JP2007227283A - Sealed battery - Google Patents
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- JP2007227283A JP2007227283A JP2006049657A JP2006049657A JP2007227283A JP 2007227283 A JP2007227283 A JP 2007227283A JP 2006049657 A JP2006049657 A JP 2006049657A JP 2006049657 A JP2006049657 A JP 2006049657A JP 2007227283 A JP2007227283 A JP 2007227283A
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- 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
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Abstract
Description
本発明は密閉型電池、特にリチウム二次電池など高エネルギー密度を有する電池に用いられる密閉型電池に関するものである。 The present invention relates to a sealed battery, particularly a sealed battery used for a battery having a high energy density such as a lithium secondary battery.
近年では、電子機器のポータブル化やコードレス化が進展して定着するに従って、駆動用電源となる二次電池の高エネルギー密度化や小型軽量化の要望が、ますます強くなっている。このような要望に応える電池として、小型・軽量でありながら急速充電が可能で、高エネルギー密度を有するという極めて顕著な特徴を有するリチウムイオン二次電池に代表される非水電解液二次電池が、開発され主流になっている。 In recent years, as electronic devices have become portable and cordless, the demand for higher energy density and smaller size and weight of the secondary battery serving as a driving power source has become stronger. Non-aqueous electrolyte secondary batteries typified by lithium ion secondary batteries, which have extremely remarkable characteristics of being capable of rapid charging while having a small size and light weight and having a high energy density as a battery that meets such demands. Developed and mainstream.
この非水電解液二次電池は、リチウム含有遷移金属化合物を正極活物質とする正極と、炭素材料を負極活物質とする負極とをセパレータを介して絶縁した状態で捲回してなる極板群、非水電解液を電池ケースに収納した電池である。 This non-aqueous electrolyte secondary battery is an electrode plate group in which a positive electrode using a lithium-containing transition metal compound as a positive electrode active material and a negative electrode using a carbon material as a negative electrode active material are wound with a separator interposed therebetween. A battery in which a non-aqueous electrolyte is housed in a battery case.
しかしながら、電子機器の高機能化等に伴う消費電力の増加に伴い、さらなる高容量化、高エネルギー密度化、長寿命化が強く要望されており、容量に寄与しないセパレータや集電体を薄くし、極板の充填密度を上げているため正負極間の距離が狭くなり、電池内の空間体積も減少している。また、電子機器の小型化に伴い各構成要素が高密度で実装されていることから、発熱が大きく電池が使用される使用環境は60℃を超える過酷な条件になる場合がある。 However, with the increase in power consumption due to higher functionality of electronic devices, there is a strong demand for higher capacity, higher energy density, and longer life, and thinning separators and current collectors that do not contribute to capacity Since the packing density of the electrode plate is increased, the distance between the positive and negative electrodes is reduced, and the space volume in the battery is also reduced. Moreover, since each component is mounted with high density along with the downsizing of electronic equipment, the usage environment in which the battery is used with large heat generation may be severe conditions exceeding 60 ° C.
このような現状において、充電器の故障や充電制御不能により、過充電状態に陥った場合でも電池の安全性を確保できることが重要になっている。 Under such circumstances, it is important to ensure the safety of the battery even when the battery is overcharged due to the failure of the charger or the inability to control charging.
過充電状態に陥った場合の電池の安全性を確保する方法として、電池内圧が所定の値を超えると、電流遮断機構を作動させる防爆型密閉電池が知られており、過充電状態が進んで電池内部の化学変化によりガスが発生・充満しそのガスの充満により電池内圧が上昇し、所定の値に達すると、電流遮断機構が作動し充電電流を遮断する。これにより、電池内部の異常反応の進行を停止させ、急激な電池温度の上昇を防ぎ、安全性を確保するものである。 Explosion-proof sealed batteries that activate the current interrupt mechanism when the internal pressure of the battery exceeds a predetermined value are known as a method to ensure the safety of the battery in the case of falling into an overcharged state. Gas is generated and filled due to a chemical change inside the battery, and the internal pressure of the battery increases due to the gas filling. Thereby, the progress of the abnormal reaction inside the battery is stopped, the sudden rise in battery temperature is prevented, and safety is ensured.
安全機構を有する封口板は、一般的に、ガス通気孔のある有底皿形状の金属ケースの内部もしくは上部にリング状の絶縁性ガスケットをはさんで金属箔が重ねられている。その金属箔は中央部分が凸状になっており、金属箔は金属箔と絶縁ガスケットで絶縁された有底皿形状の金属ケースもしくは別の金属箔と凸状部で溶接により電気的に接続されている。金属箔の周縁部の上面には、外部端子を兼ねた金属キャップが載置された構造をしている。電流遮断機構は、電池内圧が上昇した際に金属ケースのガス通気孔を通して金属箔が電池内圧を受けて膨らむ。金属箔にはリング状に刻印部があり、電池内圧が所定の値に達すると刻印部を全周引きちぎるように破断させ、電流を遮断する。(例えば特許文献1参照)
この他には、金属箔の溶接部を破断させて電流を遮断するものもある。(例えば特許文献2参照)
また、温度上昇で電流遮断をさせるために金属箔と金属キャップとの間に温度上昇に伴い抵抗値が上昇するPositive Temperature Coefficinet(以下PTCという)素子を積層させている封口板もある。(例えば特許文献3参照)
In addition to this, there is one that breaks the welded portion of the metal foil to interrupt the current. (For example, see Patent Document 2)
In addition, there is also a sealing plate in which a Positive Temperature Coefficientine (hereinafter referred to as PTC) element is stacked between a metal foil and a metal cap in order to cut off current when the temperature rises. (For example, see Patent Document 3)
電池の電気的容量の増加や、電池径の増大に伴い封口板の排気面積の拡大が必要となる。前記封口板遮断機構において、排気面積が大きくなると内圧上昇時に金属箔が圧力を受ける面積が広がるため、刻印部破断遮断機構では金属箔の伸びる面積が大きくなり刻印部の破断が困難になり、溶接部破断遮断機構では低い圧力でも溶接部が破断しやすくなり、どちらも電流遮断の作動が困難となる。 As the electric capacity of the battery increases and the battery diameter increases, it is necessary to expand the exhaust area of the sealing plate. In the sealing plate blocking mechanism, when the exhaust area becomes large, the area where the metal foil receives pressure increases when the internal pressure rises. Therefore, the stamped portion breaking blocking mechanism increases the area where the metal foil extends, making it difficult to break the stamped portion. In the partial break interruption mechanism, the welded portion is easily broken even at a low pressure, and in both cases, the current interruption operation becomes difficult.
そこで、本発明はこのような従来の課題を解決するもので、封口板の排気孔面積が拡大しても、的確な電流遮断機構を有し、安全性に優れた密閉型電池を提供することを目的とするものである。 Accordingly, the present invention solves such a conventional problem, and provides a sealed battery having an accurate current interruption mechanism and excellent safety even when the exhaust hole area of the sealing plate is enlarged. It is intended.
前記目的を達成するために、本発明の密閉型電池は、発電要素を収納した電池ケースの開口部を封口板により密閉してなる密閉型電池であり、前記封口板は、ガス通気孔を有する有底皿形状の金属ケースの内部、または上部に、リング状の絶縁ガスケットと、中央部に凸部を持つ金属箔と、前記金属箔の上面部に端子を兼ねた金属キャップにより構成され、前記金属箔は、刻印部を有しており、さらに前記金属箔は、前記絶縁ガスケットにより互いに絶縁されている前記金属ケースまたは他金属箔と、前記凸部で電気的導通を確保するために、前記凸部にスポット溶接による溶接部があり、前記溶接部または前記刻印部の破断により電気的遮断の機能を有する密閉型電池であって、前記溶接部は、複数のスポット溶接により構成されているものである。 In order to achieve the above object, the sealed battery of the present invention is a sealed battery formed by sealing an opening of a battery case containing a power generation element with a sealing plate, and the sealing plate has a gas vent. The inside or upper part of the bottomed dish-shaped metal case is composed of a ring-shaped insulating gasket, a metal foil having a convex portion at the center, and a metal cap that also serves as a terminal on the upper surface of the metal foil, The metal foil has a stamped portion, and the metal foil is further insulated from the metal case or other metal foil insulated from each other by the insulating gasket, in order to ensure electrical continuity at the convex portion. There is a welded part by spot welding on the convex part, and it is a sealed battery having a function of electrical interruption by breaking the welded part or the stamped part, and the welded part is constituted by a plurality of spot welds. It is.
本構成では、リング状の絶縁ガスケットがあるので、凸部にある溶接部のみで、前記金属ケースまたは、もう一枚の金属箔と溶接により電気的導通が確保されている。 In this configuration, since there is a ring-shaped insulating gasket, electrical continuity is ensured by welding with the metal case or another metal foil only by the welded portion on the convex portion.
本構成においては、複数のスポット溶接にすることで、電流遮断機構に必要な金属箔溶接径を封口板の排気面積に応じて容易に得ることができる。特に電池径や電池容量の増大に伴う封口板排気面積の増大に対応可能である。特に、1点のスポット溶接で、大きな溶接径を得ようとすると、溶接部における温度分布の均一化や、金属箔の厚みが溶接径の大きさにあわせて厚くなり、封口板の狙いの条件が狭まるなど困難な課題が多く出現する。このような課題に対して、複数のスポット溶接であれば、1点の溶接において、溶接部温度分布が安定しやすく、溶接する金属箔の厚みにあわせた溶接条件で複数点溶接するので、封口板の排気面積に応じて必要な溶接径を確保しつつ、安定して溶接を行うことが出来る。 In this configuration, by using a plurality of spot welds, the metal foil weld diameter necessary for the current interrupt mechanism can be easily obtained according to the exhaust area of the sealing plate. In particular, it is possible to cope with an increase in the sealing plate exhaust area accompanying an increase in battery diameter and battery capacity. In particular, if a large welding diameter is to be obtained by spot welding at one point, the temperature distribution in the welded portion becomes uniform and the thickness of the metal foil increases in accordance with the size of the welding diameter. There are many difficult issues such as narrowing. With respect to such a problem, if a plurality of spot welds are used, it is easy to stabilize the temperature distribution of the weld in one point of welding, and multiple points are welded under welding conditions that match the thickness of the metal foil to be welded. Stable welding can be performed while securing a necessary welding diameter according to the exhaust area of the plate.
金属箔の刻印部を破断させる電流遮断機構では、電池内圧により金属箔が膨らみ、圧力を受けている面が伸びて刻印部が破断するが、排気面積が大きい封口板になると、圧力を受ける面が大きくなり、圧力上昇時に金属箔をより大きく膨らませなければ刻印部の破断をさせることが困難となる。封口板で金属箔の膨らませるスペースは限られているので、そのような場合でも刻印部を破断させるためには、圧力上昇で金属箔が伸びる面積を小さくすればよい。そこで、中央の溶接部の溶接径を複数のスポット溶接で広げ、固定された面積を広げることで、圧力上昇で金属箔の伸びる面積が小さくでき、刻印部の破断が容易になり所定の内圧で電流を遮断することができる。 In the current interruption mechanism that breaks the stamped part of the metal foil, the metal foil swells due to the internal pressure of the battery, the surface receiving the pressure extends and the stamped part breaks, but when the sealing plate has a large exhaust area, the surface receiving the pressure If the metal foil is not expanded more greatly when the pressure is increased, it becomes difficult to break the stamped portion. Since the space for inflating the metal foil with the sealing plate is limited, in order to break the stamped portion even in such a case, the area in which the metal foil extends by increasing the pressure may be reduced. Therefore, by expanding the weld diameter of the central weld with multiple spot welds and expanding the fixed area, the area where the metal foil extends due to pressure rise can be reduced, and the engraved part can be easily broken, with a predetermined internal pressure. The current can be cut off.
金属箔中央溶接部の破断による電流遮断機構では、電池内圧により金属箔が膨らみ、溶接部を引き離す力が働き溶接部が破断するが、排気面積が大きい封口板になると、圧力を
受ける面が大きくなり、低い圧力でも容易に破断してしまい、高温などの保存性が悪くなる。そこで圧力を受ける面積に応じて溶接部の強度を確保すればよいので、中央の溶接部の溶接径を複数のスポット溶接で必要な大きさを確保することで、容易に溶接部が破断することがなくなり、所定の内圧で電流を確実遮断することができる。
In the current interruption mechanism due to the fracture of the central weld of the metal foil, the metal foil swells due to the internal pressure of the battery, and the force that separates the weld acts to break the weld. Therefore, it breaks easily even at a low pressure, and the storage stability such as high temperature deteriorates. Therefore, it is only necessary to ensure the strength of the weld according to the area that receives the pressure, so that the weld can be easily fractured by securing the required diameter of the central weld with multiple spot welds. The current can be reliably cut off at a predetermined internal pressure.
さらに、前記刻印部の最小外接円の直径を刻印径とし、前記溶接部全体の溶接径が、前記刻印径以下の大きさとなるように構成され、前記刻印部の破断により電気的遮断の機能を有するように構成されていることが好ましい。 Further, the diameter of the minimum circumscribed circle of the stamped portion is a stamped diameter, and the weld diameter of the entire welded portion is configured to be equal to or smaller than the stamped diameter. It is preferable to have such a configuration.
本構成では、さらに確実に所定の内圧で電流を遮断することができる。 In this configuration, it is possible to more reliably cut off the current at a predetermined internal pressure.
また、前記金属箔と前記金属キャップの間にリング状の金属板、もしくは温度上昇に伴い抵抗値が上昇するPTC素子を積層するのが、好ましい。 Moreover, it is preferable to laminate | stack the ring-shaped metal plate or the PTC element which resistance value rises with a temperature rise between the said metal foil and the said metal cap.
本構成により、前記凸部をもつ金属箔の安定的な作動が図れる。 With this configuration, the metal foil having the convex portion can be stably operated.
本発明によれば、電池径や電池容量の増大に伴う封口板排気面積が増大する場合において、電流遮断に必要な溶接部溶接径を容易に得ることができ、確実に所定の内圧で電流を遮断することができる。 According to the present invention, when the sealing plate exhaust area increases as the battery diameter and the battery capacity increase, the weld diameter required for current interruption can be easily obtained, and the current can be reliably supplied with a predetermined internal pressure. Can be blocked.
以下、本発明の実施形態について、図を用いてさらに、詳細に説明する。 Hereinafter, embodiments of the present invention will be described in more detail with reference to the drawings.
本発明の密閉電池は、封口板に、特徴があり、金属箔の凸部にある溶接部の溶接がスポット溶接で、複数のスポット溶接により構成されたものである。 The sealed battery according to the present invention is characterized in that the sealing plate has a feature, and welding of the welded portion on the convex portion of the metal foil is spot welding, and is constituted by a plurality of spot weldings.
図1に本実施の形態に関する密閉型電池用防爆封口板の一例の概略断面図を示す。 FIG. 1 shows a schematic cross-sectional view of an example of an explosion-proof sealing plate for a sealed battery according to this embodiment.
図1において、密閉型電池用防爆封口板は上部金属箔1に対接された下部金属箔2、両金属箔1、2の各々の周縁部の間に介在されたリング状の絶縁ガスケット3、上部金属箔1の上面に載置されたPTC4、PTC4の上面に載置された金属キャップ5、各部材を挿入させて保持するガス通気孔を有する有底皿形状の金属ケース6にて構成されている。また、上部金属箔1には凹状の膨らみ部、下部金属箔2には凸状の膨らみ部が設けられ、両膨らみ部は絶縁ガスケット3の内径3aを介して接触するようになっており、この接触面7は溶接部7aで溶接されている。上部金属箔1および下部金属箔2はそれぞれリング状の刻印部1aおよび2aが設けられている。 In FIG. 1, an explosion-proof sealing plate for a sealed battery includes a lower metal foil 2 that is in contact with the upper metal foil 1, a ring-shaped insulating gasket 3 that is interposed between the peripheral edges of the two metal foils 1 and 2, It is composed of a PTC 4 placed on the upper surface of the upper metal foil 1, a metal cap 5 placed on the upper surface of the PTC 4, and a bottomed dish-shaped metal case 6 having a gas vent hole for inserting and holding each member. ing. The upper metal foil 1 is provided with a concave bulge portion, and the lower metal foil 2 is provided with a convex bulge portion, both bulge portions being in contact with each other via an inner diameter 3a of the insulating gasket 3, The contact surface 7 is welded by a welded portion 7a. The upper metal foil 1 and the lower metal foil 2 are provided with ring-shaped marking portions 1a and 2a, respectively.
本構成における刻印部の形状は、リング状が好ましいが、C字状でもかまわない。 The shape of the marking portion in this configuration is preferably a ring shape, but may be a C shape.
図2および図3は溶接部全体の溶接径の概念を示している。図2または図3に示しているように、複数のスポット溶接部8を囲む円の内で面積が最小のもの、つまり、任意の溶接部形状の最小外接円9の直径を溶接径とする。 2 and 3 show the concept of the weld diameter of the entire weld. As shown in FIG. 2 or FIG. 3, the diameter of the smallest circumscribed circle 9 having the smallest area among the circles surrounding the plurality of spot welds 8, that is, the arbitrary circumscribed circle 9 is defined as the weld diameter.
図1で示した実施の形態は、絶縁ガスケット3、金属箔1、2、金属キャップ5が金属ケース6の内部にある例である。 The embodiment shown in FIG. 1 is an example in which the insulating gasket 3, the metal foils 1 and 2, and the metal cap 5 are inside the metal case 6.
絶縁ガスケット、金属箔、金属キャップが金属ケースの内部にあるものには、図1で示したもの以外にも、例えば図4のように金属ケース6内で絶縁ガスケット3、金属箔10、金属キャップ5など全ての部品が金属ケース6内に配置され、金属ケース6を内側へか
しめをされて密閉された封口板の構成が含まれている。
Insulating gaskets, metal foils, and metal caps inside the metal case, in addition to those shown in FIG. 1, for example, the insulating gasket 3, metal foil 10, and metal cap in the metal case 6 as shown in FIG. All the components such as 5 are arranged in the metal case 6, and a sealing plate structure in which the metal case 6 is caulked inward and sealed is included.
それに対し、絶縁ガスケット、金属箔、金属キャップが金属ケースの上部にあるものには、例えば図5のように、絶縁ガスケット3、金属箔10、金属キャップ5など全ての部品が、金属ケース6内に配置されるというよりは、金属ケース6の上部に配置され、これらの集合体を、電池ケースを内側へかしめることにより密閉された封口板の構成が含まれている。 On the other hand, if the insulation gasket, metal foil, and metal cap are on the upper part of the metal case, for example, as shown in FIG. The structure of the sealing board which is arrange | positioned at the upper part of the metal case 6 and was sealed by crimping the battery case inside is included.
また、本発明にはこれら実施の形態の中間の状態の形態も含まれる。 Further, the present invention includes a form in an intermediate state between these embodiments.
以下、本発明について、具体例を用いてさらに説明する。 Hereinafter, the present invention will be further described using specific examples.
絶縁ガスケット3のリング内径に対する溶接部7aの溶接径の検討を行った。スポット溶接にはすべて1点の溶接径がφ1mmとなるレーザ溶接を用いて行った。実施例では溶接部溶接径が図3に示すような3点のスポット溶接で溶接径がφ2.15mmとなり、ガスケット内径がφ12mmで、金属箔1、2の厚みがそれぞれ0.15mmで封口板を作成した。 The weld diameter of the weld 7a with respect to the ring inner diameter of the insulating gasket 3 was examined. All spot welding was performed using laser welding in which the welding diameter at one point was 1 mm. In the embodiment, the weld diameter is 3 spot welding as shown in FIG. 3, the weld diameter is 2.15 mm, the gasket inner diameter is 12 mm, and the thickness of the metal foils 1 and 2 is 0.15 mm. Created.
以上のように作成した実施例の封口板、100個で電流遮断試験を行った。試験方法は、ガス通気孔を有する有底皿形状の金属ケースの下方から窒素ガスを29.4kPa/sで加圧する。金属ケースの底部外周をガスが漏れないようにパッキンし、ガス通気孔を通して、下部金属箔の下方からのみ圧力が加えられる状態にし、試験を行った。試験の結果、適切に電流遮断が行われない封口板の発生率を調べた。 A current interruption test was conducted with 100 sealing plates of the example prepared as described above. In the test method, nitrogen gas is pressurized at 29.4 kPa / s from the bottom of a bottomed dish-shaped metal case having gas vents. The test was performed by packing the outer periphery of the bottom of the metal case so that no gas leaked, and applying pressure only from below the lower metal foil through the gas vent. As a result of the test, the occurrence rate of the sealing plate that was not properly interrupted was examined.
試験の結果、実施例の封口板において、全数適切に電流遮断機構が作動し、また、溶接部7aを複数のスポット溶接で必要な溶接径を得ることが有効なことを示した。 As a result of the test, it was shown that all the current blocking mechanisms in the sealing plates of the examples were appropriately operated and that it was effective to obtain a necessary weld diameter by spot welding of the welded portion 7a.
本発明の密閉型電池は、高容量化や大型化においても優れた防爆安全性を有する密閉型電池であり、ポータブル用電源等から高出力分野において有用である。 The sealed battery of the present invention is a sealed battery having an explosion-proof safety that is excellent in increasing capacity and size, and is useful in the field of high output from a portable power source or the like.
1 上部金属箔
1a 上部金属箔刻印部
2 下部金属箔
2a 下部金属箔刻印部
3 絶縁ガスケット
3a 絶縁ガスケット内径
4 PTC
5 金属キャップ
6 金属ケース
7 上部金属箔と下部金属箔の接触面
7a 溶接部
8 スポット溶接部
9 最小外接円
10 金属箔
10a 金属箔刻印部
11 金属箔
DESCRIPTION OF SYMBOLS 1 Upper metal foil 1a Upper metal foil stamping part 2 Lower metal foil 2a Lower metal foil stamping part 3 Insulating gasket 3a Insulating gasket inner diameter 4 PTC
5 Metal cap 6 Metal case 7 Contact surface of upper metal foil and lower metal foil 7a Welded portion 8 Spot welded portion 9 Minimum circumscribed circle 10 Metal foil 10a Metal foil stamped portion 11 Metal foil
Claims (3)
前記封口板は、ガス通気孔を有する有底皿形状の金属ケースの内部、または上部に、リング状の絶縁ガスケットと、中央部に凸部を持つ金属箔と、前記金属箔の上面部に端子を兼ねた金属キャップにより構成され、
前記金属箔は、刻印部を有しており、さらに前記金属箔は、前記絶縁ガスケットにより互いに絶縁されている前記金属ケースまたは他金属箔と、前記凸部で電気的導通を確保するために、前記凸部にスポット溶接による溶接部があり、前記溶接部または前記刻印部の破断により電気的遮断の機能を有する密閉型電池であって、
前記溶接部は、複数のスポット溶接により構成されている密閉型電池。 It is a sealed battery in which the opening of the battery case containing the power generation element is sealed with a sealing plate,
The sealing plate includes a ring-shaped insulating gasket, a metal foil having a convex portion at the center, and a terminal on the upper surface of the metal foil, in or on the bottomed metal case having a gas vent. Consists of a metal cap that doubles as
The metal foil has a marking portion, and the metal foil is electrically insulated from the metal case or other metal foil insulated from each other by the insulating gasket, and the convex portion. The convex part has a welded part by spot welding, and is a sealed battery having a function of electrical interruption by breaking the welded part or the stamped part,
The said welding part is a sealed battery comprised by several spot welding.
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CN103227311A (en) * | 2012-01-27 | 2013-07-31 | 丰田自动车株式会社 | Sealed secondary battery |
US8936861B2 (en) | 2008-11-06 | 2015-01-20 | Toyota Jidosha Kabushiki Kaisha | Sealed battery |
US8993139B2 (en) | 2009-05-15 | 2015-03-31 | Toyota Jidosha Kabushiki Kaisha | Sealed secondary battery |
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Publication number | Priority date | Publication date | Assignee | Title |
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US8936861B2 (en) | 2008-11-06 | 2015-01-20 | Toyota Jidosha Kabushiki Kaisha | Sealed battery |
US8993139B2 (en) | 2009-05-15 | 2015-03-31 | Toyota Jidosha Kabushiki Kaisha | Sealed secondary battery |
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