JPH08167407A - Electrode body of sealed rectangular battery and its manufacture - Google Patents
Electrode body of sealed rectangular battery and its manufactureInfo
- Publication number
- JPH08167407A JPH08167407A JP6332830A JP33283094A JPH08167407A JP H08167407 A JPH08167407 A JP H08167407A JP 6332830 A JP6332830 A JP 6332830A JP 33283094 A JP33283094 A JP 33283094A JP H08167407 A JPH08167407 A JP H08167407A
- Authority
- JP
- Japan
- Prior art keywords
- electrode
- electrode body
- binding
- welding
- leads
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Pending
Links
Classifications
-
- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02E—REDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
- Y02E60/00—Enabling technologies; Technologies with a potential or indirect contribution to GHG emissions mitigation
- Y02E60/10—Energy storage using batteries
-
- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02P—CLIMATE CHANGE MITIGATION TECHNOLOGIES IN THE PRODUCTION OR PROCESSING OF GOODS
- Y02P70/00—Climate change mitigation technologies in the production process for final industrial or consumer products
- Y02P70/50—Manufacturing or production processes characterised by the final manufactured product
Landscapes
- Secondary Cells (AREA)
- Connection Of Batteries Or Terminals (AREA)
Abstract
Description
【0001】[0001]
【産業上の利用分野】本発明は、密閉型角形電池におけ
る電極体の構造及びその電極体の製造方法に関するもの
である。BACKGROUND OF THE INVENTION 1. Field of the Invention The present invention relates to a structure of an electrode body in a sealed prismatic battery and a method for manufacturing the electrode body.
【0002】[0002]
【従来の技術】図6は従来における密閉型角形電池にお
ける電極体の一例を示す斜視図で、図7はその電極体の
分解斜視図である。図6及び図7において、この電極体
51は、補強板52上に例えば銅等の金属箔でなる電極
板53を複数積層した概略構造になっている。また、各
電極板53には同じ位置に電極リード53aが形成され
ており、この電極リード53aを除いた表面には絶縁用
の活物質54が塗布されている。一方、補強板52は、
同じく剛性を有した金属板で電極板53と略同じ大きさ
並びに形状にして作られている。なお、図6及び図7
は、一方の極だけの電極体51を示しているが、通常は
図6において実線で示す正極用の電極体と一点鎖線で示
す負極用の電極体との二つの電極体が同時に形成される
もので、正極用の電極板と負極用の電極板とが、各極毎
に電極リードの位置を左右に変えて一枚づつ交互に積み
重ねられ、各電極体毎に結束される。また、電極板が所
定枚数積み重ねられたら、各電極毎に上下方向に並んで
いる各電極板53の電極リード53a間、並びに電極リ
ード53aと補強板52との間を抵抗溶接し、これによ
って各電極板53と補強板52の間が固定されて一体化
された電極体51が作られる。図6において、符号55
で示す部分は、抵抗溶接された部分を示している。2. Description of the Related Art FIG. 6 is a perspective view showing an example of an electrode body in a conventional sealed prismatic battery, and FIG. 7 is an exploded perspective view of the electrode body. 6 and 7, the electrode body 51 has a schematic structure in which a plurality of electrode plates 53 made of a metal foil such as copper are laminated on a reinforcing plate 52. Further, electrode leads 53a are formed at the same positions on each electrode plate 53, and an insulating active material 54 is applied to the surface excluding the electrode leads 53a. On the other hand, the reinforcing plate 52 is
Similarly, it is made of a rigid metal plate and has substantially the same size and shape as the electrode plate 53. 6 and 7
Shows the electrode body 51 having only one pole, but normally, two electrode bodies, that is, the electrode body for the positive electrode indicated by the solid line in FIG. 6 and the electrode body for the negative electrode indicated by the alternate long and short dash line are simultaneously formed. The electrode plate for the positive electrode and the electrode plate for the negative electrode are alternately stacked one by one by changing the position of the electrode lead for each pole to the left and right, and bound for each electrode body. Further, when a predetermined number of electrode plates are stacked, resistance welding is performed between the electrode leads 53a of each electrode plate 53 arranged vertically for each electrode, and between the electrode leads 53a and the reinforcing plate 52. The electrode body 51 in which the electrode plate 53 and the reinforcing plate 52 are fixed and integrated is manufactured. In FIG. 6, reference numeral 55
The portion indicated by means the resistance welded portion.
【0003】[0003]
【発明が解決しようとする課題】上述したように、従来
構造及び方法では、活物質54の塗布されていない金属
箔の電極リード53aの部分を直接、抵抗溶接により補
強板52に固定して一体化する方法をとっているが、一
般に電極リード53が形成されている金属箔は、厚みが
10ミクロン程度のものが使用されることが多く、非常
に薄い。したがって、抵抗溶接時に箔が溶融し、これが
溶接電極に付着し易い。このため、次の〜に述べる
ような問題点があった。 溶接電極のメンテナンスが増える。 溶接設定条件の幅が狭く、設定が困難。 ,の原因から生産性が低下する。 金属箔同志(電極リード53aの部分)を束ねていな
いため、作業性が悪い。 溶接ナゲットの周囲が箔の
みであるため、剥離や亀裂が生じ易く信頼性に欠ける。As described above, according to the conventional structure and method, the portion of the electrode lead 53a of the metal foil on which the active material 54 is not applied is directly fixed to the reinforcing plate 52 by resistance welding to be integrated. In general, the metal foil on which the electrode leads 53 are formed is often very thin and has a thickness of about 10 μm. Therefore, the foil is melted during resistance welding and is easily attached to the welding electrode. Therefore, there are the following problems. Welding electrode maintenance increases. The range of welding setting conditions is narrow, making setting difficult. Productivity decreases due to the cause of. Workability is poor because the metal foils (the portions of the electrode leads 53a) are not bound together. Since only the foil is around the weld nugget, peeling or cracking is likely to occur and reliability is poor.
【0004】本発明は、上記問題点に鑑みてなされたも
のであり、その目的は生産性並びに信頼性等を向上させ
ることができるようにした密閉型角形電池の電極体及び
その製造方法を提供することにある。さらに、他の目的
は、以下に説明する内容の中で順次明らかにして行く。The present invention has been made in view of the above problems, and an object thereof is to provide an electrode body for a sealed prismatic battery and a method for manufacturing the same, which can improve productivity and reliability. To do. Furthermore, other purposes will be clarified one after another in the content described below.
【0005】[0005]
【課題を解決するための手段】この目的は、本発明にあ
っては、その電極体の構造として、電極リードを有した
電極板を補強板に対して複数枚積層してなる密閉型角形
電池の電極体において、前記電極板を積層後、前記各電
極リードを一緒に包み込んで結束し、前記各電極板を一
体化してなる結束部品を備えているとともに、前記結束
部品を介して当接された溶着手段により前記各電極板間
が溶着されて一体化されている構成とすることによって
達成される。また、実施に当たっては、前記結束部品を
断面形状が略コ字状に形成されているもの、あるいは断
面形状がリング状に形成されているもの等を使用するこ
ともできる。According to the present invention, the object of the present invention is to provide a sealed prismatic battery having a plurality of electrode plates having electrode leads laminated on a reinforcing plate as the structure of the electrode body. In the electrode body of (1), after stacking the electrode plates, the electrode leads are wrapped together and bound together, and the electrode plates are provided with a binding component that is integrated and abutted through the binding component. This is achieved by adopting a structure in which the electrode plates are welded and integrated by the welding means. Further, in carrying out the present invention, it is also possible to use the binding component having a substantially U-shaped cross section or a ring shaped cross section.
【0006】この目的は、本発明にあっては、その電極
体の製造方法として、電極リードを有した電極板を補強
板に対して複数枚積層してなる密閉型角形電池における
電極体の製造方法において、前記電極板を積層後、結束
部品で前記各電極リードを一緒に包み込んで結束し、こ
の結束した後から前記結束部品を介して前記電極リード
に溶着手段を当接させ、前記溶着手段により前記各電極
板間を溶着させて一体化することによって達成される。The object of the present invention is, as a method of manufacturing the electrode body, to manufacture an electrode body in a sealed prismatic battery in which a plurality of electrode plates having electrode leads are laminated on a reinforcing plate. In the method, after stacking the electrode plates, the electrode leads are wrapped and bound together by a binding component, and after the binding, a welding means is brought into contact with the electrode lead through the binding component, and the welding means The above is achieved by welding and integrating the electrode plates.
【0007】[0007]
【作用】これによれば、結束部品により電極リードを結
束し、結束後は結束部品を介して溶着が行われ、溶接電
極等が直接、電極リードに接触することがないので、電
極リードを形成している箔が溶接電極等に付着するのを
防ぐことができる。したがって、溶接電極等のメンテナ
ンスの回数を減らすことができるとともに寿命も延ばす
ことができる。また、溶接設定条件の範囲が広がって、
条件設定が簡単になる。さらに、結束部品で電極リード
を結束するので、抵抗溶接等による溶着時における作業
も簡単になる。加えて、溶着部分の周囲を結束部品が包
み込んだ状態になるので、溶着時に溶着部分の周囲にダ
メージが伝わりにくく、剥離や亀裂等を防ぐことができ
る。According to this, the electrode leads are bound by the binding parts, and after binding, the welding is performed through the binding parts, and the welding electrodes and the like do not directly contact the electrode leads, so that the electrode leads are formed. It is possible to prevent the applied foil from adhering to the welding electrode or the like. Therefore, it is possible to reduce the frequency of maintenance of the welding electrode and the like and extend the life thereof. Also, the range of welding setting conditions has expanded,
Conditions can be set easily. Further, since the electrode leads are bound by the binding parts, the work at the time of welding by resistance welding or the like becomes simple. In addition, since the binding component is wrapped around the welded portion, damage is less likely to be transmitted to the periphery of the welded portion during welding, and peeling or cracking can be prevented.
【0008】[0008]
【実施例】以下、本発明の実施例について図面を用いて
詳細に説明する。図1乃至図3は本発明の一実施例を示
すもので、図1はその密閉型角形電池における電極体の
斜視図、図2は図1のA−A線に沿う概略断面図、図3
はその電極体の分解斜視図である。Embodiments of the present invention will be described in detail below with reference to the drawings. 1 to 3 show an embodiment of the present invention, FIG. 1 is a perspective view of an electrode body in the sealed prismatic battery, FIG. 2 is a schematic sectional view taken along the line AA of FIG.
FIG. 3 is an exploded perspective view of the electrode body.
【0009】図1乃至図3において、この電極体1は、
例えば厚みが1ミクロン程度の無酸素銅等の金属箔でな
る電極板3を複数積層し、これを結束部品5で結束して
加締め固定した後、導電性の補強板2上に載置させ、さ
らに結束部品5と補強板2との間を溶着して固定した構
造になっている。また、各電極板3には同じ位置に電極
リード3aが形成されおり、この電極リード3aを除い
た表面には絶縁用の活物質4が塗布されている。一方、
補強板2は、同じく剛性を有した金属板で電極板3と略
同じ大きさ並びに形状にして作られている。1 to 3, the electrode body 1 is
For example, a plurality of electrode plates 3 made of a metal foil such as oxygen-free copper having a thickness of about 1 micron are laminated, bound by a binding component 5 and caulked and fixed, and then placed on a conductive reinforcing plate 2. Further, the binding component 5 and the reinforcing plate 2 are welded and fixed to each other. Further, electrode leads 3a are formed at the same position on each electrode plate 3, and an insulating active material 4 is applied to the surface excluding the electrode leads 3a. on the other hand,
The reinforcing plate 2 is also made of a metal plate having rigidity and is made to have substantially the same size and shape as the electrode plate 3.
【0010】次に、電極体1の製造手順を説明する。な
お、説明に先立ち、図1及び図3に開示されている図に
付いて述べると、図1及び図3では、一方の極だけの電
極体1を示しているが、この密閉型角形電池では、通常
は図1において実線で示す正極用の電極体と一点鎖線で
示す負極用の電極体との二つの電極体が同時に形成され
るもので、正極用の電極板と負極用の電極板とが、各極
毎に電極リード3aの位置を左右に変えて一枚づつ交互
に積み重ねられるものである。Next, a procedure for manufacturing the electrode body 1 will be described. Prior to the description, referring to the drawings disclosed in FIGS. 1 and 3, FIG. 1 and FIG. 3 show the electrode body 1 having only one pole. However, in this sealed prismatic battery, Usually, two electrode bodies, that is, an electrode body for a positive electrode shown by a solid line in FIG. 1 and an electrode body for a negative electrode shown by a chain line are formed at the same time, and an electrode plate for a positive electrode and an electrode plate for a negative electrode are formed. However, the position of the electrode lead 3a is changed leftward and rightward for each pole, and the electrode leads 3a are alternately stacked one by one.
【0011】また、各側の電極板3が所定枚数積み重ね
られたら、まず各電極側毎に、結束部品5が取り付けら
れる。この結束部品5は、導電性のもので、取り付ける
前は、図3に示すように、水平部5aと、この水平部5
aの左右両側より下方に向かって略直角に折り曲げられ
た一対の垂直部5bとを一体に有して、断面が略コ字状
に形成されている。そして、この結束部品5は、積層さ
れている電極リード3aの左右両側が一対の垂直部5
b,5bとの間に挟み込まれるようにして、電極リード
3aの上側から取り付けられ、さらに積層されている電
極リード3aの下側から突出された一部5c(図3参
照)を互いに内側に向かって略直角に折り曲げて倒し、
この一部5cで電極リード3aの下側より押さえ、積層
されている電極リード3a全体を加締める。これにより
各電極リード3aの部分が一体に仮結束され、一体化さ
れた積層電極板が形成される。次いで、図2に示すよう
に、積層電極板の下側に補強板2を密着させて配置し、
この状態で抵抗溶接機の溶接電極10a,10bとの間
に電極リード3aの部分をセットする。さらに、この部
分を溶接電極10a,10bで挟み、溶接電極10a,
10bに溶接電流を流して各電極リード3a間及び電極
リード3aと結束部品5並びに補強板2間を溶着させ
る。すると、これにより一電極側の電極体1が形成され
る。図1において、符号6で示している部分が、抵抗溶
接された部分を示している。また、この作業をもう一方
の電極側に付いても同様にして行うと、正極用と負極用
とが一体化されてなる電極体を持つ密閉型角形電池を形
成することができる。When a predetermined number of electrode plates 3 on each side are stacked, the binding component 5 is first attached to each electrode side. This bundling component 5 is electrically conductive, and before attachment, as shown in FIG.
It has a pair of vertical portions 5b which are bent downward at substantially right angles from both left and right sides of a, and has a substantially U-shaped cross section. The binding component 5 includes a pair of vertical portions 5 on both left and right sides of the stacked electrode leads 3a.
The parts 5c (see FIG. 3), which are attached from above the electrode lead 3a so as to be sandwiched between the electrodes 5b and 5b, and which are further projecting from the lower side of the electrode lead 3a, are directed inward. And bend it at a right angle
The part 5c is pressed from the lower side of the electrode lead 3a to crimp the entire laminated electrode lead 3a. As a result, the parts of the electrode leads 3a are temporarily bundled together to form an integrated laminated electrode plate. Then, as shown in FIG. 2, the reinforcing plate 2 is placed in close contact with the lower side of the laminated electrode plate,
In this state, the electrode lead 3a is set between the welding electrodes 10a and 10b of the resistance welding machine. Further, this portion is sandwiched between the welding electrodes 10a and 10b,
A welding current is applied to 10b to weld between the electrode leads 3a and between the electrode leads 3a and the binding component 5 and the reinforcing plate 2. Then, the electrode body 1 on the one electrode side is thereby formed. In FIG. 1, a portion indicated by reference numeral 6 indicates a resistance-welded portion. Further, if this work is similarly performed for the other electrode side, a sealed prismatic battery having an electrode body in which the positive electrode and the negative electrode are integrated can be formed.
【0012】したがって、本実施例の密閉型角形電池の
電極体1によれば、結束部品5で電極リード3aを包み
込む状態にして結束し、結束後は結束部品5を介して抵
抗溶接を行い、溶接電極10a,10bが直接、電極リ
ード3aに接触することがないようにしているので、電
極リード3aを形成している銅箔が溶接電極10a,1
0b等に付着するのを防ぐことができる。Therefore, according to the electrode body 1 of the sealed prismatic battery of the present embodiment, the electrode lead 3a is wrapped with the binding component 5 so that the electrode lead 3a is bound, and after the binding, resistance welding is performed through the binding component 5. Since the welding electrodes 10a and 10b are prevented from coming into direct contact with the electrode leads 3a, the copper foil forming the electrode leads 3a is welded to the welding electrodes 10a and 1b.
It can be prevented from adhering to 0b or the like.
【0013】なお、上記実施例では、電極リード3a
間、及び電極リード3aと結束部品5と補強板2との間
の溶着を抵抗溶接した場合に付いて説明したが、これ以
外の溶着であっても差し支えないものである。また、上
記実施例では、断面がコ字状をした結束部品5を用いて
電極リード3aを結束した構造を開示したが、これ以外
の例えば図4及び図5に示すような形状にして形成して
も良いものである。すなわち、図4に示す構造は、断面
形状が丸いリング状をした結束部品で、図5に示す構造
は断面形状が矩形状をした結束部品である。何れの結束
部品も、リング状をした結束部品5内に、積層された状
態にある電極リード3aを挿入させ、その後から加締め
て仮結束するようにして使用されるもので、これ以後の
溶着作業は上記実施例の場合と同じである。In the above embodiment, the electrode lead 3a is used.
The welding between the electrode lead 3a, the binding component 5 and the reinforcing plate 2 has been described by resistance welding, but other welding may be used. Further, in the above embodiment, the structure in which the electrode leads 3a are bound by using the binding component 5 having a U-shaped cross section is disclosed. However, other shapes such as those shown in FIGS. 4 and 5 are formed. It is also good. That is, the structure shown in FIG. 4 is a bundling component having a round cross section, and the structure shown in FIG. 5 is a bundling component having a rectangular cross section. Each of the binding parts is used by inserting the electrode lead 3a in a laminated state into the ring-shaped binding part 5 and then caulking to temporarily bind the electrode leads 3a. The work is the same as in the above embodiment.
【0014】[0014]
【発明の効果】以上説明したとおり、本発明によれば、
結束部品により電極リードを結束し、結束後は結束部品
を介して溶着が行われ、溶接電極等が直接、電極リード
に接触することがないので、電極リードを形成している
箔が溶接電極等に付着するのを防ぐことができる。した
がって、溶接電極等のメンテナンスの回数を減らすこと
ができるとともに寿命も延ばすことができる。また、溶
接設定条件の範囲が広がり、条件設定が簡単になる。さ
らに、結束部品で電極リードを結束するので、抵抗溶接
等による溶着時における作業も簡単になる。これによ
り、生産性を向上させることができる。加えて、溶着部
分の周囲を結束部品が包み込んだ状態になるので、溶着
時に溶着部分の周囲にダメージが伝わりにくく、剥離や
亀裂等を防ぐことができ、信頼性が向上する等の効果が
期待できる。As described above, according to the present invention,
The electrode lead is bound by the binding component, and after binding, welding is performed through the binding component, and the welding electrode etc. does not directly contact the electrode lead, so the foil forming the electrode lead is the welding electrode etc. Can be prevented from adhering to. Therefore, it is possible to reduce the frequency of maintenance of the welding electrode and the like and extend the life thereof. In addition, the range of welding setting conditions is widened and the condition setting becomes easier. Further, since the electrode leads are bound by the binding parts, the work at the time of welding by resistance welding or the like becomes simple. Thereby, productivity can be improved. In addition, since the binding parts are wrapped around the welded part, damage is less likely to be transmitted to the periphery of the welded part during welding, peeling and cracks can be prevented, and effects such as improved reliability are expected. it can.
【図1】本発明の一実施例として示す密閉型角形電池に
おける電極体の斜視図である。FIG. 1 is a perspective view of an electrode body in a sealed prismatic battery shown as an embodiment of the present invention.
【図2】図1のA−A線に沿う概略断面図である。FIG. 2 is a schematic cross-sectional view taken along the line AA of FIG.
【図3】図1に示した電極体の分解斜視図である。FIG. 3 is an exploded perspective view of the electrode body shown in FIG.
【図4】本発明の変形例を示す補強板の要部構成斜視図
である。FIG. 4 is a perspective view of a main part of a reinforcing plate showing a modified example of the present invention.
【図5】本発明の他の変形例を示す補強板の要部構成斜
視図である。FIG. 5 is a perspective view of a main part of a reinforcing plate showing another modification of the present invention.
【図6】従来の密閉型角形電池における電極体の一例を
示す斜視図である。FIG. 6 is a perspective view showing an example of an electrode body in a conventional sealed prismatic battery.
【図7】図6に示した電極対の分解斜視図である。7 is an exploded perspective view of the electrode pair shown in FIG.
1 電極体 2 補強板 3 電極板 3a 電極リード 4 活物質 5 結束部品 DESCRIPTION OF SYMBOLS 1 Electrode body 2 Reinforcement plate 3 Electrode plate 3a Electrode lead 4 Active material 5 Binding component
Claims (4)
して複数枚積層してなる密閉型角形電池の電極体におい
て、 前記電極板を積層後、前記各電極リードを一緒に包み込
んで結束し、前記各電極板を一体化してなる結束部品を
備えているとともに、 前記結束部品を介して当接された溶着手段により前記各
電極板間が溶着されて一体化されていることを特徴とす
る密閉型角形電池の電極体。1. An electrode body for a hermetically sealed prismatic battery, wherein a plurality of electrode plates having electrode leads are laminated on a reinforcing plate, wherein the electrode plates are laminated and then the electrode leads are wrapped together and bound. The electrode plates are integrated with each other, and the electrode plates are welded and integrated by a welding means abutted via the binding parts. Sealed prismatic battery electrode body.
形成されている請求項1に記載の密閉型角形電池の電極
体。2. The electrode body for a sealed prismatic battery according to claim 1, wherein the binding component has a substantially U-shaped cross section.
形成されている請求項1に記載の密閉型角形電池の電極
体。3. The electrode body for a sealed prismatic battery according to claim 1, wherein the binding component has a ring-shaped cross section.
して複数枚積層してなる密閉型角形電池における電極体
の製造方法において、 前記電極板を積層後、結束部品で前記各電極リードを一
緒に包み込んで結束し、この結束した後から前記結束部
品を介して前記電極リードに溶着手段を当接させ、前記
溶着手段により前記各電極板間を溶着させて一体化する
ようにしたことを特徴とする密閉型角形電池の電極体の
製造方法。4. A method of manufacturing an electrode body in a sealed prismatic battery, wherein a plurality of electrode plates having electrode leads are laminated on a reinforcing plate, wherein the electrode plates are laminated and then each electrode lead is formed by a binding component. And encapsulating them together to bind them together, and after this binding, the electrode leads are brought into contact with the welding means through the binding parts, and the electrode means are welded between the electrode plates to integrate them. A method for manufacturing an electrode body for a sealed prismatic battery, comprising:
Priority Applications (1)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
JP6332830A JPH08167407A (en) | 1994-12-15 | 1994-12-15 | Electrode body of sealed rectangular battery and its manufacture |
Applications Claiming Priority (1)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
JP6332830A JPH08167407A (en) | 1994-12-15 | 1994-12-15 | Electrode body of sealed rectangular battery and its manufacture |
Publications (1)
Publication Number | Publication Date |
---|---|
JPH08167407A true JPH08167407A (en) | 1996-06-25 |
Family
ID=18259282
Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
JP6332830A Pending JPH08167407A (en) | 1994-12-15 | 1994-12-15 | Electrode body of sealed rectangular battery and its manufacture |
Country Status (1)
Country | Link |
---|---|
JP (1) | JPH08167407A (en) |
Cited By (9)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
KR100435038B1 (en) * | 2001-12-22 | 2004-06-09 | 한국 파워셀 주식회사 | Method for forming cathode terminal of Lithium ion secondary battery |
JP2007018833A (en) * | 2005-07-07 | 2007-01-25 | Furukawa Battery Co Ltd:The | Storage battery manufacturing method |
JP2012004096A (en) * | 2010-06-17 | 2012-01-05 | Samsung Sdi Co Ltd | Electrode tap coupling structure of secondary cell, and secondary cell utilizing it |
JP2012209260A (en) * | 2012-06-18 | 2012-10-25 | Toshiba Corp | Battery |
JP2013168238A (en) * | 2012-02-14 | 2013-08-29 | Toyota Industries Corp | Power storage device, vehicle, and method for manufacturing power storage device |
JP2014044903A (en) * | 2012-08-28 | 2014-03-13 | Toyota Industries Corp | Power storage device and manufacturing method of electrode assembly |
JP2014182880A (en) * | 2013-03-18 | 2014-09-29 | Toyota Industries Corp | Power storage device and manufacturing method of power storage device |
JPWO2013031937A1 (en) * | 2011-08-31 | 2015-03-23 | Necエナジーデバイス株式会社 | Lithium ion secondary battery |
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-
1994
- 1994-12-15 JP JP6332830A patent/JPH08167407A/en active Pending
Cited By (12)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
KR100435038B1 (en) * | 2001-12-22 | 2004-06-09 | 한국 파워셀 주식회사 | Method for forming cathode terminal of Lithium ion secondary battery |
JP2007018833A (en) * | 2005-07-07 | 2007-01-25 | Furukawa Battery Co Ltd:The | Storage battery manufacturing method |
JP2012004096A (en) * | 2010-06-17 | 2012-01-05 | Samsung Sdi Co Ltd | Electrode tap coupling structure of secondary cell, and secondary cell utilizing it |
US9029006B2 (en) | 2010-06-17 | 2015-05-12 | Samsung Sdi Co., Ltd. | Coupling structure for electrode tabs of secondary battery and secondary battery using the same |
JPWO2013031937A1 (en) * | 2011-08-31 | 2015-03-23 | Necエナジーデバイス株式会社 | Lithium ion secondary battery |
US9786896B2 (en) | 2011-08-31 | 2017-10-10 | Nec Energy Devices, Ltd. | Lithium-ion secondary battery |
JP2013168238A (en) * | 2012-02-14 | 2013-08-29 | Toyota Industries Corp | Power storage device, vehicle, and method for manufacturing power storage device |
JP2012209260A (en) * | 2012-06-18 | 2012-10-25 | Toshiba Corp | Battery |
JP2014044903A (en) * | 2012-08-28 | 2014-03-13 | Toyota Industries Corp | Power storage device and manufacturing method of electrode assembly |
JP2014182880A (en) * | 2013-03-18 | 2014-09-29 | Toyota Industries Corp | Power storage device and manufacturing method of power storage device |
WO2020149019A1 (en) * | 2019-01-15 | 2020-07-23 | パナソニックIpマネジメント株式会社 | Secondary battery |
JPWO2020149019A1 (en) * | 2019-01-15 | 2021-12-02 | パナソニックIpマネジメント株式会社 | Secondary battery |
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