JP5176312B2 - Battery pack and manufacturing method thereof - Google Patents

Battery pack and manufacturing method thereof Download PDF

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JP5176312B2
JP5176312B2 JP2006330998A JP2006330998A JP5176312B2 JP 5176312 B2 JP5176312 B2 JP 5176312B2 JP 2006330998 A JP2006330998 A JP 2006330998A JP 2006330998 A JP2006330998 A JP 2006330998A JP 5176312 B2 JP5176312 B2 JP 5176312B2
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assembled battery
voltage detection
electrode tab
fitting portion
fitting
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JP2008146943A (en
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誠二 尾藤
英明 蒲原
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Nissan Motor 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
    • Y02E60/00Enabling technologies; Technologies with a potential or indirect contribution to GHG emissions mitigation
    • Y02E60/10Energy storage using batteries

Description

本発明は、複数の電池を積層して直列および/または並列に接続した組電池、およびその製造方法に関する。   The present invention relates to an assembled battery in which a plurality of batteries are stacked and connected in series and / or in parallel, and a manufacturing method thereof.

シート状の外装部材内に発電要素を封止し、発電要素に接続された板状の電極タブ(電極端子)を外装部材の外部に導出した扁平型電池を複数積層して形成された電池モジュールが知られている。このような電池モジュールにおいては、積層された複数の扁平型電池の各電極タブにクリップ状の接続端子(接続クリップ)を接続し、各扁平型電池の電圧を検出することによって各扁平型電池の出力電力や容量を制御する制御装置(外部装置)が設けられている(特許文献1参照)。なお、電池モジュールは電気的に接続された複数枚の扁平型電池を含むので、組電池の一種である。   A battery module formed by laminating a plurality of flat batteries in which a power generation element is sealed in a sheet-shaped exterior member and plate-like electrode tabs (electrode terminals) connected to the power generation element are led out of the exterior member It has been known. In such a battery module, a clip-shaped connection terminal (connection clip) is connected to each electrode tab of a plurality of stacked flat batteries, and the voltage of each flat battery is detected by detecting the voltage of each flat battery. A control device (external device) for controlling output power and capacity is provided (see Patent Document 1). Note that the battery module is a kind of battery pack because it includes a plurality of electrically connected flat batteries.

電池モジュールを構成する扁平型電池の電極タブは通常0.5mm程度の薄板であるので剛性が低く、これにクリップ状の電圧検出用コネクタをそのまま接続するのは困難である。そこで、特許文献1では、電極タブにこれよりも剛性の高い導電性の電圧検出用端子部材を接続し、この電圧検出用端子部材に電圧検出用コネクタを差し込むことによって、電圧検出用端子部材を介して電極タブと接続クリップとを電気的に接続する構造を採用している。
特開2005−116440号公報
The electrode tab of the flat battery constituting the battery module is usually a thin plate of about 0.5 mm and has low rigidity, and it is difficult to connect the clip-shaped voltage detection connector as it is. Therefore, in Patent Document 1, a voltage detection terminal member having a higher rigidity than that of the electrode tab is connected to the electrode tab, and the voltage detection connector is inserted into the voltage detection terminal member. A structure is employed in which the electrode tab and the connection clip are electrically connected to each other.
JP-A-2005-116440

ところで、特許文献1では、電圧検出用端子部材を介して電極タブと電圧検出用コネクタとを電気的に接続する構造であるので、部品点数が増大し、電極タブと電圧検出用端子部材との接続作業が必要となるため、電池モジュールの組立作業工程における工数も増大して、製造コストを増大させる要因となっていた。   By the way, in patent document 1, since it is a structure which electrically connects an electrode tab and a voltage detection connector via a voltage detection terminal member, the number of parts increases, and an electrode tab and a voltage detection terminal member are Since connection work is required, the number of man-hours in the battery module assembly work process is increased, which increases manufacturing costs.

本発明は、上記の事情に鑑みて創案されたものであり、部品点数を削減し、組電池の組立作業工程を簡略化して作業工数を低減することができ、製造コストを低下させることができる組電池およびその製造方法を提供することを目的とする。   The present invention was devised in view of the above circumstances, and can reduce the number of parts, simplify the assembly process of the assembled battery, reduce the work man-hours, and reduce the manufacturing cost. It is an object of the present invention to provide an assembled battery and a manufacturing method thereof.

上記目的を達成するための本発明に係る組電池は、複数の薄型電池を薄型電池の厚み方向に積層し、積層方向に相隣接する板状の電極タブ同士を接続して、前記複数の薄型電池を電気的に直列および/または並列に接続してなる組電池であって、積層方向に重なり合って相隣接する複数の電極タブの少なくとも1つの電極タブに、電圧検出用コネクタの差し込み方向に対して直交する方向に、電圧検出用コネクタを差し込んで嵌合するための凸状の嵌合部を複数成形し、前記嵌合部は前記積層方向に膨出させた形状を有し、これら嵌合部間に前記電圧検出用コネクタが差し込み接続されることを特徴とする。 In order to achieve the above object, an assembled battery according to the present invention includes a plurality of thin batteries stacked in the thickness direction of the thin batteries, and plate electrode tabs adjacent to each other in the stacking direction are connected to each other. A battery assembly in which batteries are electrically connected in series and / or in parallel, and the voltage detection connector is inserted into at least one electrode tab of a plurality of adjacent electrode tabs overlapping in the stacking direction. in a direction perpendicular Te, the convex fitting part for fitting insert the voltage detection connector plurality molding, the fitting portion have a shape that is bulged in the stacking direction, fit the voltage detection connector is plug connection, characterized in Rukoto between parts.

上記目的を達成するための本発明に係る組電池の製造方法は、複数の薄型電池を薄型電池の厚み方向に積層し、積層方向に相隣接する板状の電極タブ同士を接続して、前記複数の薄型電池を電気的に直列および/または並列に接続してなる組電池の製造方法であって、複数の薄型電池を薄型電池の厚み方向に積層し、積層方向に重なり合って相隣接する電池同士を位置決めする工程と、前記積層方向に相隣接する電極タブの少なくとも一方を前記積層方向に膨出させるように成形加工して、同一の電極タブに電圧検出用コネクタの差し込み方向に対して直交する方向に、電圧検出用コネクタを差し込んで嵌合するための凸状の嵌合部を複数成形する工程と、を有することを特徴とする。 In order to achieve the above object, a method for manufacturing an assembled battery according to the present invention includes stacking a plurality of thin batteries in the thickness direction of the thin batteries, connecting plate-like electrode tabs adjacent to each other in the stacking direction, and A method of manufacturing an assembled battery in which a plurality of thin batteries are electrically connected in series and / or in parallel, wherein the plurality of thin batteries are stacked in the thickness direction of the thin batteries, and the adjacent batteries overlap in the stacking direction A step of positioning each other, and forming so that at least one of the electrode tabs adjacent to each other in the laminating direction is expanded in the laminating direction, and orthogonal to the insertion direction of the voltage detection connector on the same electrode tab in a direction, and having a step for multiple forming the convex fitting part for fitting insert the voltage detecting connector, a.

本発明に係る組電池によれば、重なり合って相隣接する電極タブに凸状または凹状の嵌合部が成形されることにより、電極タブ同士を機械的に接合すると共に、電極タブに剛性をもたせることができる。この剛性を有する嵌合部に電圧検出用コネクタを直接接続するので、部品点数を削減し、組電池の組立作業工程を簡略化して作業工数を低減することができ、製造コストを低下させることができる。   According to the assembled battery according to the present invention, the electrode tabs are mechanically joined to each other and the electrode tabs are given rigidity by forming convex or concave fitting portions on the electrode tabs that are adjacent to each other. be able to. Since the voltage detection connector is directly connected to the fitting portion having this rigidity, the number of parts can be reduced, the assembly work process of the assembled battery can be simplified, the work man-hour can be reduced, and the manufacturing cost can be reduced. it can.

本発明に係る組電池の製造方法によれば、重なり合って相隣接する電極タブに凸状または凹状の嵌合部を成形することにより、電極タブ同士を機械的に接合すると共に、電極タブに剛性をもたせることができる。この剛性を有する嵌合部に電圧検出用コネクタを直接接続するので、部品点数を削減し、組電池の組立作業工程を簡略化して作業工数を低減することができ、製造コストを低下させることができる。   According to the method for manufacturing an assembled battery according to the present invention, the electrode tabs are mechanically joined to each other and the electrode tabs are rigidly formed by forming convex or concave fitting portions on the electrode tabs that are adjacent to each other. Can be given. Since the voltage detection connector is directly connected to the fitting portion having this rigidity, the number of parts can be reduced, the assembly work process of the assembled battery can be simplified, the work man-hour can be reduced, and the manufacturing cost can be reduced. it can.

以下、本発明に係る組電池およびその製造方法の実施の形態を図面に基づいて詳細に説明する。   Embodiments of an assembled battery and a method for manufacturing the same according to the present invention will be described below in detail with reference to the drawings.

まず、本実施形態に係る組電池について説明する。図1は本発明に係る組電池の一実施形態を示す斜視図である。図2は電圧検出コネクタが接続された際の組電池の図1のII−II線に沿う断面図である。図3は本実施形態に係る組電池の第1例を構成する2枚の扁平型電池を示し、(A)は上方斜視図、(B)および(C)は下方斜視図である。図4は本実施形態に係る組電池の第2例を構成する2枚の扁平型電池を示し、(A)は上方斜視図、(B)および(C)は下方斜視図である。図5は本実施形態に係る組電池の第3例を構成する2枚の扁平型電池を示し、(A)および(B)は上方斜視図である。図6は本実施形態に係る組電池の第4例を構成する2枚の扁平型電池を示し、(A)は上方斜視図、(B)および(C)は下方斜視図である。図7は本実施形態に係る組電池の第5例を構成する2枚の扁平型電池を示し、(A)は上方斜視図、(B)および(C)は下方斜視図である。   First, the assembled battery according to the present embodiment will be described. FIG. 1 is a perspective view showing an embodiment of an assembled battery according to the present invention. FIG. 2 is a cross-sectional view of the assembled battery taken along line II-II in FIG. 1 when the voltage detection connector is connected. FIG. 3 shows two flat batteries constituting a first example of the assembled battery according to the present embodiment, wherein (A) is an upper perspective view, and (B) and (C) are lower perspective views. FIG. 4 shows two flat batteries constituting a second example of the assembled battery according to the present embodiment, wherein (A) is an upper perspective view, and (B) and (C) are lower perspective views. FIG. 5 shows two flat batteries constituting a third example of the assembled battery according to the present embodiment, and (A) and (B) are upper perspective views. FIG. 6 shows two flat batteries constituting a fourth example of the assembled battery according to the present embodiment, wherein (A) is an upper perspective view, and (B) and (C) are lower perspective views. FIG. 7 shows two flat batteries constituting a fifth example of the assembled battery according to the present embodiment, wherein (A) is an upper perspective view, and (B) and (C) are lower perspective views.

図1および図2を参照して、本実施の形態の組電池1は一般に電池モジュールと呼ばれ、車載用組電池を組み立てる単位ユニットをなし、扁平型電池(以下、「単電池」という。)10を複数枚多段(図示例では8枚)に積層したものを含むセルユニット(積層体)20がケース28内に収納されている。組電池1は、上下の単電池10の正極タブ14および負極タブ15に直列に接続する凹凸状の嵌合部21を備え、ケース28の外部に導出される入出力端子23,24を通じて充放電すべく、積層体20内の単電池10同士を直列に接続すると共に、積層体20を入出力端子23,24に接続している。凹凸状の嵌合部21は単電池10の電圧検出端子部であり、外部から電圧検出コネクタ26を接続することにより、単電池10の電圧を検出することができる。積層体20内において上下の嵌合部21は、短絡を防止するために樹脂などの電気を通さない絶縁プレート25で隔てられている。積層体20を収容するモジュールケース28は、樹脂もしくは金属素材により形成され、積層体20との隙間には積層体20の放熱を目的としたヒートシンク29を配置することも可能である。   With reference to FIG. 1 and FIG. 2, the assembled battery 1 of this Embodiment is generally called a battery module, is a unit unit for assembling an in-vehicle assembled battery, and is a flat battery (hereinafter referred to as “single cell”). A cell unit (laminated body) 20 including a plurality of 10 stacked in multiple stages (eight in the illustrated example) is housed in a case 28. The assembled battery 1 includes an uneven fitting portion 21 connected in series to the positive electrode tab 14 and the negative electrode tab 15 of the upper and lower unit cells 10, and is charged and discharged through input / output terminals 23 and 24 led out of the case 28. For this purpose, the single cells 10 in the stacked body 20 are connected in series, and the stacked body 20 is connected to the input / output terminals 23 and 24. The concave-convex fitting portion 21 is a voltage detection terminal portion of the unit cell 10, and the voltage of the unit cell 10 can be detected by connecting a voltage detection connector 26 from the outside. In the laminated body 20, the upper and lower fitting portions 21 are separated by an insulating plate 25 that does not conduct electricity, such as resin, in order to prevent a short circuit. The module case 28 that accommodates the stacked body 20 is formed of a resin or a metal material, and a heat sink 29 for heat dissipation of the stacked body 20 can be disposed in the gap with the stacked body 20.

図3から図7を参照して、単電池10は、例えば、扁平なリチウムイオン二次電池であり、正極板、負極板およびセパレータを順に積層した積層型の発電要素(図示せず)がラミネートフィルムなどの外装材12によって封止されている。電池10は、発電要素に一端が電気的に接続されるとともに板状をなす電極端子としての電極タブ(正極タブ14および負極タブ15)が外装材12から外部に導出されている。電極タブ14,15は電池10の長手方向の両側に延びており、たとえば、正極タブ14はアルミニウム(Al)により形成され、負極タブ15は銅(Cu)により形成されている。積層型の発電要素を備える電池10にあっては、電極板間の距離を均一に保って電池性能の維持を図るために、発電要素に圧力を掛けて押さえる必要がある。このため、各電池10は、発電要素が押さえ付けられるようにケース28に収納される。   3 to 7, the cell 10 is, for example, a flat lithium ion secondary battery, and a laminated power generation element (not shown) in which a positive electrode plate, a negative electrode plate, and a separator are sequentially laminated is laminated. It is sealed with an exterior material 12 such as a film. In the battery 10, one end is electrically connected to the power generation element, and electrode tabs (a positive electrode tab 14 and a negative electrode tab 15) as plate-like electrode terminals are led out from the exterior material 12 to the outside. The electrode tabs 14 and 15 extend on both sides of the battery 10 in the longitudinal direction. For example, the positive electrode tab 14 is formed of aluminum (Al), and the negative electrode tab 15 is formed of copper (Cu). In the battery 10 including the stacked power generation element, it is necessary to apply pressure to the power generation element and hold it in order to maintain the battery performance by keeping the distance between the electrode plates uniform. For this reason, each battery 10 is accommodated in the case 28 so that the power generation element is pressed down.

図3に示す本実施形態に係る組電池1の第1例では、説明の便宜上から、積層体20内の上下2枚の単電池10を直列に接合した状態を示しており、以下の第2例から第5例において同様である。第1例では、上下の単電池10同士を直列接続している嵌合部21は円柱状の凸状嵌合部21aであり、電池10の長手方向一方の電極タブ14,15の略中央に位置する。円柱状の凸状嵌合部21aは電圧検出端子部として機能し、この凸状嵌合部21aに、その外周面を挟持するように外部からU字状の電圧検出コネクタ26aを接続することにより、単電池10の電圧検出が可能となる(図3(C)参照)。電圧検出コネクタ26aは、たとえば、導電性の良好な銅(Cu)などにより形成されており、以下の第2例から第5例において同様である。   In the 1st example of the assembled battery 1 which concerns on this embodiment shown in FIG. 3, the state which joined the upper and lower unit cell 10 in the laminated body 20 in series is shown for convenience of explanation, and the following 2nd is shown. The same applies to the fifth example. In the first example, the fitting part 21 that connects the upper and lower unit cells 10 in series is a cylindrical convex fitting part 21a, which is substantially at the center of one of the electrode tabs 14 and 15 in the longitudinal direction of the battery 10. To position. The cylindrical convex fitting portion 21a functions as a voltage detection terminal portion, and a U-shaped voltage detection connector 26a is connected to the convex fitting portion 21a from the outside so as to sandwich the outer peripheral surface thereof. The voltage of the unit cell 10 can be detected (see FIG. 3C). The voltage detection connector 26a is made of, for example, copper (Cu) having good conductivity, and is the same in the following second to fifth examples.

図4に示す本実施形態に係る組電池1の第2例では、上下の単電池10同士を直列接続している嵌合部21は四角柱等の矩形柱状の凸状嵌合部21aであり、電池10の長手方向一方の電極タブ14,15の略中央に位置する。矩形柱状の凸状嵌合部21aは電圧検出端子部として機能し、この凸状嵌合部21aに、その外側面を挟持するように外部から略U字状の電圧検出コネクタ26bを接続することにより、単電池10の電圧検出が可能となる(図4(C)参照)。   In the second example of the assembled battery 1 according to the present embodiment shown in FIG. 4, the fitting portion 21 that connects the upper and lower unit cells 10 in series is a convex fitting portion 21a having a rectangular column shape such as a rectangular column. In the longitudinal direction of the battery 10, the electrode tabs 14 and 15 are located at substantially the center. The rectangular columnar convex fitting portion 21a functions as a voltage detection terminal portion, and a substantially U-shaped voltage detection connector 26b is connected to the convex fitting portion 21a from outside so as to sandwich the outer surface thereof. Thus, the voltage of the unit cell 10 can be detected (see FIG. 4C).

図5に示す本実施形態に係る組電池1の第3例では、上下の単電池10同士を直列接続している嵌合部21は矩形状の凹状嵌合部21bであり、電池10の長手方向一方の電極タブ14,15の略中央に位置し、端面が開口している。矩形状の凹状嵌合部21bは電圧検出端子部として機能し、この凹状嵌合部21b内に外部から先端側が短冊状の電圧検出コネクタ26cを挿入接続することにより、単電池10の電圧検出が可能となる(図5(B)参照)。   In the third example of the assembled battery 1 according to this embodiment shown in FIG. 5, the fitting portion 21 that connects the upper and lower unit cells 10 in series is a rectangular concave fitting portion 21 b, and the length of the battery 10 is long. It is located in the approximate center of one electrode tab 14 and 15 of a direction, and the end surface is opening. The rectangular concave fitting portion 21b functions as a voltage detection terminal portion, and the voltage detection of the unit cell 10 can be performed by inserting and connecting a voltage detection connector 26c having a strip-shaped tip from the outside into the concave fitting portion 21b. This is possible (see FIG. 5B).

図6に示す本実施形態に係る組電池1の第4例では、上下の単電池10同士を直列接続している嵌合部21は四角柱等の矩形柱状の一対の凸状嵌合部21aであり、電池10の長手方向一方の電極タブ14,15の略中央の2箇所に間隔を隔てて位置する。矩形柱状の凸状嵌合部21aは電圧検出端子部として機能し、この凸状嵌合部21a同士の間に外部から先端側が短冊状の電圧検出コネクタ26dを差し込み接続することにより、単電池10の電圧検出が可能となる(図6(C)参照)。   In the fourth example of the assembled battery 1 according to this embodiment shown in FIG. 6, the fitting portion 21 that connects the upper and lower unit cells 10 in series is a pair of convex fitting portions 21a in the shape of a rectangular column such as a rectangular column. It is located at two positions in the approximate center of one of the electrode tabs 14 and 15 in the longitudinal direction of the battery 10 with a space therebetween. The rectangular columnar convex fitting portion 21a functions as a voltage detection terminal portion, and the cell 10 is formed by inserting and connecting a voltage detection connector 26d having a strip-shaped tip from the outside between the convex fitting portions 21a. Can be detected (see FIG. 6C).

図7に示す本実施形態に係る組電池1の第5例では、上下の単電池10同士を直列接続している嵌合部21は円柱状の一対の凸状嵌合部21aであり、電池10の長手方向一方の電極タブ14,15の略中央の2箇所に間隔を隔てて位置する。円柱状の凸状嵌合部21aは電圧検出端子部として機能し、この凸状嵌合部21a同士の間に外部から先端側が短冊状の電圧検出コネクタ26fを差し込み接続することにより、単電池10の電圧検出が可能となる(図7(C)参照)。   In the fifth example of the battery pack 1 according to this embodiment shown in FIG. 7, the fitting part 21 that connects the upper and lower unit cells 10 in series is a pair of cylindrical convex fitting parts 21a. Ten electrode tabs 14 and 15 in one longitudinal direction are positioned at two positions substantially at the center. The columnar convex fitting portion 21a functions as a voltage detection terminal portion, and the cell 10 is formed by inserting and connecting a voltage detection connector 26f having a strip-shaped tip from the outside between the convex fitting portions 21a. Can be detected (see FIG. 7C).

次に、本実施形態に係る組電池の製造方法について説明する。図8は本実施形態に係る組電池を構成する単電池を示し、(A)は上面図、(B)は側面図である。図9は単電池の内部構成を示す模式図である。図10は本実施形態の組電池の組立工程を示す斜視図である。図11は本実施形態の組電池の接合工程を示し、(A)は接合前の状態の説明図、(B)は接合状態の説明図である。図12は単電池の積層状態を示す縦断面図である。図13は本実施形態の組電池の一側面を示す模式図である。図14は本実施形態の組電池の組立工程におけるスポット溶接工程を示す説明図である。図15は本実施形態の組電池の組立工程における超音波溶接工程を示す説明図である。図16は本実施形態の組電池の組立工程におけるレーザ溶接工程を示す説明図である。図17は凸状嵌合部の他の構造を示す説明図である。   Next, a method for manufacturing the assembled battery according to the present embodiment will be described. FIG. 8 shows a unit cell constituting the assembled battery according to the present embodiment, where (A) is a top view and (B) is a side view. FIG. 9 is a schematic diagram showing the internal configuration of the unit cell. FIG. 10 is a perspective view showing the assembly process of the assembled battery of this embodiment. FIG. 11 shows the joining process of the assembled battery of this embodiment, (A) is explanatory drawing of the state before joining, (B) is explanatory drawing of a joining state. FIG. 12 is a longitudinal sectional view showing a stacked state of the single cells. FIG. 13 is a schematic view showing one side surface of the assembled battery of the present embodiment. FIG. 14 is an explanatory view showing a spot welding process in the assembly process of the assembled battery of this embodiment. FIG. 15 is an explanatory diagram showing an ultrasonic welding process in the assembly process of the assembled battery of this embodiment. FIG. 16 is an explanatory view showing a laser welding process in the assembly process of the assembled battery of this embodiment. FIG. 17 is an explanatory view showing another structure of the convex fitting portion.

〔単電池の製造工程〕
図8および図9を参照して、単電池10は、発電要素としての扁平形状の積層電極11を、外装材12としての一対のラミネートフィルム12a,12bの中央部に配置し、これらラミネートフィルム12a,12bによって積層電極11の両面を挟むように覆い、ラミネートフィルム12a,12bの周縁部を熱溶着接合することにより、ラミネートフィルム12a,12b間に積層電極11とともに電解質層を密閉したものである。
[Single cell manufacturing process]
With reference to FIG. 8 and FIG. 9, the cell 10 arrange | positions the flat laminated electrode 11 as an electric power generation element in the center part of a pair of laminated film 12a, 12b as the exterior material 12, and these laminated films 12a. , 12b so that both surfaces of the laminated electrode 11 are sandwiched, and the peripheral portions of the laminated films 12a, 12b are heat-welded and joined together to seal the electrolyte layer together with the laminated electrodes 11 between the laminated films 12a, 12b.

積層電極11は、複数枚の正極板11aおよび負極板11bをそれぞれセパレータ11cを介在させつつ順次積層したものである。各正極板11aは、正極リード13aを介して正極タブ14に接続されるとともに、各負極板11bは、負極リード13bを介して負極タブ15に接続され、これら正極タブ14および負極タブ15がラミネートフィルム12a,12bの接合部分12cから外部に引き出され、単電池10の長手方向の両側に延びている。なお、単電池10の本体の四隅には、後述する組電池1の組立工程における位置決め用の貫通孔16が形成されている。   The laminated electrode 11 is obtained by sequentially laminating a plurality of positive plates 11a and negative plates 11b with a separator 11c interposed therebetween. Each positive electrode plate 11a is connected to the positive electrode tab 14 via the positive electrode lead 13a, and each negative electrode plate 11b is connected to the negative electrode tab 15 via the negative electrode lead 13b, and the positive electrode tab 14 and the negative electrode tab 15 are laminated. The film 12 a and 12 b are drawn out from the joint portion 12 c and extend to both sides of the unit cell 10 in the longitudinal direction. In addition, in the four corners of the main body of the unit cell 10, positioning through holes 16 in the assembly process of the assembled battery 1 described later are formed.

電極タブ14,15は、たとえば、正極タブ14がアルミニウム(Al)により形成され、負極タブ15が銅(Cu)により形成されている。   For example, the positive electrode tab 14 is made of aluminum (Al) and the negative electrode tab 15 is made of copper (Cu).

〔組電池の組立工程〕
このように構成された単電池10は、以下のように組み立てられる。
[Assembly battery assembly process]
The unit cell 10 configured as described above is assembled as follows.

図10を参照して、まず、単電池10の本体の四隅に位置する貫通孔16に位置決め用のロケートピン30を通し、一方の単電池10の正極タブ14と隣接する単電池10の負極タブ15が重なるように2つの単電池10を積層する。   Referring to FIG. 10, first, positioning locate pins 30 are passed through through holes 16 located at the four corners of the main body of the unit cell 10, and the negative electrode tab 15 of the unit cell 10 adjacent to the positive electrode tab 14 of one unit cell 10. Two unit cells 10 are stacked so that the two overlap.

次に、図11(A)を参照して、積層した一方の単電池10の正極タブ14に相隣接する単電池10の負極タブ15の上方に加圧ロッド40を凸型先端部40aが下向きになるように配置し、下方に受けロッド41を凹部41aが上向きになるように配置する。そして、図11(B)を参照して、ロッド40,41で2枚重ねの電極タブ14,15を挟み込むことによって、重なり合った正極タブ14と負極タブ15とが同時にかしめ加工されて凸状または凹状の嵌合部21が成形される。なお、重なり合った正極タブ14と負極タブ15とを同時に成形することができれば、プレス加工等のかしめ加工以外の他の成形加工方法を採用してもよい。この工程により、積層した2つの単電池10は、一方の単電池10の正極タブ14と相隣接する単電池10の負極タブ15を介して機械的に接合されて、電気的に直列に接合されると共に嵌合部21が成形される。この2枚の接続された単電池10をサブアッシとして4組を同様に作製する。   Next, referring to FIG. 11 (A), the pressure rod 40 is placed above the negative electrode tab 15 of the unit cell 10 adjacent to the positive electrode tab 14 of one of the stacked unit cells 10 so that the convex tip 40a faces downward. The receiving rod 41 is arranged below so that the recess 41a faces upward. Then, referring to FIG. 11 (B), by sandwiching two overlapping electrode tabs 14 and 15 with rods 40 and 41, the overlapping positive electrode tab 14 and negative electrode tab 15 are caulked at the same time to form a convex shape or A concave fitting portion 21 is formed. In addition, as long as the positive electrode tab 14 and the negative electrode tab 15 which overlapped can be shape | molded simultaneously, you may employ | adopt other shaping | molding methods other than crimping, such as press work. By this step, the two unit cells 10 stacked are mechanically joined via the negative electrode tab 15 of the unit cell 10 adjacent to the positive electrode tab 14 of one unit cell 10 and are electrically joined in series. And the fitting portion 21 is formed. Four sets are produced in the same manner using the two connected unit cells 10 as subassemblies.

図12を参照して、この4組のサブアッシを嵌合部21がある電極タブ14,15を同じ方向に絶縁プレート25を間に挟み、8個の単電池積層厚み分のロケートピン30で位置決めして積層する(図10参照)。続いて、既に接合された嵌合部21の反対側の電極タブ14,15を接合するが、8枚の電極タブ14,15が同時に積層された状態であるので、2枚ずつを容易に接合すべく、接合しない電極タブは上方向または下方向に曲げて逃しておき、上から2枚目と3枚目の電極タブ14,15をロッド40,41で2枚重ね状態で挟み込むことによって接合する。4枚目と5枚目、6枚目と7枚目も同様にして接合し、組電池1のプラス入出力端子23を1枚目タブ14と、マイナス入出力端子24を8枚目タブ15とをロッド40,41によって接合し、上下の接合部間に絶縁プレート25を挿入する。最後に、積層体20の上下に冷却用のアルミニウム素材のヒートシンク29を貼り付け、組電池のケース28に収納することにより、組電池1が完成する。   Referring to FIG. 12, the four subassemblies are positioned by locating pins 30 corresponding to the thickness of eight unit cells, with electrode tabs 14 and 15 having fitting portions 21 sandwiched in the same direction with insulating plate 25 interposed therebetween. (See FIG. 10). Subsequently, the electrode tabs 14 and 15 on the opposite side of the already-fitted fitting portion 21 are joined. However, since the eight electrode tabs 14 and 15 are stacked at the same time, two pieces are easily joined together. Therefore, the electrode tabs that are not to be joined are bent upward or downward, and are joined by sandwiching the second and third electrode tabs 14 and 15 with the rods 40 and 41 in a stacked state. To do. The fourth and fifth sheets, and the sixth and seventh sheets are joined in the same manner, and the positive input / output terminal 23 of the battery pack 1 is connected to the first tab 14 and the negative input / output terminal 24 is connected to the eighth tab 15. Are joined by rods 40 and 41, and the insulating plate 25 is inserted between the upper and lower joints. Finally, a heat sink 29 made of aluminum for cooling is attached to the top and bottom of the laminate 20 and housed in a case 28 of the assembled battery, whereby the assembled battery 1 is completed.

図13を参照して、組電池1のケース28はその長手方向の両方向が開口しており、両開口部31にコネクタハウジング(図示せず)を嵌め込むことによって、各タブ14,15の凸状または凹状の嵌合部21に外部から電圧検出コネクタ26を接続することができ、これにより各単電池10の電圧を検出することができる。   Referring to FIG. 13, the case 28 of the assembled battery 1 is open in both longitudinal directions. By fitting a connector housing (not shown) into both openings 31, the protrusions of the tabs 14 and 15 are formed. The voltage detection connector 26 can be connected from the outside to the fitting part 21 having a shape or a concave shape, whereby the voltage of each unit cell 10 can be detected.

また、ロッド40,41により2枚重ねの電極タブ14,15を挟み込んで凸状または凹状の嵌合部21を形成する工程(図11(B)参照)の後に、図14に示すように、抵抗スポット溶接機の溶接電極42,43により嵌合部底面22に電流を印加してスポット溶接し、嵌合部21の接合強度を向上させることが可能であり、これにより電気的な接合性能も向上する。また、かしめ加工した嵌合部21に溶接するので、溶接部の位置決めが容易で大電流部に溶接することができる。その他、図15で示す超音波溶接機のホーン44とアンビル45により嵌合部底面22を超音波接合したり、図16で示すレーザ溶接機のレーザ集光体46から嵌合部底面22にレーザ光47を発してレーザ溶接することも可能である。   In addition, as shown in FIG. 14, after the step of forming the convex or concave fitting portion 21 by sandwiching the two electrode tabs 14 and 15 by the rods 40 and 41 (see FIG. 11B), It is possible to improve the bonding strength of the fitting portion 21 by applying current to the fitting portion bottom surface 22 by the welding electrodes 42 and 43 of the resistance spot welder, thereby improving the electric bonding performance. improves. Moreover, since it welds to the fitting part 21 which carried out the crimping process, positioning of a welding part is easy and it can weld to a large current part. In addition, the bottom surface 22 of the fitting portion is ultrasonically bonded by the horn 44 and the anvil 45 of the ultrasonic welder shown in FIG. 15, or the laser is applied from the laser condenser 46 of the laser welder shown in FIG. It is also possible to emit light 47 and perform laser welding.

正極タブ14と負極タブ15が異種金属であっても、ロッド40,41により2枚重ねのタブ14,15を挟み込んで凸状または凹状の嵌合部21を形成することにより機械的接合が可能であるが、特に、正極タブ14および負極タブ15の表面にニッケル(Ni)などの導電性の高い金属めっきを被覆しておけば、抵抗スポット溶接、超音波溶接およびレーザ溶接の溶接効果を向上させることができる。   Even if the positive electrode tab 14 and the negative electrode tab 15 are dissimilar metals, mechanical joining is possible by forming the convex or concave fitting portion 21 by sandwiching the two tabs 14 and 15 with the rods 40 and 41. However, if the surfaces of the positive electrode tab 14 and the negative electrode tab 15 are coated with highly conductive metal plating such as nickel (Ni), the welding effect of resistance spot welding, ultrasonic welding and laser welding is improved. Can be made.

なお、以上の説明では正極タブ14および負極タブ15を重ね合わせて、ロッド40,41により同時に2枚重ねのタブ14,15を挟み込んで成形加工して凸状または凹状の嵌合部21を形成したが、これに限るものではなく、図17に示すように、ロッド40,41により一方の電極15(または14)のみを成形加工して凸状の嵌合部21aを形成しておき、抵抗スポット溶接等により、この嵌合部21aを有する電極タブ15(または14)を他方の平板状の電極タブ14(または15)に嵌合部21aの周囲部32で溶接接合してもよい。このようにして、各タブ14,15に凸状の嵌合部21aを形成した場合にも、嵌合部21aの外側面に電圧検出コネクタ26を接続することが可能である(図3および図4参照)。   In the above description, the positive electrode tab 14 and the negative electrode tab 15 are overlapped, and the two overlapping tabs 14 and 15 are sandwiched by the rods 40 and 41 at the same time to form the convex or concave fitting portion 21. However, the present invention is not limited to this, and as shown in FIG. 17, only one electrode 15 (or 14) is molded by the rods 40 and 41 to form a convex fitting portion 21 a, and resistance The electrode tab 15 (or 14) having the fitting portion 21a may be welded to the other flat electrode tab 14 (or 15) at the peripheral portion 32 of the fitting portion 21a by spot welding or the like. Thus, even when the convex fitting portions 21a are formed on the tabs 14 and 15, the voltage detection connector 26 can be connected to the outer surface of the fitting portion 21a (FIGS. 3 and 3). 4).

以上のように構成された組電池1は、積層して相隣接する単電池10の電極タブ14、15に嵌合部21を形成して機械的に嵌合状態で接合しているため、0.5mm程度の薄いタブ14,15であっても剛性を確保することができる。したがって、従来のように、電極タブ14,15に別部品として該タブ14,15よりも剛性の高い電圧検出端子部材を接続することなく、電極タブ14,15に形成した嵌合部に電圧検出コネクタ26を直接接続することができる。よって、部品点数が削減され、組立作業工程も簡略化して作業工数を低減することができるので、製造コストを低下させることができる。また、部品点数の削減によりシンプルな構造となり、組電池1を小型化することができるものである。   Since the assembled battery 1 configured as described above is joined in a mechanically fitted state by forming fitting portions 21 on the electrode tabs 14 and 15 of the unit cells 10 that are stacked and adjacent to each other. Even the thin tabs 14 and 15 of about 5 mm can ensure rigidity. Therefore, voltage detection is not performed on the fitting portions formed on the electrode tabs 14 and 15 without connecting a voltage detection terminal member having rigidity higher than that of the tabs 14 and 15 as a separate part to the electrode tabs 14 and 15 as in the prior art. The connector 26 can be directly connected. Therefore, the number of parts can be reduced, the assembly work process can be simplified and the number of work steps can be reduced, so that the manufacturing cost can be reduced. Moreover, it becomes a simple structure by reducing the number of parts, and the assembled battery 1 can be reduced in size.

本発明に係る組電池の一実施形態を示す斜視図である。It is a perspective view which shows one Embodiment of the assembled battery which concerns on this invention. 図1のII−II線に沿う断面図である。It is sectional drawing which follows the II-II line | wire of FIG. 本実施形態に係る組電池の第1例を構成する2枚の扁平型電池を示し、(A)は上方斜視図、(B)および(C)は下方斜視図である。The two flat batteries which comprise the 1st example of the assembled battery which concerns on this embodiment are shown, (A) is an upper perspective view, (B) and (C) are lower perspective views. 本実施形態に係る組電池の第2例を構成する2枚の扁平型電池を示し、(A)は上方斜視図、(B)および(C)は下方斜視図である。The two flat batteries which comprise the 2nd example of the assembled battery which concerns on this embodiment are shown, (A) is an upper perspective view, (B) and (C) are lower perspective views. 本実施形態に係る組電池の第3例を構成する2枚の扁平型電池を示し、(A)および(B)は上方斜視図である。The two flat batteries which comprise the 3rd example of the assembled battery which concerns on this embodiment are shown, (A) and (B) are upper perspective views. 本実施形態に係る組電池の第4例を構成する2枚の扁平型電池を示し、(A)は上方斜視図、(B)および(C)は下方斜視図である。The two flat batteries which comprise the 4th example of the assembled battery which concerns on this embodiment are shown, (A) is an upper perspective view, (B) and (C) are lower perspective views. 本実施形態に係る組電池の第5例を構成する2枚の扁平型電池を示し、(A)は上方斜視図、(B)および(C)は下方斜視図である。The two flat batteries which comprise the 5th example of the assembled battery which concerns on this embodiment are shown, (A) is an upper perspective view, (B) and (C) are lower perspective views. 本実施形態に係る組電池を構成する単電池を示し、(A)は上面図、(B)は側面図である。The single battery which comprises the assembled battery which concerns on this embodiment is shown, (A) is a top view, (B) is a side view. 単電池の内部構成を示す模式図である。It is a schematic diagram which shows the internal structure of a cell. 本実施形態の組電池の組立工程を示す斜視図である。It is a perspective view which shows the assembly process of the assembled battery of this embodiment. 本実施形態の組電池の接合工程を示し、(A)は接合前の状態の説明図、(B)は接合状態の説明図である。The joining process of the assembled battery of this embodiment is shown, (A) is explanatory drawing of the state before joining, (B) is explanatory drawing of a joining state. 単電池の積層状態を示す縦断面図である。It is a longitudinal cross-sectional view which shows the lamination | stacking state of a cell. 本実施形態の組電池の一側面を示す模式図である。It is a schematic diagram which shows one side of the assembled battery of this embodiment. 本実施形態の組電池の組立工程におけるスポット溶接工程を示す説明図である。It is explanatory drawing which shows the spot welding process in the assembly process of the assembled battery of this embodiment. 本実施形態の組電池の組立工程における超音波溶接工程を示す説明図である。It is explanatory drawing which shows the ultrasonic welding process in the assembly process of the assembled battery of this embodiment. 本実施形態の組電池の組立工程におけるレーザ溶接工程を示す説明図である。It is explanatory drawing which shows the laser welding process in the assembly process of the assembled battery of this embodiment. 凸状嵌合部の他の構造を示す説明図である。It is explanatory drawing which shows the other structure of a convex fitting part.

符号の説明Explanation of symbols

1 組電池、
10 扁平型電池(単電池)、
14 正極タブ、
15 負極タブ、
21(21a,21b,21c) 嵌合部、
26(26a,26b,26c,26d,26f) 電圧検出用コネクタ。
1 battery pack,
10 Flat battery (single cell),
14 positive tab,
15 negative electrode tab,
21 (21a, 21b, 21c) fitting part,
26 (26a, 26b, 26c, 26d, 26f) Voltage detection connector.

Claims (3)

複数の薄型電池を薄型電池の厚み方向に積層し、積層方向に相隣接する板状の電極タブ同士を接続して、前記複数の薄型電池を電気的に直列および/または並列に接続してなる組電池であって、
積層方向に重なり合って相隣接する複数の電極タブの少なくとも1つの電極タブに、電圧検出用コネクタの差し込み方向に対して直交する方向に、前記電圧検出用コネクタを差し込んで嵌合するための凸状の嵌合部を複数成形し、前記嵌合部は前記積層方向に膨出させた形状を有し、これら嵌合部間に前記電圧検出用コネクタが差し込み接続されることを特徴とする組電池。
A plurality of thin batteries are stacked in the thickness direction of the thin batteries, plate-like electrode tabs adjacent to each other in the stacking direction are connected, and the plurality of thin batteries are electrically connected in series and / or in parallel. An assembled battery,
A convex shape for inserting and fitting the voltage detection connector into a direction perpendicular to the insertion direction of the voltage detection connector to at least one electrode tab of a plurality of electrode tabs that are adjacent to each other in the stacking direction. battery pack engaging portion and a plurality molding, the fitting portion have a shape that is bulged in the stacking direction, the voltage detecting connector is plug connection between these fitting portions, characterized in Rukoto of .
複数の薄型電池を薄型電池の厚み方向に積層し、積層方向に相隣接する板状の電極タブ同士を接続して、前記複数の薄型電池を電気的に直列および/または並列に接続してなる組電池の製造方法であって、
複数の薄型電池を薄型電池の厚み方向に積層し、積層方向に重なり合って相隣接する電池同士を位置決めする工程と、
前記積層方向に相隣接する電極タブの少なくとも一方を前記積層方向に膨出させるように成形加工して、同一の電極タブに電圧検出用コネクタの差し込み方向に対して直交する方向に、前記電圧検出用コネクタを差し込んで嵌合するための凸状の嵌合部を複数成形する工程と、を有することを特徴とする組電池の製造方法。
A plurality of thin batteries are stacked in the thickness direction of the thin batteries, plate-like electrode tabs adjacent to each other in the stacking direction are connected, and the plurality of thin batteries are electrically connected in series and / or in parallel. A method for manufacturing an assembled battery, comprising:
Laminating a plurality of thin batteries in the thickness direction of the thin batteries, and positioning adjacent batteries overlapping in the stacking direction;
The voltage detection is performed in a direction perpendicular to the insertion direction of the voltage detection connector on the same electrode tab by forming so that at least one of the electrode tabs adjacent to each other in the stacking direction is expanded in the stacking direction. method of manufacturing a battery pack, characterized in that it comprises the steps of: a plurality shaping the convex fitting part for fitting insert the use connectors, the.
前記嵌合部の成形工程の後に、該嵌合部を溶接接合する工程を有することを特徴とする請求項に記載の組電池の製造方法。 The method for producing an assembled battery according to claim 2 , further comprising a step of welding and joining the fitting portion after the forming step of the fitting portion.
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