Secondary battery and manufacturing method thereof
10541404 ยท 2020-01-21
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
H01M10/0587
ELECTRICITY
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
H01M50/538
ELECTRICITY
International classification
H01M10/0585
ELECTRICITY
Abstract
The present invention relates to a secondary battery. The secondary battery comprises an electrode assembly, which comprises: a first electrode in which a first notching part is provided; a second electrode in which a second notching part is provided; a first separator interposed between the first electrode and the second electrode; and a second separator disposed on a lower portion of the second electrode, wherein the electrode assembly is folded in a width direction in a state in which the first electrode, the first separator, the second electrode, and the second separator are sequentially stacked and folded and bent through the first and second notching parts.
Claims
1. A secondary battery comprising an electrode assembly, wherein the electrode assembly comprises: a first electrode in which a first notching part is provided; a second electrode in which a second notching part is provided; a first separator interposed between the first electrode and the second electrode; and a second separator disposed on a lower portion of the second electrode, wherein the electrode assembly is in a state in which the first electrode, the first separator, the second electrode, and the second separator are: (i) sequentially stacked, (ii) folded in a width direction, and (iii) bent in a longitudinal direction perpendicular to the width direction such that a bending angle is produced only through a combination of individual bends of the first electrode and the second electrode at the locations of each of the first and second notching parts, wherein the first or second notching part is lengthily disposed in the width direction of the first or second electrode.
2. The secondary battery of claim 1, wherein each of the first and second notching parts is provided in plurality, and the plurality of first or second notching parts are disposed to be spaced apart from each other in a longitudinal direction of the first or second electrode.
3. The secondary battery of claim 1, wherein each of the first and second notching parts is provided in plurality, and the plurality of first or second notching parts are disposed to be spaced apart from each other in the width direction of the first or second electrode.
4. The secondary battery of claim 1, wherein the first or second notching part is formed in a punching manner.
5. The secondary battery of claim 1, wherein the first or second notching part has one of circular, rectangular, and polygonal shapes.
6. The secondary battery of claim 1, wherein a first electrode tab is disposed on an end of the first electrode, a second electrode tab is disposed on an end of the second electrode, and the first and second electrode tabs face each other.
7. The secondary battery of claim 1, wherein a core is provided in a center of the folded electrode assembly.
8. The secondary battery of claim 7, wherein the core is made of a material having flexibility and insulation.
9. The secondary battery of claim 1, wherein an insulator is disposed on the outside of the folded electrode assembly.
10. A method for manufacturing a secondary battery, the method comprising: a step (a) of processing a plurality of first and second notching parts in a respective surface of first and second electrodes, respectively; a step (b) of interposing a first separator between the first electrode and the second electrode and stacking a second separator on a lower portion of the second electrode to manufacture an electrode sheet; a step (c) of folding the electrode sheet along a width direction to manufacture an electrode assembly; a step (d) of bending the electrode assembly in a longitudinal direction perpendicular to the width direction such that a bending angle is produced only through a combination of individual bends of the first electrode and the second electrode at the locations of each of the plurality of first and second notching parts; and a step (e) of forming an insulation surrounding the electrode assembly on the outside of the electrode assembly, wherein each of the plurality of first and second notching parts is lengthily disposed in the width direction of the first or second electrode.
11. The method of claim 10, wherein, in the step (a), the plurality of first and second notching parts are formed to be spaced apart from each other in at least one of longitudinal and width directions of the first or second electrode.
12. The method of claim 10, wherein, in the step (c), the electrode sheet is folded in the width direction to surround a core having a long bar shape, thereby manufacturing the electrode assembly.
13. The method of claim 10, wherein a first electrode tab is formed on one end of the first electrode, and a second tab is formed on the other end of the second electrode.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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MODE FOR CARRYING OUT THE INVENTION
(11) Hereinafter, an embodiment of the present invention will be described in detail with reference to the accompanying drawings in such a manner that the technical idea of the present invention may easily be carried out by a person with ordinary skill in the art to which the invention pertains. The present invention may, however, be embodied in different forms and should not be construed as limited to the embodiments set forth herein. In the drawings, anything unnecessary for describing the present invention will be omitted for clarity, and also like reference numerals in the drawings denote like elements.
(12) [Electrode Assembly According to the Present Invention]
(13) 1. Stacked Electrode Assembly
(14) As illustrated in
(15) The first electrode 110 comprises a non-coating portion having a long sheet shape and a first electrode active material layer. Here, the first notching part 111 is provided in a surface of the first electrode 110, and the first electrode 110 is folded and bent through the first notching part 111.
(16) For example, referring to
(17) Here, referring to
(18) The first notching part 111 may be formed in the surface of the first electrode 110 in a punching manner. That is, the first notching part 111 formed in the punching manner may be easily processed and reduce an area and strength of the first electrode 110 so that the first electrode 110 is easily bent.
(19) The first notching part 111 may be lengthily disposed in the width direction of the first electrode 110 to more reduce the strength of the first electrode 110 in the width direction, and thus, the first electrode 110 may be more easily folded and bent in a ring shape.
(20) As described above, since the plurality of first notching parts 111 is provided in the surface of the first electrode 110, the first electrode 110 may be easily folded and bent in the horizontal or vertical direction.
(21) The second electrode 120 comprises a non-coating portion having a long sheet shape and a second electrode active material layer. Here, the second notching part 121 is provided in a surface of the second electrode 120, and the second electrode 120 is folded and bent through the second notching part 121.
(22) For example, referring to
(23) Here, referring to
(24) The second notching part 121 may be formed in the surface of the second electrode 120 in a punching manner. That is, the second notching part 121 formed in the punching manner may be easily processed and reduce an area and strength of the second electrode 120 so that the second electrode 120 is easily bent.
(25) The second notching part 121 may be lengthily disposed in the width direction of the second electrode 120 to more reduce the strength of the second electrode 120 in the width direction, and thus, the second electrode 120 may be more easily folded and bent in a ring shape.
(26) As described above, since the plurality of second notching parts 120 is provided in the surface of the second electrode 121, the second electrode 120 may be easily folded and bent in the horizontal or vertical direction.
(27) The first notching part 111 and the second notching part 121 are disposed to correspond to each other. That is, referring to
(28) Each of the first and second notching parts 111 and 121 may have one shape of circular, rectangular, and polygonal shapes. Thus, when each of the first and second electrodes 110 and 120 is folded and bent in various shapes, efficiency may be improved. For example, when each of the first and second notching parts 111 and 121 has the circular shape, each of the first and second notching parts 111 and 121 may be folded in a shape similar to the circular shape and then bent in the circular shape. When each of the first and second notching parts 111 and 121 has the rectangular shape, the folded portion of each of the first and second notching parts 111 and 121 may remain to be bent in the rectangular shape.
(29) As illustrated in
(30) Referring to
(31) The first and second separators 130 and 140 are configured to prevent the first and second electrodes 110 and 120 from being short-circuited. Each of the first and second separators 130 and 140 may have a size equal to or greater than that of each of the first and second electrodes 110 and 120.
(32) Referring to
(33) 2. Folded Electrode Assembly
(34) The electrode assembly 100, in which the first electrode 110, the first separator 130, the second electrode 120, and the second separator 140 are sequentially stacked, may be folded in a roll shape along the width direction and thus provided as the cylindrical electrode assembly 100 as illustrated in
(35) That is, as illustrated in
(36) A core 150 is disposed at a center of the folded electrode assembly 100. The core 150 has a long bar shape and is inserted into the center of the folded electrode assembly 100.
(37) Here, the core 150 may be made of a material having flexibility, insulation, and heat-resistance. That is, the core 150 supports the folded electrode assembly 100 so that the electrode assembly 100 is easily folded up to a predetermined angle, but prevented from excessively folded at an angle that is greater than the predetermined angle. That is, the core 150 may support the folded electrode assembly 100 so that the electrode assembly 100 is not completely folded to prevent the short circuit from occurring.
(38) Thus, the folded electrode assembly 100 may be folded and bent in the all direction and thus deformable in more various shapes. As a result, the electrode assembly 100 may be applied to products manufactured in various shapes because the electrode assembly 100 is folded or bent to match the shapes of the products.
(39) [Folded Secondary Battery]
(40) The folded electrode assembly 100 comprising the above-described constituents may be provided with an insulator 200 on the outer circumferential surface thereof to constitute a secondary battery 10.
(41) That is, the secondary battery 10 according to the present invention comprises the folded electrode assembly 100 and the insulator 200 coated to surround the outer circumferential surface of the folded electrode assembly 100. Thus, the secondary battery 10 that is deformable in various shapes may be provided.
(42) [Method for Manufacturing Folded Secondary Battery]
(43) A method for manufacturing the secondary battery comprising the above-described constituents will be described below.
(44) As illustrated in
(45) As illustrated in
(46) That is, the surface of the first or second electrode 110 or 120 is punched by using a punching device (not shown) to process the first or second notching part 111 or 121. Here, the first or second notching part 111 or 121 is provided in plurality in longitudinal and width directions of the first or second electrode 110 or 120.
(47) Particularly, in the step (a), the first or second notching part 111 or 121 may be lengthily formed in the width direction of the first or second electrode 110 or 120. Thus, the electrode assembly may be more easily folded in a ring shape.
(48) Also, in the step (a), the first and second notching parts 111 and 121 may be disposed to correspond to each other. Thus, the first and second electrodes 110 and 120 may be folded at the same position to allow the electrode assembly to be more easily folded.
(49) Also, in the step (a), the plurality of first or second notching parts 111 or 121 may be formed to be spaced the same interval from each other in the first or second electrode 110 or 120. Thus, the first or second electrode 110 or 120 may be folded and bent in a shape similar to a circular shape.
(50) As illustrated in
(51) As illustrated in
(52) In the step (d), an insulator 200 surrounding the electrode assembly 100 is formed on the outside of the electrode assembly 100. When the process is completed as described above, the secondary battery 10 may be completely manufactured.
(53) Therefore, as illustrated in
(54) Accordingly, the scope of the present invention is defined by the appended claims rather than the foregoing description and the exemplary embodiments described therein. Various modifications made within the meaning of an equivalent of the claims of the invention and within the claims are to be regarded to be in the scope of the present invention.