JP5326125B2 - Nonaqueous electrolyte secondary battery - Google Patents

Nonaqueous electrolyte secondary battery Download PDF

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JP5326125B2
JP5326125B2 JP2008130070A JP2008130070A JP5326125B2 JP 5326125 B2 JP5326125 B2 JP 5326125B2 JP 2008130070 A JP2008130070 A JP 2008130070A JP 2008130070 A JP2008130070 A JP 2008130070A JP 5326125 B2 JP5326125 B2 JP 5326125B2
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terminal member
electrolyte secondary
terminal
secondary battery
packing
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JP2009277603A (en
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秀幸 杉山
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Eliiy Power Co Ltd
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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
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    • Y02E60/10Energy storage using batteries

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Abstract

<P>PROBLEM TO BE SOLVED: To reduce the parts number for parts to taking out an electric current, and improve the electric performance and the mechanical performance of electrode terminal portions. <P>SOLUTION: A penetrating terminal member 15 and an upper plate 11 of a current collector 7 are integrally formed by fusing the penetrating terminal member 15 on the upper plate 11 by friction gripping. The penetrating terminal member 15 and a long joining plate 12 connected to an electrode group are constructed of one member so that the parts member is reduced and the electric and mechanical performances are improved. <P>COPYRIGHT: (C)2010,JPO&amp;INPIT

Description

本発明は非水電解質二次電池に関し、特に、高性能、高信頼性を企図した電極端子の取り付け部位の構造を達成した非水電解質二次電池に関する。   The present invention relates to a non-aqueous electrolyte secondary battery, and more particularly, to a non-aqueous electrolyte secondary battery that achieves a structure of an electrode terminal mounting portion intended for high performance and high reliability.

非水電解質二次電池は、高電圧で高エネルギー密度を備えるという特徴を有していることから、電力貯蔵、電気自動車、ハイブリッド電気自動車、電車など、比較的大型、大出力のものの実用化が有望視されている。   Non-aqueous electrolyte secondary batteries are characterized by having a high voltage and high energy density. Therefore, non-aqueous electrolyte secondary batteries can be put into practical use for power storage, electric vehicles, hybrid electric vehicles, trains, etc. Promising.

非水電解質二次電池は、正極板と負極板とをセパレータを介して積層した電極体や、正極板と負極板とをセパレータを介して巻回した電極体、及び非水電解質が電池ケースに収納された構造とされている。非水電解質二次電池では、電極体からの電流の取り出しは、正極板及び負極板にそれぞれ接続される集電体を介して行なわれている。即ち、電極体の端部に集電体を固定し、集電体と導通される正極端子及び負極端子を電池ケースの外に突出させている(例えば、特許文献1参照)。   A nonaqueous electrolyte secondary battery includes an electrode body in which a positive electrode plate and a negative electrode plate are laminated via a separator, an electrode body obtained by winding a positive electrode plate and a negative electrode plate via a separator, and a nonaqueous electrolyte in a battery case. It has a housed structure. In the non-aqueous electrolyte secondary battery, the extraction of current from the electrode body is performed through current collectors connected to the positive electrode plate and the negative electrode plate, respectively. That is, the current collector is fixed to the end of the electrode body, and the positive electrode terminal and the negative electrode terminal that are electrically connected to the current collector are protruded out of the battery case (see, for example, Patent Document 1).

従来から提案されている非水電解質二次電池では、集電体にリベット端子を固定して電池ケースの外側に突出させ、電池ケースの外側に位置するリベット端子に端子部材(正極端子、負極端子)を固定する構造とされている。集電体、リベット端子、端子部材は、それぞれ別部品とされ、集電体にリベット端子の一端をかしめ固定すると共に、リベット端子の他端側を電池ケースに貫通させ、電池ケースの外部に突出したリベット端子の他端を端子部材にかしめ固定している。そして、電池ケースと集電体との間、及び、電池ケースとリベット端子(集電体)にはシールパッキンが介装され、電池ケースの端子部材が設けられた部位が封止されている。   In a conventionally proposed nonaqueous electrolyte secondary battery, a rivet terminal is fixed to a current collector and protruded to the outside of the battery case, and a terminal member (positive electrode terminal, negative electrode terminal) is connected to the rivet terminal located outside the battery case. ) Is fixed. The current collector, rivet terminal, and terminal member are separate parts, and one end of the rivet terminal is caulked and fixed to the current collector, and the other end side of the rivet terminal is passed through the battery case and protrudes outside the battery case. The other end of the rivet terminal is caulked and fixed to the terminal member. A seal packing is interposed between the battery case and the current collector, and between the battery case and the rivet terminal (current collector), and a portion where the terminal member of the battery case is provided is sealed.

従来の非水電解質二次電池では、電流の取り出しを行なうために、集電体、リベット端子、端子部材の部品を用い、集電体及び端子部材にリベット端子が嵌合する嵌合穴を形成し、嵌合穴にリベット端子を嵌合させて端部をそれぞれかしめ固定している。このため、部品点数が多くなり、部品管理に手間がかかっているのが現状であった。また、リベット端子を嵌合穴に嵌合してかしめ固定しているため、集電体と端子部材の接合は電気的に接触している状態になっているだけなので、かしめ部分で接触不良等が生じる虞があり、長期の使用により接触抵抗が大きくなる虞があった。   In a conventional non-aqueous electrolyte secondary battery, a current collector, a rivet terminal, and a terminal member are used to extract current, and a fitting hole is formed in the current collector and the terminal member to fit the rivet terminal. Then, the rivet terminals are fitted into the fitting holes and the ends are caulked and fixed. For this reason, the number of parts has increased, and it has taken time to manage parts. In addition, since the rivet terminal is fitted into the fitting hole and fixed by caulking, the connection between the current collector and the terminal member is only in electrical contact. There is a risk that contact resistance will increase due to long-term use.

特に、リチウムイオン電池では、正極側の集電体や電極等の材料として表面酸化しやすいアルミニウムを使用しているため、部品管理を的確に行なうと共に強度が維持できるアルミニウム同士のかしめを実施することで接触不良等を抑制しているのが現状である。   In particular, lithium-ion batteries use aluminum that easily oxidizes the surface as a material for the current collector or electrode on the positive electrode side. Therefore, it is necessary to carry out caulking of aluminum that can accurately manage parts and maintain strength. The current situation is to suppress poor contact and the like.

かしめ固定に代えて超音波溶接でリベット端子を固定することも考えられているが、固定される側の集電体等の厚さに制限があり、大電力を取り出すために集電体の断面積を大きくした場合には接合が困難になる。   It is also considered to fix the rivet terminal by ultrasonic welding instead of caulking, but there is a limit to the thickness of the current collector etc. on the side to be fixed, and the current collector is disconnected to take out large power. When the area is increased, joining becomes difficult.

特開平8−77999号公報JP-A-8-77999

本発明は上記状況に鑑みてなされたもので、電流の取り出しを行なうための部材の部品点数を低減し、電極端子の部位での電気的性能や機械的性能を向上させて信頼性を高めた非水電解質二次電池を提供することを目的とする。   The present invention has been made in view of the above situation, and has reduced the number of parts of a member for taking out current and improved the electrical performance and mechanical performance at the portion of the electrode terminal to improve reliability. An object is to provide a nonaqueous electrolyte secondary battery.

上記目的を達成するための請求項1に係る本発明の非水電解質二次電池は、電池外装部材の内側に設けられ電極に導通する集電部材と、前記電池外装部材の外側に設けられる端子部材と、前記電池外装部材を貫通して設けられ前記集電部材と前記端子部材とを導通する貫通端子部材とを備え、前記貫通端子部材は、摩擦により接合部位が前記集電部材に固定されて前記電池外装部材側に突出し、前記端子部材には、前記貫通端子部材が貫通し、前記貫通端子部材の端部がかしめられることで固定される貫通孔が備えられ、前記貫通孔の内周には、逃げ部が形成されていることを特徴とする。 In order to achieve the above object, a nonaqueous electrolyte secondary battery of the present invention according to claim 1 includes a current collecting member provided on the inner side of the battery outer member and conducting to the electrode, and a terminal provided on the outer side of the battery outer member. comprising a member and a through terminal member provided through the battery outer members conducts and said terminal member and said collector member, said feedthrough terminal member is bonded portions by friction fixed to the current collector member The terminal member is provided with a through-hole that is fixed by caulking the end portion of the through-terminal member and the terminal member being caulked. An escape portion is formed around the circumference .

請求項1に係る本発明では、集電部材もしくは端子部材に貫通端子部材が摩擦により固定(摩擦圧接)されているので、貫通端子部材を一体状態に形成することができ、部品点数が減ると共に、接触不良に対する影響をなくすことができる。この結果、電極端子の部位での電気的性能や機械的性能を向上させて信頼性を高めることが可能になる。
そして、集電部材と貫通端子部材との間で機械的な固定がなくなり、電池外装部材の内側で集電部材と貫通端子部材との固定作業が不要になるため、電池外装部材の内側での作業スペースを考慮することがなく、貫通端子部材の位置、即ち、端子部材の位置を任意に設定することができる。
また、端子部材の貫通孔に貫通端子部材の端部をかしめ固定した際に、貫通孔の逃げ部に貫通端子部材の材料が食い込み、周方向に対する接合強度が向上して周方向のガタ付きがなくなり、接触状態を良好に保つことができる。
In the present invention according to claim 1, since the through terminal member is fixed to the current collecting member or the terminal member by friction (friction welding), the through terminal member can be formed in an integrated state, and the number of parts is reduced. The influence on the contact failure can be eliminated. As a result, it is possible to improve reliability by improving electrical performance and mechanical performance at the electrode terminal.
And since there is no mechanical fixation between the current collecting member and the penetrating terminal member, and the fixing work between the current collecting member and the penetrating terminal member becomes unnecessary inside the battery outer member, Without considering the work space, the position of the penetrating terminal member, that is, the position of the terminal member can be arbitrarily set.
In addition, when the end portion of the through terminal member is caulked and fixed to the through hole of the terminal member, the material of the through terminal member bites into the escape portion of the through hole, and the bonding strength in the circumferential direction is improved and the play in the circumferential direction is not stable. The contact state can be kept good.

そして、請求項2に係る本発明の非水電解質二次電池は、請求項1に記載の非水電解質二次電池において、前記貫通端子部材は、回転させながら押し付けることにより生じた摩擦熱による融着により固定されていることを特徴とする。また、請求項3に係る本発明の
非水電解質二次電池は、請求項1に記載の非水電解質二次電池において、前記貫通端子部材は、接合部同士を塑性流動させることで接合部が一体化されて固定されていることを特徴とする。このため、摩擦溶着や摩擦攪拌接合により貫通端子部を一体状態に形成することができる。
A nonaqueous electrolyte secondary battery according to a second aspect of the present invention is the nonaqueous electrolyte secondary battery according to the first aspect, wherein the penetration terminal member is melted by frictional heat generated by pressing while rotating. It is fixed by wearing. Moreover, the nonaqueous electrolyte secondary battery of the present invention according to claim 3 is the nonaqueous electrolyte secondary battery according to claim 1, wherein the through-terminal member causes the joint portion to flow plastically between the joint portions. It is characterized by being integrated and fixed. For this reason, a penetration terminal part can be formed in an integrated state by friction welding or friction stir welding.

また、請求項4に係る本発明の非水電解質二次電池は、請求項1から請求項3のいずれか一項に記載の非水電解質二次電池において、前記貫通端子部材と前記電池外装部材の内側との間にはパッキンが介装され、前記パッキンは、前記貫通端子部材の基端部に嵌合してシール性を保つシールパッキンと、前記シールパッキンに密着して前記貫通端子部材と前記電池外装部材との間に働く力を受ける剛性を有する保持パッキンとからなることを特徴とする。 A nonaqueous electrolyte secondary battery according to a fourth aspect of the present invention is the nonaqueous electrolyte secondary battery according to any one of the first to third aspects, wherein the through-terminal member and the battery exterior member are provided. A packing is interposed between the inner side of the sealing terminal, the packing is fitted to the base end portion of the penetrating terminal member and maintains sealing performance, and the penetrating terminal member is in close contact with the seal packing. It consists of the holding packing which has the rigidity which receives the force which acts between the said battery exterior members.

請求項4に係る本発明では、貫通端子部の基端側はシールパッキンによりシール性が確保され、集電部材と電池外装部材との間に相対的に働く変位方向の力は保持パッキンにより受け持たれ、シール性と剛性を両立させることができる。 In the present invention according to claim 4 , the base end side of the penetrating terminal portion is sealed by the seal packing, and the displacement force acting between the current collecting member and the battery exterior member is received by the holding packing. It is possible to achieve both sealing performance and rigidity.

剛性を有する保持パッキンとしては、例えば、剛性の高いポリフェニレンスルフィド(PPS)樹脂を用いて好適である。また、シール性を保つシールパッキンとしては、例えば、テトラフルオロエチレン・パープルオロアルキルビニルエーテル共重合体(PFA)樹脂や、ポリプロピレン(PP)樹脂を用いて好適である。   As the holding packing having rigidity, for example, polyphenylene sulfide (PPS) resin having high rigidity is preferably used. Further, as the seal packing for maintaining the sealing performance, for example, tetrafluoroethylene / purple oloalkyl vinyl ether copolymer (PFA) resin or polypropylene (PP) resin is preferably used.

また、請求項5に係る本発明の非水電解質二次電池は、請求項4に記載の非水電解質二次電池において、前記端子部材と前記電池外装部材の外側との間には、前記保持パッキンと同一材質の上部パッキンが介装されていることを特徴とする。 The nonaqueous electrolyte secondary battery of the present invention according to claim 5 is the nonaqueous electrolyte secondary battery according to claim 4 , wherein the holding member is disposed between the terminal member and the outside of the battery exterior member. An upper packing made of the same material as the packing is interposed.

請求項5に係る本発明では、端子部材と電池外装部材の間に相対的に働く変位方向の力が剛性を有する上部パッキンにより受け持たれる。 In this invention which concerns on Claim 5 , the force of the displacement direction which acts relatively between a terminal member and a battery exterior member is received by the upper packing which has rigidity.

本発明の非水電解質二次電池は、電流の取り出しを行なうための部材の部品点数を低減し、電極端子の部位での電気的性能や機械的性能を向上させて信頼性を高めることが可能になる。   The non-aqueous electrolyte secondary battery of the present invention can reduce the number of parts of a member for taking out current, improve electrical performance and mechanical performance at the electrode terminal, and increase reliability. become.

図1には本発明の一実施形態例に係る非水電解質二次電池の全体構造を表す分解斜視、図2には電池ケース内部の構造を表す一部破断側面、図3には図2中のIII−III線矢視、図4には正極側の正面視、図5には負極側の正面視、図6には正極側の端子部品の分解状況、図7には貫通端子部材の一実施形態例に係る分解斜視、図8には正極端子部材の詳細状況、図9には負極端子部材の詳細状況、図10には電極群(スタックエレメント)の外観、図11には図10中のX−X線矢視、図12には電極群の製作状況、図13にはセルの接続状況を表す平面、図14には接続バーの接合状況を示してある。   FIG. 1 is an exploded perspective view showing the overall structure of a nonaqueous electrolyte secondary battery according to an embodiment of the present invention, FIG. 2 is a partially broken side view showing the structure inside the battery case, and FIG. 4 is a front view of the positive electrode side, FIG. 5 is a front view of the negative electrode side, FIG. 6 is an exploded view of terminal components on the positive electrode side, and FIG. FIG. 8 shows a detailed situation of the positive electrode terminal member, FIG. 9 shows a detailed situation of the negative electrode terminal member, FIG. 10 shows an appearance of the electrode group (stack element), and FIG. FIG. 12 shows the production status of the electrode group, FIG. 13 shows a plane representing the connection status of the cells, and FIG. 14 shows the joining status of the connection bar.

図1〜図7に基づいて非水電解質二次電池の全体構造を説明する。
図1に示すように、非水電解質二次電池(リチウムイオン二次電池)1は、電池ケース2の内部に電極群3が収容されて構成されている。電極群3の上面部には電池ケース2の蓋部材4(電池外装部材)が接続され、蓋部材4の上面には正極端子部材5及び負極端子部材6が露出して配されている。電極群3の正極部3aは正極側の集電部材としての集電体7に固定され、電極群3の負極部3bは負極側の集電部材としての集電体8に固定されている。集電体7は蓋部材4を挟んで正極端子部材5に導通され、集電体8は蓋部材4を挟んで負極端子部材6に導通されている。
The overall structure of the nonaqueous electrolyte secondary battery will be described with reference to FIGS.
As shown in FIG. 1, a non-aqueous electrolyte secondary battery (lithium ion secondary battery) 1 is configured such that an electrode group 3 is accommodated inside a battery case 2. A lid member 4 (battery exterior member) of the battery case 2 is connected to the upper surface portion of the electrode group 3, and the positive electrode terminal member 5 and the negative electrode terminal member 6 are arranged on the upper surface of the lid member 4 so as to be exposed. The positive electrode portion 3a of the electrode group 3 is fixed to a current collector 7 as a positive current collector, and the negative electrode portion 3b of the electrode group 3 is fixed to a current collector 8 as a negative current collector. The current collector 7 is electrically connected to the positive electrode terminal member 5 with the lid member 4 interposed therebetween, and the current collector 8 is electrically connected to the negative electrode terminal member 6 with the lid member 4 interposed therebetween.

詳細は後述するが、電極群3の正極部3aはアルミ箔の集合体(束)で、集電体7はアルミニウム製とされている。また、電極群3の負極部3bは銅箔の集合体(束)で、集電体8は銅製とされている。   Although details will be described later, the positive electrode portion 3a of the electrode group 3 is an aluminum foil aggregate (bundle), and the current collector 7 is made of aluminum. The negative electrode portion 3b of the electrode group 3 is a copper foil aggregate (bundle), and the current collector 8 is made of copper.

蓋部材4と集電体7、集電体8との接続の状況(電極端子の部位の構造)を説明する。
図2〜図5に示すように、蓋部材4は矩形板状とされ、蓋部材4の内側(図2中下側)の長手方向の端部には集電体7及び集電体8が接続されている。蓋部材4の外側(図2中上側)の長手方向の端部側には集電体7及び集電体8に導通して接続される正極端子部材5及び負極端子部材6が設けられている。
The state of connection between the lid member 4 and the current collector 7 and current collector 8 (structure of the electrode terminal portion) will be described.
As shown in FIGS. 2 to 5, the lid member 4 has a rectangular plate shape, and a current collector 7 and a current collector 8 are disposed at the end in the longitudinal direction on the inner side (lower side in FIG. 2) of the lid member 4. It is connected. A positive electrode terminal member 5 and a negative electrode terminal member 6 that are conductively connected to the current collector 7 and the current collector 8 are provided on the end side in the longitudinal direction on the outer side (upper side in FIG. 2) of the lid member 4. .

集電体7及び集電体8は材質が異なり構造は同一であるので、以下の説明は正極側の集電体7を例に挙げて説明し、負極側の集電体8の説明は省略してある。   Since the current collector 7 and the current collector 8 are different in material and have the same structure, the following description will be given by taking the current collector 7 on the positive electrode side as an example, and description of the current collector 8 on the negative electrode side will be omitted. It is.

集電体7は蓋部材4の内側の面に当接する上面板11と上面板11の端部から下側に向けて延びる長尺接合板12とで構成されている。集電体7は上面板11及び長尺接合板12により側面視で逆L字型に形成され、長尺接合板12の両縁部には長手方向(上下方向)に延びて外側に屈曲した接続板片13が形成され、長尺接合板12は断面コ字型とされている。長尺接合板12の接続板片13には電極群3の2列の正極部3aがそれぞれ接合される。   The current collector 7 includes an upper surface plate 11 that is in contact with the inner surface of the lid member 4 and a long joining plate 12 that extends downward from the end of the upper surface plate 11. The current collector 7 is formed in an inverted L shape in a side view by an upper surface plate 11 and a long joining plate 12, and is extended outward in the longitudinal direction (vertical direction) at both edges of the long joining plate 12. A connecting plate piece 13 is formed, and the long joining plate 12 has a U-shaped cross section. Two rows of positive electrode portions 3a of the electrode group 3 are joined to the connection plate piece 13 of the long joining plate 12, respectively.

図6に示すように、集電体7の上面板11にはアルミニウム製の貫通端子部材15が設けられ、貫通端子部材15は筒状をなし上面板11に溶着されている。   As shown in FIG. 6, an aluminum penetrating terminal member 15 is provided on the upper surface plate 11 of the current collector 7, and the penetrating terminal member 15 has a cylindrical shape and is welded to the upper surface plate 11.

図7に示すように、貫通端子部材15の溶着は、摩擦により接合部位が集電体7の上面板11に固定されている。即ち、筒状の貫通端子部材15を回転させながら上面板11に押し付け、発生した摩擦熱により貫通端子部材15が上面板11に融着して固定される。   As shown in FIG. 7, in the welding of the penetrating terminal member 15, the joint portion is fixed to the upper surface plate 11 of the current collector 7 by friction. That is, the cylindrical penetrating terminal member 15 is pressed against the upper surface plate 11 while rotating, and the penetrating terminal member 15 is fused and fixed to the upper surface plate 11 by the generated frictional heat.

図2、図3、図4、図6に示すように、貫通端子部材15の上部が蓋部材4を貫通して配され、正極端子部材5には貫通端子部材15が貫通(嵌合)する貫通孔16が形成されている。貫通端子部材15の上端部は貫通孔16にかしめ固定されている。貫通端子部材15は筒状をなしているので、かしめ固定の際に材料を均等に周方向に変形させることができる。   As shown in FIGS. 2, 3, 4, and 6, the upper portion of the penetrating terminal member 15 is arranged to penetrate the lid member 4, and the penetrating terminal member 15 penetrates (fits) into the positive terminal member 5. A through hole 16 is formed. The upper end portion of the through terminal member 15 is caulked and fixed to the through hole 16. Since the penetrating terminal member 15 has a cylindrical shape, the material can be uniformly deformed in the circumferential direction during caulking and fixing.

本実施形態例では、集電体7に貫通端子部材15が摩擦により固定(摩擦圧接)されているので、貫通端子部を一体状態に形成することができ、部品点数が減ると共に、接触不良に対する影響をなくすことができる。この結果、電極端子の部位での電気的性能や機械的性能を向上させて信頼性を高めることが可能になる。   In the present embodiment example, since the through terminal member 15 is fixed to the current collector 7 by friction (friction welding), the through terminal portion can be formed in an integrated state, the number of parts is reduced, and contact failure is prevented. The influence can be eliminated. As a result, it is possible to improve reliability by improving electrical performance and mechanical performance at the electrode terminal.

尚、上記実施形態例では、貫通端子部材15を集電体7の上面板11に一体状態に形成した例を挙げて説明したが、正極端子部材5の下面に一体状態に形成することも可能である。   In the above embodiment, the example in which the through terminal member 15 is formed integrally with the upper surface plate 11 of the current collector 7 has been described. However, the through terminal member 15 may be formed integrally with the lower surface of the positive electrode terminal member 5. It is.

一方、図6に示すように、集電体7の上面板11と蓋部材4の間にはパッキンとしての下部パッキン17が介装されている。下部パッキン17は貫通端子部材15の基端部に嵌合してシール性を保持するシールパッキン47と、シールパッキン47に密着して貫通端子部材15と蓋部材4との間に働く力を受ける剛性を有した保持パッキン48とで構成されている。   On the other hand, as shown in FIG. 6, a lower packing 17 as a packing is interposed between the upper surface plate 11 of the current collector 7 and the lid member 4. The lower packing 17 is fitted to the base end portion of the penetrating terminal member 15 so as to maintain a sealing property, and receives a force acting between the penetrating terminal member 15 and the lid member 4 in close contact with the seal packing 47. The holding packing 48 has rigidity.

シールパッキン47は、貫通端子部材15に嵌合する筒部47a及び集電体7の上面板11の上面に密着するフランジ部47bを備えている。保持パッキン48はシールパッキン47のフランジ部47bが嵌合する嵌合穴48aを有し、シールパッキン47のフランジ部47bが保持パッキン48の嵌合穴48aに嵌合することにより、シールパッキン47と保持パッキン48が一体となった下部パッキン17とされる。   The seal packing 47 includes a cylindrical portion 47 a that is fitted to the through terminal member 15 and a flange portion 47 b that is in close contact with the upper surface of the upper surface plate 11 of the current collector 7. The holding packing 48 has a fitting hole 48 a into which the flange portion 47 b of the seal packing 47 is fitted. The flange portion 47 b of the sealing packing 47 is fitted into the fitting hole 48 a of the holding packing 48, thereby The lower packing 17 is formed by integrating the holding packing 48.

尚、保持パッキン48の嵌合穴48aをシールパッキン47のフランジ部47bよりも小さく形成し、シールパッキン47のフランジ部47bを保持パッキン48の嵌合穴48aに重ねる状態にして一体となった下部パッキン17を構成することも可能である。また、シールパッキン47は筒部47aだけの構成とし、筒部47aの外周が嵌合する嵌合穴48aを保持パッキン48に形成することも可能である。   The fitting hole 48a of the holding packing 48 is formed smaller than the flange portion 47b of the seal packing 47, and the flange portion 47b of the sealing packing 47 is overlapped with the fitting hole 48a of the holding packing 48 so as to be integrated. It is also possible to constitute the packing 17. Further, the seal packing 47 may be configured only by the cylindrical portion 47 a, and a fitting hole 48 a into which the outer periphery of the cylindrical portion 47 a is fitted can be formed in the holding packing 48.

正極端子部材5と蓋部材4の間には上部パッキン18が介装され、上部パッキン18には貫通端子部材15が貫通する孔18aが形成されている。上部パッキン18の材質は、下部パッキン17の保持パッキン48と同一材質とされている。   An upper packing 18 is interposed between the positive electrode terminal member 5 and the lid member 4, and a hole 18 a through which the penetrating terminal member 15 passes is formed in the upper packing 18. The material of the upper packing 18 is the same material as the holding packing 48 of the lower packing 17.

下部パッキン17の保持パッキン48及び上部パッキン18は、蓋部材4と密着し電解質に対して耐性を有するもので、剛性の高いポリフェニレンスルフィド(PPS)樹脂が用いられる。また、下部パッキン17のシールパッキン47は、蓋部材4と密着し電解質に対して耐性を有するもので、柔軟性を有するテトラフルオロエチレン・パープルオロアルキルビニルエーテル共重合体(PFA)樹脂が用いられる。   The holding packing 48 and the upper packing 18 of the lower packing 17 are in close contact with the lid member 4 and have resistance to the electrolyte, and a highly rigid polyphenylene sulfide (PPS) resin is used. Further, the seal packing 47 of the lower packing 17 is in close contact with the lid member 4 and has resistance to the electrolyte, and a flexible tetrafluoroethylene / purple oloalkyl vinyl ether copolymer (PFA) resin is used.

尚、下部パッキン17の保持パッキン48及び上部パッキン18としてポリプロピレン(PP)樹脂を用いることも可能である。   Note that polypropylene (PP) resin may be used as the holding packing 48 and the upper packing 18 of the lower packing 17.

貫通端子部材15の上端部は正極端子部材5の貫通孔16にかしめ固定されているため、かしめ固定の際に蓋部材4と集電体7(貫通端子部材15)の間に相対的な変位力が働く。かしめ固定の際に蓋部材4と集電体7(貫通端子部材15)の間に相対的な変位力が働いても、柔軟性を有するシールパッキン47によりシール性が確保される。つまり、圧縮性に優れたシールパッキン47が介在しているので、かしめ固定の際に働く変位力により、貫通端子部材15と蓋部材4との間に隙間等が生じることがない。また、かしめ固定の際に蓋部材4に働く力は、剛性のある保持パッキン48及び上部パッキン18で受けることができる。さらに、貫通端子部材15の頭部をかしめて径を大きくして上下方向に圧迫しているのでシール性が向上する。   Since the upper end portion of the penetrating terminal member 15 is caulked and fixed to the through hole 16 of the positive electrode terminal member 5, relative displacement between the lid member 4 and the current collector 7 (penetrating terminal member 15) during caulking is fixed. Power works. Even when a relative displacement force acts between the lid member 4 and the current collector 7 (through terminal member 15) during the caulking and fixing, the sealing performance is ensured by the flexible seal packing 47. That is, since the seal packing 47 excellent in compressibility is interposed, a gap or the like does not occur between the penetrating terminal member 15 and the lid member 4 due to the displacement force that is applied during caulking. Further, the force acting on the lid member 4 during the caulking and fixing can be received by the rigid holding packing 48 and the upper packing 18. Furthermore, the head of the penetrating terminal member 15 is crimped to increase the diameter and press in the vertical direction, so that the sealing performance is improved.

このため、電極端子の部位で、機械的強度とシール性を両立させることができ、電池の信頼性が低下することがない。特に、電池が大型化された場合の信頼性を維持することが可能になる。   For this reason, the mechanical strength and the sealing performance can be made compatible at the electrode terminal portion, and the reliability of the battery is not lowered. In particular, it is possible to maintain reliability when the battery is enlarged.

図6及び図8、図9に基づいて正極端子部材5及び負極端子部材6を説明する。尚、図6には正極端子部材5側が示されているが、負極端子部材6側の構成も同一であるため、負極端子部材6の説明の際にも図6に示した部材を用いて説明してある。   The positive electrode terminal member 5 and the negative electrode terminal member 6 will be described with reference to FIGS. 6, 8, and 9. Although FIG. 6 shows the positive electrode terminal member 5 side, the structure of the negative electrode terminal member 6 side is also the same, and therefore the negative electrode terminal member 6 will be described using the members shown in FIG. It is.

正極端子部材5を説明する。
図8(a)には正極端子部材5の平面視、図8(b)には正極端子部材5の側面視、図8(c)には貫通孔の詳細を示してある。
The positive electrode terminal member 5 will be described.
8A shows a plan view of the positive electrode terminal member 5, FIG. 8B shows a side view of the positive electrode terminal member 5, and FIG. 8C shows details of the through holes.

図8(a)、図8(b)に示すように、正極端子部材5は、蓋部材4の上面の上部パッキン18に密着する密着板部21を有し、密着板部21には貫通端子部材15が貫通する貫通孔16が形成されている。密着板部21に連続して接続板部22が形成され、接続板部22は上部パッキン18との間に隙間を介した状態で配されている。接続板部22には一対の端子爪23a、23bが形成され、一対の端子爪23a、23bは蓋部材4の長手方向に対して直交する方向(図8中上下方向)に並設されている。   As shown in FIGS. 8A and 8B, the positive electrode terminal member 5 has a contact plate portion 21 that is in close contact with the upper packing 18 on the upper surface of the lid member 4. A through hole 16 through which the member 15 passes is formed. A connection plate portion 22 is formed continuously with the contact plate portion 21, and the connection plate portion 22 is disposed between the upper packing 18 and a gap. A pair of terminal claws 23 a and 23 b is formed on the connection plate portion 22, and the pair of terminal claws 23 a and 23 b are arranged in parallel in a direction (vertical direction in FIG. 8) orthogonal to the longitudinal direction of the lid member 4. .

負極端子部材6を説明する。
図9(a)には負極端子部材6の平面視、図9(b)には負極端子部材6の側面視、図9(c)には貫通孔の詳細を示してある。
The negative electrode terminal member 6 will be described.
9A shows a plan view of the negative electrode terminal member 6, FIG. 9B shows a side view of the negative electrode terminal member 6, and FIG. 9C shows details of the through hole.

図9(a)、図9(b)に示すように、負極端子部材6は、蓋部材4の上面の上部パッキン18に密着する密着板部27を有し、密着板部27には貫通端子部材15が貫通する貫通孔26が形成されている。密着板部27に連続して接続板部28が形成され、接続板部28は上部パッキン18との間に隙間を介した状態で配されている。接続板部28には一対の端子爪29a、29bが形成され、一対の端子爪29a、29bは蓋部材4の長手方向に沿った方向(図9中左右方向)に並設されている。   As shown in FIGS. 9A and 9B, the negative electrode terminal member 6 has a contact plate portion 27 that is in close contact with the upper packing 18 on the upper surface of the lid member 4, and the contact plate portion 27 includes a through terminal. A through hole 26 through which the member 15 passes is formed. A connection plate portion 28 is formed continuously with the close contact plate portion 27, and the connection plate portion 28 is disposed between the upper packing 18 and a gap. A pair of terminal claws 29 a and 29 b are formed on the connection plate portion 28, and the pair of terminal claws 29 a and 29 b are juxtaposed in a direction along the longitudinal direction of the lid member 4 (left and right direction in FIG. 9).

つまり、接続板部22の一対の端子爪23a、23bの並設方向(長手方向)と、接続板部28の一対の端子爪29a、29bの並設方向(長手方向)とは、蓋部材4の平面内(端子部材の平面内)で直交して配された状態になっている。   In other words, the parallel arrangement direction (longitudinal direction) of the pair of terminal claws 23 a and 23 b of the connection plate portion 22 and the parallel arrangement direction (longitudinal direction) of the pair of terminal claws 29 a and 29 b of the connection plate portion 28 are the lid member 4. In the plane (in the plane of the terminal member).

図8(c)に示すように、正極端子部材5の密着板部21の貫通孔16の内周には、周方向の4箇所に逃げ部24が形成されている。図9(c)に示すように、負極端子部材6の密着板部27の貫通孔26の内周には、周方向の4箇所に逃げ部30が形成されている。このため、正極端子部材5の貫通孔16及び負極端子部材6の貫通孔26に貫通端子部材15の上端部をかしめ固定した場合、貫通端子部材15の材料が逃げ部24及び逃げ部30に食い込み、貫通端子部材15の周方向の接合強度が向上して周方向のガタ付きがなくなる。   As shown in FIG. 8C, relief portions 24 are formed at four locations in the circumferential direction on the inner periphery of the through hole 16 of the contact plate portion 21 of the positive electrode terminal member 5. As shown in FIG. 9C, relief portions 30 are formed at four locations in the circumferential direction on the inner periphery of the through hole 26 of the contact plate portion 27 of the negative electrode terminal member 6. Therefore, when the upper end portion of the through terminal member 15 is caulked and fixed to the through hole 16 of the positive electrode terminal member 5 and the through hole 26 of the negative electrode terminal member 6, the material of the through terminal member 15 bites into the escape portion 24 and the escape portion 30. Further, the joining strength in the circumferential direction of the through-terminal member 15 is improved and the play in the circumferential direction is eliminated.

従って、貫通端子部材15を介しての集電体7及び集電体8と正極端子部材5及び負極端子部材6との接触状態を良好に保つことができ、電気的性能や機械的性能を向上させることができる。   Therefore, the contact state between the current collector 7 and the current collector 8 and the positive electrode terminal member 5 and the negative electrode terminal member 6 through the penetrating terminal member 15 can be kept good, and the electrical performance and mechanical performance are improved. Can be made.

図10、図11に基づいて電極群3を説明する。
図に示すように、電極群3は、正極側のアルミ箔55と負極側の銅箔56が交互に多数積層され、アルミ箔55及び銅箔56には活物質が保持されてセパレータで仕切られている。アルミ箔55の端部(活物質未保持部)同士と銅箔56の端部(活物質未保持部)同士が互いに逆側の端部で重ねられ、アルミ箔55の端部が束ねられて正極部3aとされ、銅箔56の端部が束ねられて負極部3bとされている。電極群3の正極部3a及び負極部3bはそれぞれ2列設けられた状態になっている。つまり、一つの電極群3(1セル)あたりで、スタックが2つに分割された状態になっている。
The electrode group 3 is demonstrated based on FIG. 10, FIG.
As shown in the figure, in the electrode group 3, a large number of aluminum foils 55 on the positive electrode side and copper foils 56 on the negative electrode side are alternately stacked, and the aluminum foil 55 and the copper foil 56 hold an active material and are partitioned by a separator. ing. The end portions of the aluminum foil 55 (active material non-holding portions) and the end portions of the copper foil 56 (active material non-holding portions) are overlapped with each other on the opposite ends, and the end portions of the aluminum foil 55 are bundled together. A positive electrode portion 3a is formed, and ends of the copper foil 56 are bundled to form a negative electrode portion 3b. The positive electrode part 3a and the negative electrode part 3b of the electrode group 3 are in a state of being provided in two rows. That is, the stack is divided into two per one electrode group 3 (one cell).

図12に基づいて電極群の製作状況を説明する。図12には一つのスタックを示してある。
図12(a)に示すように、活物質が保持されていない部位のアルミ箔55の端部が一方側で積層され、活物質が保持されていない部位の銅箔56の端部が他方側で積層されている。図12(b)に示すように、一方側のアルミ箔55の端部及び他方側の銅箔56の積層部位を束ね(箔よせ)、折り曲げ・裁断して長さを揃える。図12(c)に示すように、端部の長さを揃えて仮止めし、図示しない止め具等で固定して接合し、所定の状態の正極部3a及び負極部3bとする。
The production status of the electrode group will be described with reference to FIG. FIG. 12 shows one stack.
As shown in FIG. 12 (a), the end of the aluminum foil 55 where the active material is not held is laminated on one side, and the end of the copper foil 56 where the active material is not held is on the other side. Are stacked. As shown in FIG. 12 (b), the end portions of the aluminum foil 55 on one side and the laminated portion of the copper foil 56 on the other side are bundled (foiled), bent and cut to make the lengths uniform. As shown in FIG. 12 (c), the end portions are temporarily fixed in length and fixed and joined with a not-shown fastener or the like to form a positive electrode portion 3a and a negative electrode portion 3b in a predetermined state.

電極群3は箔の積層方向に厚さがあり、端部を箔よせした際に、厚さ方向の中央に位置する箔に比べて両側に位置する箔が短くなる。このため、アルミ箔55の端部及び銅箔56の端部の長さ(活物質未保持部)を十分に確保し、折り曲げ・裁断が不能にならないように、箔よせが実施される。   The electrode group 3 has a thickness in the foil stacking direction, and when the end portion is made of foil, the foils located on both sides are shorter than the foil located in the center in the thickness direction. For this reason, the length of the end portion of the aluminum foil 55 and the end portion of the copper foil 56 (active material non-holding portion) is sufficiently secured, and the foil is tempered so that bending and cutting are not impossible.

本実施形態例では、スタックが2つに分割された状態になっているので、箔よせして接合する電極の集電箇所が増加し、また、集電体7(8)に保持される箇所が増加するので、集電部の抵抗を減らして機械的強度を高めることができる。   In the present embodiment example, the stack is divided into two, so that the number of current collecting points of the electrodes to be joined together with the foil is increased, and the portion held by the current collector 7 (8) Therefore, the resistance of the current collector can be reduced and the mechanical strength can be increased.

図13、図14に基づいて、図1に示した非水電解質二次電池1を複数並べて接続した状態、即ち、複数のセルを複数並べて接続した状態を説明する。
図13に示すように、隣接する非水電解質二次電池1は、正極端子部材5と負極端子部材6が隣接する状態に交互に配される。隣接する正極端子部材5と負極端子部材6は接続バー31により接続され、複数の非水電解質二次電池1が直列につながれた電池ユニットが構成される。このため、接続バー31は非水電解質二次電池1の蓋部材4の長手方向に直交する方向に長手を有する部材とされている。
Based on FIGS. 13 and 14, a state in which a plurality of nonaqueous electrolyte secondary batteries 1 shown in FIG. 1 are arranged and connected, that is, a state in which a plurality of cells are arranged and connected will be described.
As shown in FIG. 13, adjacent nonaqueous electrolyte secondary batteries 1 are alternately arranged in a state where the positive electrode terminal members 5 and the negative electrode terminal members 6 are adjacent to each other. The adjacent positive electrode terminal member 5 and negative electrode terminal member 6 are connected by a connection bar 31 to form a battery unit in which a plurality of nonaqueous electrolyte secondary batteries 1 are connected in series. For this reason, the connection bar 31 is a member having a length in a direction orthogonal to the length direction of the lid member 4 of the nonaqueous electrolyte secondary battery 1.

接続バー31を説明する。
接続バー31の一端には正極端子部材5に接続される正極接続部32が設けられ、接続バー31の他端には負極端子部材6に接続される負極接続部33が設けられている。
The connection bar 31 will be described.
One end of the connection bar 31 is provided with a positive electrode connection portion 32 connected to the positive electrode terminal member 5, and the other end of the connection bar 31 is provided with a negative electrode connection portion 33 connected to the negative electrode terminal member 6.

正極接続部32には、接続バー31の長手方向に沿った長孔34、即ち、蓋部材4の長手方向に直交する方向に延びる長孔34が形成されている。長孔34の長辺縁部には一対の接続爪35a、35bが長手方向に沿って設けられ、長孔34の端部と一対の接続爪35a、35bの間には隙間sが形成されている。接続爪35a、35bは長手方向(並設方向)が正極端子部材5の端子爪23a、23bに対応して形成されている。   In the positive electrode connection portion 32, a long hole 34 extending in the longitudinal direction of the connection bar 31, that is, a long hole 34 extending in a direction orthogonal to the longitudinal direction of the lid member 4 is formed. A pair of connecting claws 35a and 35b are provided along the longitudinal direction at the long side edge of the long hole 34, and a gap s is formed between the end of the long hole 34 and the pair of connecting claws 35a and 35b. Yes. The connecting claws 35 a and 35 b are formed so that the longitudinal direction (parallel direction) corresponds to the terminal claws 23 a and 23 b of the positive electrode terminal member 5.

負極接続部33には、接続バー31の長手方向に直交する方向に沿った長孔36、即ち、蓋部材4の長手方向に延びる長孔36が形成されている。長孔36の縁部には一対の接続爪37a、37bが長手方向に沿って設けられ、長孔36の端部と一対の接続爪37a、37bの間には隙間sが形成されている。接続爪37a、37bは長手方向(並設方向)が負極端子部材6の端子爪29a、29bに対応して形成されている。   The negative electrode connecting portion 33 is formed with a long hole 36 extending in the direction perpendicular to the longitudinal direction of the connection bar 31, that is, a long hole 36 extending in the longitudinal direction of the lid member 4. A pair of connecting claws 37a and 37b are provided along the longitudinal direction at the edge of the long hole 36, and a gap s is formed between the end of the long hole 36 and the pair of connecting claws 37a and 37b. The connecting claws 37 a and 37 b are formed so that the longitudinal direction (parallel arrangement direction) corresponds to the terminal claws 29 a and 29 b of the negative electrode terminal member 6.

図14(a)に示すように、接続バー31の正極接続部32の長孔34が正極端子部材5の端子爪23a、23bに嵌め込まれると共に、負極接続部33の長孔36が負極端子部材6の端子爪29a、29bに嵌め込まれる。正極端子部材5の端子爪23a、23bと負極端子部材6の端子爪29a、29bの長手方向(並設方向)は互いに直行する方向に交差し、接続バー31の長孔34と長孔36の長手方向は端子爪23a、23bと端子爪29a、29bの長手方向に沿っているので、接続バー31は、正極端子部材5と負極端子部材6との間の接続だけが許容される。   As shown in FIG. 14A, the long hole 34 of the positive electrode connecting portion 32 of the connection bar 31 is fitted into the terminal claws 23a, 23b of the positive electrode terminal member 5, and the long hole 36 of the negative electrode connecting portion 33 is negative electrode terminal member. 6 terminal claws 29a and 29b. The longitudinal direction (parallel direction) of the terminal claws 23a, 23b of the positive electrode terminal member 5 and the terminal claws 29a, 29b of the negative electrode terminal member 6 intersect each other in a direction perpendicular to each other, and the long holes 34 and 36 of the connection bar 31 Since the longitudinal direction is along the longitudinal direction of the terminal claws 23a, 23b and the terminal claws 29a, 29b, the connection bar 31 is allowed to connect only between the positive terminal member 5 and the negative terminal member 6.

つまり、接続バー31は正極と負極との間の接続だけが許容され、非水電解質二次電池1の正極同士、負極同士を並べた際であっても、隣接する端子部材間には接続バー31を装着することができないので、正極と負極の極性間を間違えて接続することがない。このため、接続バー31を用いることで、作業ミス及びショート等の不具合をなくすことができる。   That is, the connection bar 31 only allows connection between the positive electrode and the negative electrode, and even when the positive electrodes and the negative electrodes of the non-aqueous electrolyte secondary battery 1 are arranged, the connection bar 31 has a connection bar between adjacent terminal members. Since 31 cannot be attached, the polarity of the positive electrode and the negative electrode is not wrongly connected. For this reason, the use of the connection bar 31 can eliminate problems such as work mistakes and short circuits.

接続バー31の正極接続部32及び負極接続部33が正極端子部材5及び負極端子部材6に嵌め込まれ、接続爪35a、35bと端子爪23a、23bが突き合わされ、接続爪37a、37bと端子爪29a、29bが付き合わされる。図14(b)に示すように、接続爪35a、35bと端子爪23a、23bの上部、接続爪37a、37bと端子爪29a、29bの上部がそれぞれ溶接(TIG溶接等)されて溶接部50により接合される。これにより、正極端子部材5と負極端子部材6とが接合固定される。   The positive electrode connection portion 32 and the negative electrode connection portion 33 of the connection bar 31 are fitted into the positive electrode terminal member 5 and the negative electrode terminal member 6, the connection claws 35a and 35b and the terminal claws 23a and 23b are abutted, and the connection claws 37a and 37b and the terminal claws 29a and 29b are brought together. As shown in FIG. 14 (b), the connection claws 35a and 35b and the upper portions of the terminal claws 23a and 23b, and the connection claws 37a and 37b and the upper portions of the terminal claws 29a and 29b are welded (TIG welding or the like), respectively. Are joined together. Thereby, the positive electrode terminal member 5 and the negative electrode terminal member 6 are bonded and fixed.

接続バー31を用いたことにより、ボルト、ナット等の締結部材を用いることなく、また、極性の間違えが生じない状態で、非水電解質二次電池1の極性間の接続を行うことができ、接合が簡単且つ確実になり、接続のための部品点数及び作業工数の削減が可能になり、更に、接続スペースを削減することができる。   By using the connection bar 31, it is possible to connect between the polarities of the nonaqueous electrolyte secondary battery 1 without using fastening members such as bolts and nuts and in a state where the polarity is not mistaken, Joining is simple and reliable, the number of parts for connection and the number of work steps can be reduced, and the connection space can be reduced.

また、接続バー31の長孔34の端部と一対の接続爪35a、35bの間には隙間sが形成され、長孔36の端部と一対の接続爪37a、37bの間には隙間sが形成されているので、非水電解質二次電池1がずれて配されていても、隙間sの範囲で吸収される。隙間sは、互いに直交する長孔34、長孔36の端部にそれぞれ備えられているので、非水電解質二次電池1の水平面内の任意の方向の相対的な位置ずれを吸収することができる。   A gap s is formed between the end of the long hole 34 of the connection bar 31 and the pair of connection claws 35a and 35b, and a gap s is formed between the end of the long hole 36 and the pair of connection claws 37a and 37b. Therefore, even if the non-aqueous electrolyte secondary battery 1 is shifted and disposed, it is absorbed within the gap s. Since the gaps s are provided at the ends of the elongated hole 34 and the elongated hole 36 that are orthogonal to each other, the relative displacement in an arbitrary direction within the horizontal plane of the nonaqueous electrolyte secondary battery 1 can be absorbed. it can.

尚、接続バー31の正極接続部32、負極接続部33にそれぞれ一対の接続爪を設け、接続爪と端子部材の端子爪を対向させるようにしたが、端子爪が挿入されて挟持する嵌入爪を設けることも可能である。   A pair of connection claws are provided on the positive electrode connection portion 32 and the negative electrode connection portion 33 of the connection bar 31, respectively, so that the connection claws and the terminal claws of the terminal member are opposed to each other. It is also possible to provide.

図15に基づいて貫通端子部材15と集電体7の接合状況の他の実施形態例を説明する。本実施形態例の貫通端子部材15は摩擦攪拌接合により集電体7の上面板11に一体状態に設けられている。   Based on FIG. 15, another embodiment of the joining state of the through terminal member 15 and the current collector 7 will be described. The through terminal member 15 of the present embodiment is integrally provided on the upper surface plate 11 of the current collector 7 by friction stir welding.

図15(a)に示すように、貫通端子部材15の下端部にはフランジ部61が形成され、集電体7の上面板11の貫通端子部材15の取り付け部位には円盤状の凹部62が形成されている。上面板11の凹部62に貫通端子部材15のフランジ部61を嵌合することで、上面板11の上面とフランジ部61の上面が面一状態になって貫通端子部材15が集電体7に保持される。   As shown in FIG. 15 (a), a flange portion 61 is formed at the lower end portion of the penetrating terminal member 15, and a disk-shaped concave portion 62 is formed at the attachment portion of the penetrating terminal member 15 of the upper surface plate 11 of the current collector 7. Is formed. By fitting the flange portion 61 of the penetrating terminal member 15 into the concave portion 62 of the upper surface plate 11, the upper surface of the upper surface plate 11 and the upper surface of the flange portion 61 are flush with each other, and the penetrating terminal member 15 becomes the current collector 7. Retained.

この状態で、フランジ部61の外周部の嵌合部位(フランジ部61と凹部62の接合部)に鉄鋼製の回転工具63を回転させながら押し付けて接合部に貫入させる。回転工具63を回転させながら接合部に沿って移動させ、接合部に摩擦熱を発生させ、接合部を軟化させると共に接合部同士を塑性流動させてフランジ部61と凹部62を一体化させる。即ち、摩擦攪拌接合により集電体7の上面板11に貫通端子部材15を一体状態に固定し、上面板11に貫通端子部材15が一体状態に設けられた状態にする。   In this state, the rotating tool 63 made of steel is pressed against the fitting portion (joint portion between the flange portion 61 and the recess 62) on the outer peripheral portion of the flange portion 61 so as to penetrate the joint portion. The rotary tool 63 is rotated and moved along the joint, frictional heat is generated at the joint, the joint is softened, and the joints are plastically flowed to integrate the flange 61 and the recess 62. That is, the through-terminal member 15 is fixed to the upper surface plate 11 of the current collector 7 by friction stir welding, and the through-terminal member 15 is integrally provided on the upper surface plate 11.

このため、集電体7に貫通端子部材15が接合部同士の塑性流動により固定されるので、貫通端子部材15を一体状態に形成することができ、部品点数が減ると共に、接触不良に対する影響をなくすことができる。この結果、電極端子の部位での電気的性能や機械的性能を向上させて信頼性を高めることが可能になる。   For this reason, since the penetration terminal member 15 is fixed to the current collector 7 by plastic flow between the joint portions, the penetration terminal member 15 can be formed in an integrated state, the number of parts is reduced, and the influence on contact failure is affected. Can be eliminated. As a result, it is possible to improve reliability by improving electrical performance and mechanical performance at the electrode terminal.

上述した本発明の構成では、電極群3に接続される長尺接合板12と貫通端子部材15が一体状態になった一つの部材で構成され、別体の貫通端子部材をかしめ等により上面板11に固定する構成に比べ、電気的性能及び機械的性能を向上させることができる。特に、集電体7はアルミニウム製であるので、アルミニウム同士のかしめによる強度不足や接触抵抗増加等の不具合をなくすことができる。更に、部品点数を削減することができる。従って、電気的信頼性及び機械的な信頼性が大幅に向上すると共に、表面酸化を考慮した部品管理が不要になって部品管理が容易になる。   In the configuration of the present invention described above, the long joining plate 12 connected to the electrode group 3 and the through terminal member 15 are formed as one member, and the upper plate is formed by caulking the separate through terminal member. Compared with the structure fixed to 11, electrical performance and mechanical performance can be improved. In particular, since the current collector 7 is made of aluminum, problems such as insufficient strength and increased contact resistance due to caulking of aluminum can be eliminated. Furthermore, the number of parts can be reduced. Therefore, the electrical reliability and the mechanical reliability are greatly improved, and the parts management considering the surface oxidation becomes unnecessary, and the parts management becomes easy.

集電体7及び集電体8の貫通端子部材15が上面板11と一体状態に固定されていることで、上面板11の下面側で貫通端子部材15のかしめ作業が不要になり、上面板11の下面側に作業スペースを確保する必要がない。このため、上面板11の端部から下側に向けて延びる長尺接合板12が存在していても、上面板11の端部寄り(蓋部材4の端部寄り)に貫通端子部材15を形成することができ、正極端子部材5(負極端子部材6)の端子爪23a、23b(29a、29b)までの貫通端子部材15を経由しての電気的な経路長が短くなり、回路抵抗を小さくすることが可能になる。また、正極端子部材5(負極端子部材6)を及び上面板11を小型化することができ、接続部位を構成する部材の材料の使用量を減らすことができる。   Since the through-terminal members 15 of the current collector 7 and the current collector 8 are fixed integrally with the upper surface plate 11, the caulking work of the through-terminal member 15 on the lower surface side of the upper surface plate 11 becomes unnecessary, and the upper surface plate It is not necessary to secure a work space on the lower surface side of 11. For this reason, even if the long joining plate 12 extending downward from the end portion of the upper surface plate 11 exists, the penetrating terminal member 15 is disposed closer to the end portion of the upper surface plate 11 (closer to the end portion of the lid member 4). The electrical path length through the penetrating terminal member 15 to the terminal claws 23a, 23b (29a, 29b) of the positive electrode terminal member 5 (negative electrode terminal member 6) can be shortened, and the circuit resistance can be reduced. It becomes possible to make it smaller. Moreover, the positive electrode terminal member 5 (negative electrode terminal member 6) and the upper surface board 11 can be reduced in size, and the usage-amount of the material of the member which comprises a connection part can be reduced.

上述した本実施形態例の非水電解質二次電池1は、電流の取り出しを行なうための部材の部品点数を低減し、電極端子の部位での電気的性能や機械的性能を向上させて信頼性を高めることが可能になる。   The non-aqueous electrolyte secondary battery 1 of the present embodiment described above is reliable by reducing the number of parts of a member for taking out current and improving electrical performance and mechanical performance at the electrode terminal. Can be increased.

本発明は、非水電解質二次電池の産業分野で利用することができる。   The present invention can be used in the industrial field of non-aqueous electrolyte secondary batteries.

本発明の一実施形態例に係る非水電解質二次電池の全体構造を表す分解斜視図である。It is a disassembled perspective view showing the whole structure of the nonaqueous electrolyte secondary battery concerning the example of one embodiment of the present invention. 電池ケース内部の構造を表す一部破断側面図である。It is a partially broken side view showing the structure inside a battery case. 図2中のIII−III線矢視図である。It is the III-III arrow directional view in FIG. 正極側の正面図である。It is a front view on the positive electrode side. 負極側の正面図である。It is a front view on the negative electrode side. 正極側の端子部品の分解側面図である。It is an exploded side view of the terminal component on the positive electrode side. 貫通端子部材の一実施形態例に係る分解斜視図である。It is an exploded perspective view concerning one example of an embodiment of a penetration terminal member. 正極端子部材の詳細図である。It is detail drawing of a positive electrode terminal member. 負極端子部材の詳細図である。It is detail drawing of a negative electrode terminal member. 電極群(スタックエレメント)の外観図である。It is an external view of an electrode group (stack element). 図10中のX−X線矢視図である。It is a XX arrow directional view in FIG. 電極群の製作工程図である。It is a manufacturing process figure of an electrode group. セルの接続状況を表す平面図である。It is a top view showing the connection condition of a cell. 接続バーの接合状況説明図である。It is joining state explanatory drawing of a connection bar. 貫通端子部材の他の実施形態例に係る接合状況説明図である。It is joining condition explanatory drawing which concerns on the other embodiment example of a penetration terminal member.

符号の説明Explanation of symbols

1 非水電解質二次電池
2 電池ケース
3 電極群
4 蓋部材
5 正極端子部材
6 負極端子部材
7 集電体(正極側)
8 集電体(負極側)
11 上面板
12 長尺接合板
13 接続板片
15 貫通端子部材
16、26 貫通孔
17 下部パッキン
18 上部パッキン
21、27 密着板部
22、28 接続板部
23、29 端子爪
24、30 逃げ部
31 接続バー
32 正極接続部
33 負極接続部
34 長孔(正極側)
35、37 接続爪
36 長孔(負極側)
47 シールパッキン
48 保持パッキン
50 溶接部
61 フランジ部
62 凹部
63 回転工具
DESCRIPTION OF SYMBOLS 1 Nonaqueous electrolyte secondary battery 2 Battery case 3 Electrode group 4 Lid member 5 Positive electrode terminal member 6 Negative electrode terminal member 7 Current collector (positive electrode side)
8 Current collector (negative electrode side)
DESCRIPTION OF SYMBOLS 11 Upper surface board 12 Long joining board 13 Connection board piece 15 Through-terminal member 16, 26 Through-hole 17 Lower packing 18 Upper packing 21, 27 Contact board part 22, 28 Connection board part 23, 29 Terminal claw 24, 30 Escape part 31 Connection bar 32 Positive electrode connection 33 Negative electrode connection 34 Long hole (positive electrode side)
35, 37 Connection claw 36 Long hole (negative electrode side)
47 Seal packing 48 Holding packing 50 Welding part 61 Flange part 62 Recessed part 63 Rotating tool

Claims (5)

電池外装部材の内側に設けられ電極に導通する集電部材と、
前記電池外装部材の外側に設けられる端子部材と、
前記電池外装部材を貫通して設けられ前記集電部材と前記端子部材とを導通する貫通端子部材とを備え、
前記貫通端子部材は、摩擦により接合部位が前記集電部材に固定されて前記電池外装部材側に突出し、
前記端子部材には、前記貫通端子部材が貫通し、前記貫通端子部材の端部がかしめられることで固定される貫通孔が備えられ、
前記貫通孔の内周には、逃げ部が形成されている
ことを特徴とする非水電解質二次電池。
A current collecting member provided on the inside of the battery exterior member and conducting to the electrode;
A terminal member provided outside the battery exterior member;
A penetrating terminal member provided through the battery exterior member and conducting the current collecting member and the terminal member;
The feedthrough terminal member protrudes to the battery exterior member side joining site by friction is secured to the current collector member,
The terminal member is provided with a through hole that is penetrated by the through terminal member and fixed by caulking an end portion of the through terminal member.
A nonaqueous electrolyte secondary battery, wherein an escape portion is formed in an inner periphery of the through hole .
請求項1に記載の非水電解質二次電池において、
前記貫通端子部材は、回転させながら押し付けることにより生じた摩擦熱による融着により固定されている
ことを特徴とする非水電解質二次電池。
The nonaqueous electrolyte secondary battery according to claim 1,
The non-aqueous electrolyte secondary battery, wherein the through-terminal member is fixed by fusion due to frictional heat generated by being pressed while rotating.
請求項1に記載の非水電解質二次電池において、
前記貫通端子部材は、接合部同士を塑性流動させることで接合部が一体化されて固定されている
ことを特徴とする非水電解質二次電池。
The nonaqueous electrolyte secondary battery according to claim 1,
The non-aqueous electrolyte secondary battery, wherein the through-terminal member is integrally fixed by causing the joints to flow plastically.
請求項1から請求項3のいずれか一項に記載の非水電解質二次電池において、
前記貫通端子部材と前記電池外装部材の内側との間にはパッキンが介装され、
前記パッキンは、前記貫通端子部材の基端部に嵌合してシール性を保つシールパッキンと、前記シールパッキンに密着して前記貫通端子部材と前記電池外装部材との間に働く力を受ける剛性を有する保持パッキンとからなる
ことを特徴とする非水電解質二次電池。
The nonaqueous electrolyte secondary battery according to any one of claims 1 to 3,
A packing is interposed between the through terminal member and the inside of the battery exterior member,
The packing includes a seal packing that is fitted to a base end portion of the through terminal member to maintain a sealing property, and a rigidity that is in close contact with the seal packing and receives a force acting between the through terminal member and the battery exterior member. A non-aqueous electrolyte secondary battery comprising: a holding packing having :
請求項4に記載の非水電解質二次電池において、
前記端子部材と前記電池外装部材の外側との間には、前記保持パッキンと同一材質の上部パッキンが介装されている
ことを特徴とする非水電解質二次電池。
The nonaqueous electrolyte secondary battery according to claim 4,
The non-aqueous electrolyte secondary battery , wherein an upper packing made of the same material as that of the holding packing is interposed between the terminal member and the outside of the battery exterior member .
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