルの温度が第一温度よりも高くなると、前記電池セルと前記熱伝導部材との間の伝熱を可能にし、
前記第二伝熱切替部材は、前記外気の温度が前記第二温度よりも低い第四温度未満になると、前記筐体と前記熱伝導部材との間の伝熱を不能にすると共に、外気の温度が前記第一温度以上である第二温度よりも高くなると、前記筐体と前記熱伝導部材との間の伝熱を不能にする、請求項1記載の電池パック。
The first heat transfer switching member enables heat transfer between the battery cell and the heat conducting member when the temperature of the battery cell is lower than a third temperature lower than the first temperature, and When the temperature of the battery cell is higher than the first temperature, it enables heat transfer between the battery cell and the heat conducting member,
The second heat transfer switching member disables heat transfer between the housing and the heat conducting member when the temperature of the outside air is lower than a fourth temperature lower than the second temperature, The battery pack according to claim 1, wherein heat transfer between the housing and the heat conducting member is disabled when the temperature is higher than a second temperature that is equal to or higher than the first temperature.
前記第一伝熱切替部材は、前記電池セルにおいて前記一方向に直交する主面の一方に接触配置されており、前記電池セルの温度が前記第一温度よりも低い第三温度未満になると前記熱伝導部材から離反する状態から前記熱伝導部材に接触する状態になると共に、前記電池セルの温度が前記第一温度よりも高くなると前記熱伝導部材に対して離反する状態から前記熱伝導部材に接触する状態となり、
前記第二伝熱切替部材は、前記筐体と前記熱伝導部材との間において前記筐体に接触配置され、前記筐体の温度が前記第二温度よりも低い第四温度未満になると前記熱伝導部材に接触する状態から前記熱伝導部材に対して離反する状態になると共に、前記筐体の温度が前記第二温度よりも高くなると前記熱伝導部材に接触する状態から前記熱伝導部材に対して離反する状態となる、請求項3記載の電池パック。
The first heat transfer switching member is disposed in contact with one of the main surfaces orthogonal to the one direction in the battery cell, and when the temperature of the battery cell is lower than a third temperature lower than the first temperature, When the temperature of the battery cell becomes higher than the first temperature from the state of being separated from the heat conductive member, the state of being separated from the heat conductive member is changed to the heat conductive member. In contact,
The second heat transfer switching member is disposed in contact with the casing between the casing and the heat conducting member, and the heat is generated when a temperature of the casing is lower than a fourth temperature lower than the second temperature. When the temperature of the housing is higher than the second temperature from the state in contact with the conductive member to the heat conductive member, the state from the state in contact with the heat conductive member to the heat conductive member The battery pack according to claim 3, wherein the battery pack is separated from the battery pack.
前記第一伝熱切替部材は及び前記第二伝熱切替部材は、バイメタルにより形成されており、
前記第一伝熱切替部材は、前記電池セルの表面温度に応じて前記状態が切り替わり、前記第二伝熱切替部材は、前記筐体の表面温度に応じて前記状態が切り替わる、請求項2又は4記載の電池パック。
The first heat transfer switching member and the second heat transfer switching member are formed of bimetal,
The first heat transfer switching member switches the state according to the surface temperature of the battery cell, and the second heat transfer switching member switches the state according to the surface temperature of the housing. 4. The battery pack according to 4.
前記配列の方向において前記配列体の中心部近くに位置する前記第一伝熱切替部材ほど低い温度で前記電池セルと前記熱伝導部材との間を伝熱可能にする、請求項1〜5の何れか一項記載の電池パック。   The first heat transfer switching member located near the center of the array in the direction of the array enables heat transfer between the battery cell and the heat conductive member at a lower temperature. The battery pack according to any one of the above. 前記第二伝熱切替部材は、一の部材により形成されている、請求項1〜6の何れか一項記載の電池パック。   The battery pack according to any one of claims 1 to 6, wherein the second heat transfer switching member is formed of one member.
JP2016103965A 2016-05-25 2016-05-25 Battery pack Pending JP2017212091A (en)

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Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN111554995A (en) * 2019-02-08 2020-08-18 株式会社电装 Battery structure for reducing lithium precipitation
CN113328173A (en) * 2021-08-04 2021-08-31 北京以电航空科技有限公司 Immersed battery module

Cited By (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN111554995A (en) * 2019-02-08 2020-08-18 株式会社电装 Battery structure for reducing lithium precipitation
CN111554995B (en) * 2019-02-08 2024-03-26 株式会社电装 Battery structure for reducing lithium precipitation
CN113328173A (en) * 2021-08-04 2021-08-31 北京以电航空科技有限公司 Immersed battery module

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