Lithium-ion secondary battery
09786896 · 2017-10-10
Assignee
Inventors
Cpc classification
H01M10/0585
ELECTRICITY
Y02E60/10
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
Y02P70/50
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
International classification
H01M10/0585
ELECTRICITY
Abstract
A lithium-ion secondary battery includes: an electrode body in which a positive electrode and a negative electrode are stacked or wound through a separator; a plurality of positive electrode tabs drawn from the electrode body; a plurality of negative electrode tabs drawn from the electrode body; a joint portion between the positive electrode tabs and a positive electrode lead tab; and a joint portion between the negative electrode tabs and a negative electrode lead tab. Apart of a metal plate is disposed on a surface of the positive electrode tab or positive electrode lead tab in the joint portion and on a surface of the negative electrode tab or negative electrode lead tab in the joint portion and joined integrally thereto, and a remaining part of the metal plate is wound around the joint portions.
Claims
1. A lithium-ion secondary battery comprising: an electrode body in which a positive electrode and a negative electrode are stacked or wound through a separator; a plurality of positive electrode tabs drawn from the electrode body; a plurality of negative electrode tabs drawn from the electrode body; a joint portion between the positive electrode tabs and a positive electrode lead tab; and a joint portion between the negative electrode tabs and a negative electrode lead tab, wherein a part of a metal plate is disposed on a surface of the positive electrode tab or positive electrode lead tab in the joint portion and on a surface of the negative electrode tab or negative electrode lead tab in the joint portion and joined integrally thereto, a remaining part of the metal plate is wound around the joint portions, the remaining part of the metal plate is folded to cover a surface abnormal portion formed at the portion at which the metal plate is joined to the joint portion, and is further wound around an outer periphery of the joint portion to a portion that covers another surface abnormal portion formed on a second surface which is opposite to first surface on which the surface abnormal portion is formed on the metal plate, and the metal plate is wound around the first surface and the second surface.
2. The lithium-ion secondary battery according to claim 1, wherein the metal plate is wound by one round or more from a portion at which it is joined to the joint portion.
3. The lithium-ion secondary battery according to claim 1, wherein the joining portion and metal plate are each covered with a synthetic resin layer.
4. The lithium-ion secondary battery according to claim 3, wherein the synthetic resin layer is a modified polyphenylene ether layer.
5. A lithium-ion secondary battery comprising: an electrode body in which a positive electrode and a negative electrode are stacked or wound through a separator; a plurality of positive electrode tabs drawn from the electrode body; a plurality of negative electrode tabs drawn from the electrode body; a joint portion between the positive electrode tabs and a positive electrode lead tab; and a joint portion between the negative electrode tabs and a negative electrode lead tab, wherein a part of a metal plate is disposed on a surface of the positive electrode tab or positive electrode lead tab in the joint portion and on a surface of the negative electrode tab or negative electrode lead tab in the joint portion and joined integrally thereto, a remaining part of the metal plate is wound around the joint portions, the remaining part of the metal plate is folded back on itself so as to cover a surface abnormal portion formed at the portion at which the metal plate is joined to the joint portion, and is further wound around an outer periphery of the joint portion to a portion that covers another surface abnormal portion formed on a second surface which is opposite to first surface on which the surface abnormal portion is formed at the folded-back portion of the metal plate, and the metal plate is wound around the first surface and the second surface.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
MODE FOR CARRYING OUT THE INVENTION
(7) The present invention will be described with reference to the drawings, taking a stacked-type lithium-ion secondary battery as an example.
(8) As illustrated in
(9) The positive electrode lead tab 115 and negative electrode lead tab 215 are each drawn from a sealing portion 510 of a film-like outer covering. Further, a gasket portion 520 is provided between the positive electrode lead tab 115 and film-like outer covering 500 and between the negative electrode lead tab 215 and film-like outer covering 500 to enhance sealing characteristics.
(10) The positive electrode lead tab 115 is joined to the positive electrode tabs 105 in the joint portion 110 by ultrasonic joining. Similarly, the negative electrode lead tab is joined to the negative electrode tabs in the joint portion by ultrasonic weld.
(11) The positive electrode to be used in the present invention can be manufactured as follows: a slurry positive electrode mixture obtained by dispersing lithium-manganese composite oxide, lithium-cobalt composite oxide, or lithium-nickel composite oxide, a conductive material such as carbon black, and a binding agent such as polyvinylidene fluoride into N-methyl-2-pyrrolidone is intermittently applied onto both surfaces of a positive collector, followed by drying, the resultant positive collector is compressed using a roller press for shaping to obtain a positive electrode base material, and the obtained positive electrode base material is cut into blocks each having a predetermined size.
(12) The negative electrode is manufactured as follows: a slurry negative electrode mixture obtained by dispersing a carbon material that absorbs and releases lithium ions, a conductive material such as carbon black, a binding agent such as polyvinylidene fluoride into N-methyl-2-pyrrolidone is intermittently applied onto both surfaces of a negative collector formed of a strip-shaped copper foil, followed by drying, the resultant negative collector is compressed using a roller press for shaping, and an obtained negative electrode base material is cut into blocks each having a predetermined size as in the case of the positive electrode.
(13) The film-like outer covering may be formed of a stacked body including a material having strength and heat resistance, such as nylon or polyethylene terephthalate, used for an outer surface side of an aluminum foil and a material having improved thermal adhesive characteristics, such as polypropylene or polyethylene, used for an inner surface side of the aluminum foil.
(14) The outer covering of the lithium-ion secondary battery is not limited to the film-like outer covering as described above, but a synthetic resin compact having a concave portion or metal container may be used.
(15) The following describes an electrode body according to the present invention with reference to
(16) As illustrated in
(17) The plurality of positive electrode tabs 105 are joined to the positive electrode lead tab 115 in the joint portion 110. Further, the negative electrode lead tab 215 and negative electrode lead terminal 205 are joined to each other in a joint portion 210.
(18)
(19) The positive electrode lead tab 115 is placed on the anvil of the ultrasonic joining apparatus, the plurality of positive electrode tabs 105 are placed on the positive electrode lead tab 115, a metal plate 120 is placed on an upper surface of the positive electrode tabs 105, and a horn of the ultrasonic joining apparatus is made to abut against the metal plate 120, whereby the joint portion 110 is integrally formed.
(20) Subsequently, as illustrated in
(21) In the joint portion 110, a surface abnormal portion 140A caused on the positive electrode lead tab is covered with the metal plate 120, so that it is possible to provide a lithium-ion secondary battery having an electrode body which is unlikely to cause damage by the surface abnormal portion and thus has excellent characteristics.
(22) Further, although a surface abnormal portion 140B is formed on a surface of the metal plate 120 of the joint portion 110, the positive electrode lead tab 115 is formed of a material having a larger thickness and a higher hardness than those of the metal plate 120. The burr, projection, or irregularity formed as the surface abnormal portion caused by the ultrasonic weld is more likely to damage the outer covering in a case where it is formed in metal having higher hardness. Therefore, although both the surface abnormal portions are preferably covered, it is possible to adopt a configuration in which only the surface abnormal portion 140A formed on the positive electrode lead tab 115 having a higher hardness is covered, depending on a battery structure.
(23) The following describes another embodiment of the electrode body according to the present invention with reference to
(24) As in the case of the electrode stacked body of
(25) The plurality of positive electrode tabs 105 are joined to the positive electrode lead tab 115 in the joint portion 110, and the negative electrode lead tab 215 and negative electrode lead terminal 205 are joined to each other in the joint portion 210.
(26) As illustrated in
(27) The metal plates that cover the respective joint portions 110 and 210 can be formed of the same materials as those of the positive- and negative-electrode lead tabs, respectively. Specifically, the metal plate on the positive electrode side can be formed of aluminum which is the same material for the positive electrode lead tab, and the metal plate on the negative electrode side can be formed of nickel, a nickel-plated copper plate, or a nickel copper cladding covered with nickel, which is the same material for the negative electrode lead tab.
(28) The positive electrode side joint portion 110 and negative electrode side joint portion 210 are each surface-covered with an insulating material and thus can further reduce influence on the battery constituent members when an impact is applied thereto.
(29) As the insulating material, any material can be used as long as it does not adversely affect electrolyte and the like used in the lithium-ion secondary battery. Preferably, modified polyphenylene ether is used.
(30) The following describes still another embodiment of the electrode body according to the present invention with reference to
(31)
(32) Subsequently, as illustrated in
(33) Further, as illustrated in
(34) Thus, in the positive electrode side joint portion 110, not only the surface abnormal portion 140A caused on the positive electrode lead tab at the joining time, but also the surface abnormal portion 140B caused on the metal plate is covered, so that it is possible to provide a lithium-ion secondary battery having an electrode body which is unlikely to cause damage and thus has excellent characteristics.
(35) The metal plates that cover the respective joint portions 110 and 210 can be formed of the same materials as those of the positive- and negative-electrode lead tabs, respectively. Specifically, the metal plate on the positive electrode side can be formed of aluminum which is the same material for the positive electrode lead tab, and the metal plate on the negative electrode side can be formed of nickel, a nickel-plated copper plate, or a nickel copper cladding covered with nickel, which is the same material for the negative electrode lead tab.
(36) The negative electrode side joint portion can be formed in the same manner.
(37) Although the present invention has been described taking, as an example, the stacked-type lithium-ion secondary battery in which the positive electrode and negative electrode are repeatedly stacked through the separator, the present invention can be applied to a wound-type lithium-ion secondary battery in which the positive electrode, separator, negative electrode, separator, — are stacked in the order mentioned and then the resultant electrode body is wound.
(38)
(39) The positive electrode side joint portion and negative electrode side joint portion are formed in the same manner as that for the stacked-type lithium-ion secondary battery, and whereby it is possible to provide a battery which is unlikely to cause damage by the surface abnormal portion.
(40) On the positive electrode side, the positive electrode tab, metal plate, and positive electrode lead tab can all be formed of aluminum. On the negative electrode side, the negative electrode tab can be formed of a nickel-plated copper plate or a nickel plate, and the metal plate can be formed of a nickel plate.
(41) In the present invention, although the surface abnormal portions of the joint portions on both the positive- and negative-electrode sides are preferably covered with the metal plate, it is possible to cover only the surface abnormal portion on the negative electrode side at which hardness of the constituent member is high and the damage is more likely to occur than at the positive electrode side.
INDUSTRIAL APPLICABILITY
(42) In the present invention, the joint portions at which the lead tabs of the positive and negative electrodes are joined to the positive- and negative-electrode lead tabs, respectively, by the ultrasonic joining are each covered with the metal plate used as a protective member for the joint portion. This prevents short-circuiting and damage on the constituent member, which are caused due to presence of the surface abnormal portion formed in the joint portion by the ultrasonic joining, so that it is possible to provide a lithium-ion secondary battery excellent in characteristics.
EXPLANATION OF REFERENCE SYMBOLS
(43) 1: Stacked-type lithium-ion secondary battery
(44) 100: Positive electrode
(45) 200: Negative electrode
(46) 205: Negative electrode tab
(47) 210: Joint portion
(48) 300: Separator
(49) 400: Electrode stacked body
(50) 105: Positive electrode tab
(51) 110: Joint portion
(52) 115: Positive electrode lead tab
(53) 120: Metal plate
(54) 140, 140A, 140B: Surface abnormal portion
(55) 205: Negative electrode tab
(56) 215: Negative electrode lead tab
(57) 500: Film-like outer covering
(58) 510: Sealing portion
(59) 520: Gasket portion
(60) 410: Adhesive tape