Secondary battery
09761845 · 2017-09-12
Assignee
Inventors
Cpc classification
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
H01M10/0436
ELECTRICITY
H01M50/553
ELECTRICITY
H01M10/0525
ELECTRICITY
International classification
Abstract
Provided are a finishing tape, which can prevent a short circuit while preventing impacts applied to an electrode assembly, and a secondary battery including the same. The secondary battery includes a case having an opening defining an internal space, an electrode assembly in the internal space of the case, and a cap assembly coupled to the opening of the case sealing the case. The electrode assembly may include a finishing tape on an outer surface of the electrode assembly between the case and the electrode assembly. The finishing tape may include a first substrate and a second substrate. The cap assembly may include a cap plate coupled to the opening of the case. The secondary battery may further include an insulation case between the electrode assembly and the cap assembly.
Claims
1. A secondary battery comprising: a case having an opening defining an internal space; a wound electrode assembly in the internal space of the case; a cap assembly coupled to the opening of the case and sealing the case, a termination tape extending across an end of the wound electrode assembly and being located on an outer surface of the electrode assembly between the case and the electrode assembly; and a bottom tape entirely covering a bottom of the electrode assembly and directly fixing the electrode assembly to a bottom of the case, wherein the termination tape and the bottom tape comprises comprise a first substrate and a second substrate.
2. The secondary battery of claim 1, wherein a height of the bottom tape is one third (⅓) or less of a height of the electrode assembly.
3. The secondary battery of claim 1, wherein the second substrate comprises polystyrene or oriented polystyrene.
4. The secondary battery of claim 1, wherein the first substrate comprises polyethylene.
5. The secondary battery of claim 1, wherein the first substrate is at a surface of the bottom tape or the termination tape contacting the outer surface of the electrode assembly.
6. The secondary battery of claim 5, wherein the second substrate is at a surface of the bottom tape or the termination tape contacting the case.
7. The secondary battery of claim 5, further comprising an adhesive layer between the first substrate and the second substrate or on a surface between the first substrate and the electrode assembly contacting the outer surface of the electrode assembly.
8. The secondary battery of claim 7, wherein the adhesive layer comprises an acrylic.
9. The secondary battery of claim 8, wherein the adhesive layer has a thickness of 4 micrometers (μm) or less.
10. The secondary battery of claim 1, wherein the first substrate has a thickness ranging from approximately 5 micrometers (μm) to approximately 7 micrometers (μm).
11. The secondary battery of claim 1, wherein the bottom tape or the termination tape has a thickness of at least 10 micrometers (μm).
12. The secondary battery of claim 1, wherein the electrode assembly comprises a stacked structure comprising a positive electrode plate, a negative electrode plate, and a separator between the positive and negative electrode plates, the electrode assembly being wound in a roll and defining a termination line where the wound electrode assembly terminates, and wherein the termination tape is affixed to the electrode assembly at the termination line.
13. The secondary battery of claim 1, wherein the secondary battery further comprises an insulation case between the electrode assembly and the cap assembly.
14. The secondary battery of claim 1, wherein the termination tape and the bottom tape comprise a material that reacts with an electrolytic solution of the electrode assembly in the case resulting in the termination tape and the bottom tape having adhesive properties fixing the electrode assembly inside the case.
15. The secondary battery of claim 14, wherein the first substrate comprises a base film, and the second substrate comprises a material that reacts with the electrolytic solution of the electrode assembly resulting in the second substrate having adhesive properties.
16. The secondary battery of claim 1, wherein the cap assembly comprises a cap plate coupled to the opening of the case, wherein the cap plate has a first opening accommodating an insulation gasket and the electrode terminal, wherein a bottom surface of the cap plate is coupled to an insulation plate, the insulation plate having a second opening accommodating the electrode terminal, which extends through the first opening of the cap plate, and wherein a bottom surface of the insulation plate is coupled to a terminal plate, the terminal plate having a third opening accommodating the electrode terminal, which extends through the first opening of the cap plate and the second opening of the insulation plate.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The objects, features and advantages of the present invention will be more apparent from the following detailed description in conjunction with the accompanying drawings, in which:
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DETAILED DESCRIPTION
(6) Hereinafter, examples of embodiments of the invention will be described in detail with reference to the accompanying drawings such that they can readily be made and used by those skilled in the art.
(7)
(8) Referring to
(9) In an embodiment, the case 110 is substantially hexahedral shaped. The case 110, according to the embodiment shown in
(10) The electrode assembly 120 according to an embodiment is accommodated in the internal space of the case 110. The electrode assembly 120 according to this embodiment includes a positive electrode plate 121 coated with a positive active material (e.g., lithium cobalt oxide (LiCoO.sub.2)), a negative electrode plate 122 coated with a negative active material (e.g., graphite), and a separator 123 positioned between the positive electrode plate 121 and the negative electrode plate 122 to prevent an electrical short-circuit and to allow the lithium ions to move between the positive and negative electrode plates 121 and 122. The electrode assembly 120 may be formed by winding a stacked structure of the positive electrode plate 121, the separator 123, and the negative electrode plate 122 multiple times in a jelly-roll-like configuration. In this embodiment, the positive electrode plate 121 may be made of a foil material such as an aluminum (Al) foil, the negative electrode plate 122 may be made of a foil material such as a copper (Cu) foil, and the separator 123 may be made of polyethylene (PE) or polypropylene (PP) material.
(11) In an embodiment, an upwardly extending positive electrode lead 125 is connected to the positive electrode plate 121, and an upwardly extending negative electrode lead 124 is connected to the negative electrode plate 122. In this embodiment, the positive electrode lead 125 may be made of aluminum (Al), and the negative electrode lead 124 may be made of nickel (Ni).
(12) As described above, the electrolytic solution may be injected into the case 110. During recharging and discharging of the secondary battery 100, the electrolytic solution serves as a medium for moving the lithium ions generated by an electrochemical reaction taking place between the positive electrode plate 121 and the negative electrode plate 122 within the secondary battery 100.
(13) The finishing tapes 130 and 140 may include a termination tape 130 placed along a termination line 120a at which winding of the electrode assembly 120 is completed, and a bottom tape 140 wrapped up from a bottom of the electrode assembly 120.
(14) The electrode assembly 120 according to this embodiment may be wound in a circular configuration with the separator 123 between the positive electrode plate 121 and the negative electrode plate 122, and the termination tape 130 may be coupled to the electrode assembly 120 along the termination line 120a where winding of the electrode assembly 120 is completed, as shown in
(15) The bottom tape 140, according to embodiments of the present invention, may be configured to entirely wrap up from the bottom of the electrode assembly 120 to be positioned between the electrode assembly 120 and the case 110. The bottom tape 140 according to an embodiment may have a chemical reaction when it contacts the electrolytic solution accommodated in the case 110 such that the bottom tape 140 becomes adhesive, thereby fixing the electrode assembly 120 into the case 110 to prevent the electrode assembly 120 from moving around inside the case 110. In addition, the bottom tape 140 according to these embodiments prevents the bottom of the electrode assembly 120 from making direct contact with the case 110, thereby reducing the risk of an electrical short-circuit occurring in the secondary battery 100.
(16) Further detail of the structure of the bottom tape 140 according to an embodiment is shown in
(17) In the embodiment shown in
(18) According to an embodiment, the second substrate 142 does have a chemical reaction when it comes into contact with the electrolytic solution, modifying the properties of the second substrate 142 to become adhesive. The second substrate 142 according to some embodiments may be made of polystyrene (PS) or oriented PS material. In these embodiments, after the second substrate 142 reacts with the electrolytic solution, the first substrate 141, acting as a base film, may become adhered to the case 110, thereby preventing the electrode assembly 120 from moving around in the case 110. Accordingly, it may be possible to prevent the electrode assembly 120 from being damaged due to external impacts on the case 110 or the secondary battery 100, itself.
(19) In an embodiment, the bottom tape 140 may include a first adhesive layer 143 configured to attach the first substrate 141 to the electrode assembly 120, and a second adhesive layer 144 configured to attach the first substrate 141 and the second substrate 142 to each other. The first and second adhesive layers 143 and 144 may be made of an acryl acrylic material.
(20) Therefore, the secondary battery 100 according to an embodiment of the present invention includes the first substrate 141 that may be made of a polyethylene (PE) material as part of the bottom tape 140 of the finishing tapes 130 and 140, and the second substrate 142 that may be made of a polystyrene (PS) or oriented PS material as part of the bottom tape 140 in contact with the case 110, the structure of the finishing tapes 130 and 140 thereby preventing an electrical short-circuit between the electrode assembly 120 and the case 110 while preventing the electrode assembly 120 from moving around in the case 110.
(21) In an embodiment, where the electrolytic solution is injected into the electrode assembly 120, the first substrate 141 may be positioned to contact the electrode assembly 120, and the second substrate 142 may be positioned to face the inner surface of the case 110. However, the positions of the first substrate 141 and the second substrate 142 may be changed as recognized and appreciated by those skilled in the art.
(22) A thickness of the bottom tape 140 may be 10 micrometers (μm) or greater, according to an embodiment. In embodiments where the thickness of the bottom tape 140 at least 10 μm, the bottom tape 140 may advantageously prevent the electrode assembly 120 from moving within the case 110 by fixing the position of the electrode assembly 120. In addition, the bottom tape 140 according to these embodiments may advantageously prevent an electrical short-circuit between the electrode assembly 120 and the case 110 by securing an appropriate thickness of the bottom tape 140.
(23) In an embodiment, the first substrate 141 of the bottom tape 140 may have a thickness ranging from approximately 5 μm to approximately 7 μm. In embodiments where the thickness of the first substrate 141 is at least 5 μm, reliability in the insulating performance between the electrode assembly 120 and the case 110 using the first substrate 141 can be maintained. In addition, in embodiments where the thickness of the first substrate 141 is 7 μm or less, a capacity of the secondary battery 100 can be advantageously reached by increasing the capacity of the electrode assembly 120.
(24) In an embodiment, each of the first adhesive layer 143 and the second adhesive layer 144 may have a thickness of 4 μs or less. Since the first adhesive layer 143 and the second adhesive layer 144 are coated, according to embodiments of the present invention, lower limits of thicknesses of the first adhesive layer 143 and the second adhesive layer 144 are not separately defined herein. In embodiments where the thickness of each of the first adhesive layer 143 and the second adhesive layer 144 is 4 μm or less, the capacity of the secondary battery 100 can be advantageously reached by increasing the capacity of the electrode assembly 120.
(25) According to an embodiment of the present invention, a height h1 of the bottom tape 140 is one third (⅓) or less of a height h of the electrode assembly 120. In embodiments where the height h1 of the bottom tape 140 is less than one third (⅓) of the height h of the electrode assembly 120, the capacity of the electrode assembly 120 can be advantageously reached, and lithium ion exchange of the electrolytic solution can be advantageously achieved.
(26) The cap assembly 150 according to an embodiment is coupled to a top of the case 110. The cap assembly 150 according to an embodiment includes a cap plate 151, an insulation plate 152, a terminal plate 153, an electrode terminal 154, an insulation gasket 155, and a plug 156.
(27) The cap plate 151, according to an embodiment, is coupled to the case 110 and may be shaped as a plate having long sides and short sides. In an embodiment in which the cap plate 151 is coupled to the case 110, a periphery of the cap plate 151 may be sealed, for example welded, to the case 110. The cap plate 151, according to an embodiment, may have a first opening or electrode terminal opening 151a configured to receive and couple the electrode terminal 154 and insulation gasket 155, and an electrolyte injection opening 151b for injection of the electrolyte solution.
(28) The insulation plate 152 according to an embodiment may be positioned at a lower portion of the cap plate 151. The insulation gasket 155 according to an embodiment is coupled to an insulation plate opening or a second opening 152a of the insulation plate 152. In an embodiment, a lower portion of the electrode terminal 154 penetrates the insulation plate opening or second opening 152a of the insulation plate 152.
(29) The terminal plate 153 according to an embodiment may be positioned at a lower portion of the insulation plate 152. The electrode terminal 154 according to an embodiment is coupled to a terminal plate opening or a third opening 153a of the terminal plate 153, and the electrode terminal 154 may be electrically connected or coupled to the negative electrode lead 124.
(30) A lower portion of the electrode terminal 154 according to an embodiment penetrates through the openings 151a and 152a in the cap plate 151 and the insulation plate 152, respectively, to be electrically connected or coupled to the negative electrode lead 124. The insulation gasket 155 according to these embodiments may be positioned between the electrode terminal 154 and the cap plate 151, thereby preventing the electrode terminal 154 from electrically contacting the cap plate 151.
(31) The plug 156, according to an embodiment, is configured to correspond to an electrolyte injection opening 151b of the cap plate 151. Once the electrolytic solution is injected, the plug 156 may fixedly seal the cap plate 151 at the electrolyte injection opening 151b, thereby preventing the electrolytic solution from leaking.
(32) The insulation case 160 according to an embodiment is coupled to a top of the electrode assembly 120, i.e., the opening 110a of the case 110. In an embodiment, the insulation case 160 may be coupled to the groove 111 of the case 110. Lead passage openings 160a and 160b in the insulation case 160 may allow the negative electrode lead 124 and the positive electrode lead 125 to penetrate the insulation case 160, as illustrated in the embodiment shown in
(33)
(34) Referring to the embodiment shown in
(35) In an embodiment, as described above, in the bottom tape 140, the first substrate 141 is coupled or adhered to the electrode assembly 120, thereby preventing the electrode assembly 120 and the case 110 from being electrically short-circuited.
(36) In another embodiment, as described above, the second substrate 142 is coupled or adhered to the case 110, thereby preventing the electrode assembly 120 from moving around in the case 110.
(37) Although the secondary battery 100 according to exemplary embodiments of the present invention has been described in detail above, it should be understood that many variations and modifications of the basic inventive concept herein described, which may appear to those skilled in the art, will still fall within the spirit and scope of the present invention.