Secondary battery and method for manufacturing the same
11031661 · 2021-06-08
Assignee
Inventors
- Sang Hun Kim (Daejeon, KR)
- Yong Kim (Daejeon, KR)
- Yong Su Choi (Daejeon, KR)
- Hyung Kyun Yu (Daejeon, KR)
- Soo Ji Hwang (Daejeon, KR)
- Na Yoon Kim (Daejeon, KR)
- Min Hyeong Kang (Daejeon, KR)
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
H01M50/553
ELECTRICITY
International classification
H01M50/172
ELECTRICITY
Abstract
A secondary battery is disclosed. According to the present invention, when an internal pressure exceeding a certain level occurs, current may be interrupted to stop an operation of the secondary battery, thereby preventing the secondary battery from being ignited or exploded by the increase in internal pressure of the secondary battery and improving safety of the secondary battery.
Claims
1. A secondary battery comprising: an electrode assembly comprising an electrode tab; an outer case accommodating the electrode assembly; and an electrode lead electrically connected to the electrode tab, wherein the electrode lead comprises: an outer protrusion protruding to the outside of the outer case in a first direction; an inner connection part disposed in the outer case, an insulation film provided on an area of the inner connection part facing the outer case; and first and second notch parts disposed on the inner connection part and having a relatively thin thickness when compared to that of a remaining area of the electrode lead, the first and second notch parts being spaced apart from each other, the first notch part being disposed between the insulation film and the outer protrusion, the first notch part having a thickness different than that of the second notch part, wherein each of the first and second notch parts includes an indentation extending into a thickness of the inner connection part, each indentation being a groove extending in a second direction that is transverse to the first direction that is directed from the electrode assembly toward the outer protrusion, the inner connection part comprises: a tab bonding area disposed on one side of the first notch part and bonded to the electrode tab; and a tab non-bonding area disposed on another side of the first notch part and integrally connected to the outer protrusion, wherein the inner connection part is bent by using the first and second notch parts as respective axes so that the tab bonding area and the tab non-bonding area face each other.
2. The secondary battery of claim 1, wherein the bent directions of the inner connection part by using the first notch part and the second notch part as the axes are opposite to each other.
3. The secondary battery of claim 1, wherein the electrode lead has a straight-line (I) shape when the inner connection part is unfolded by using the first and second notch parts as the respective axes.
4. The secondary battery of claim 1, wherein each of the first and second notch parts has a shape that is recessed into only one surface of the inner connection part.
5. The secondary battery of claim 1, wherein each of the first and second notch parts has a shape that is recessed into more than one surface of the inner connection part.
6. The secondary battery of claim 1, wherein each of the first and second notch parts has a thickness that varies according to a position thereof.
7. The secondary battery of claim 1, wherein the first notch part is disposed relatively close to the electrode assembly when compared to the second notch part, and the first notch part has a thickness less than that of the second notch part.
8. The secondary battery of claim 1, wherein the first notch part is disposed relatively close to the electrode assembly when compared to the second notch part, and the second notch part has a thickness less than that of the first notch part.
9. The secondary battery of claim 1, wherein each of the first and second notch parts has a thickness that gradually decreases in both directions, in which the notch part is disposed, with respect to a predetermined point.
10. The secondary battery of claim 1, wherein each of the first and second notch parts has a thickness that gradually increases in both directions, in which the notch part is disposed, with respect to a predetermined point.
11. The secondary battery of claim 1, further comprising a conductive material having electrical conductivity, which is applied to at least a portion of a surface of each of the first and second notch parts.
12. The secondary battery of claim 11, wherein the conductive material has rupture strength less than that of the electrode lead.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
MODE FOR CARRYING OUT THE INVENTION
(7) Hereinafter, a structure of a secondary battery according to the present invention will be described with reference to the accompanying drawings.
(8)
(9)
(10) Referring to
(11) Continuously, Referring to
(12) Referring to
(13) As illustrated in in
(14) According to an embodiment of the present invention, since the notch part is formed on the electrode lead, when an internal pressure of the secondary battery increases, the electrode lead may be cut with respect to the notch part. In this case, the electrode assembly (or the electrode tab) and the external device such as the electronic device, which are electrically connected to each other through the electrode lead, may be electrically interrupted to stop an operation of the secondary battery. Thus, the secondary battery may be prevented from increasing in internal pressure to prevent the secondary battery from being ignited or exploded.
(15) Continuously, referring to
(16) As illustrated in
(17) The electrode lead 40 of the secondary battery 10 according to an embodiment of the present invention may have a bent structure. That is, the electrode lead 40 may be bent with respect to the notch part 48.
(18) According to an embodiment of the present invention, when the notch part is formed in a direction crossing a direction that is directed from the electrode assembly toward the outer protrusion, and also, the electrode lead is bent with respect to the plurality of notch parts, if the internal pressure of the secondary battery increases, the electrode may be more quickly cut, and also, utilization of the internal space of the secondary battery may increase.
(19) The electrode lead 40 may have a straight-line (I) shape when the inner connection part 44 is unfolded by using the plurality of notch parts 48a and 48b axes. That is, as illustrated in
(20) When the plurality of notch parts 48a and 48b are provided, the inner connection part 44 may be bent in a zigzag shape. That is, as illustrated in
(21) When the notch part is provided in plurality, the notch parts may have different thicknesses. For example, the notch part (the first notch part 48a in the drawings) that is relatively close to the electrode tab 32 may have a thickness less than that of the notch part (the second notch part 48b in the drawings) that is relatively far from the electrode tab 32.
(22) Basically, when a short-circuit phenomenon or the like occurs in the secondary battery, the electrode assembly accommodated in the secondary battery increases in temperature, and thus, a gas is generated in the secondary battery, thereby increasing in internal pressure of the secondary battery. Thus, in order to quickly cut the electrode lead, it may be necessary to rupture the notch part, which is the closest to the electrode tab, of the plurality of notch parts. This is done because the area on which the internal pressure of the secondary battery most suddenly and most abruptly changes is the area around the electrode assembly.
(23) Thus, in case in which the notch part that is relatively close to the electrode tab may have a thickness less than that of the notch part that is relatively far from the electrode tab, when the internal pressure of the secondary battery increases, the notch part that is relatively close to the electrode tab may be quickly ruptured. Since the notch part that is relatively far from the electrode tab is also ruptured after the notch part that is relatively close to the electrode tab is ruptured, abnormal current flowing through the electrode lead may be reliably interrupted.
(24) However, unlike this, the notch part (the second notch part 48b in the drawings) that is relatively far from the electrode tab 32 may have a thickness less than that of the notch part (the first notch part 48a in the drawings) that is relatively close to the electrode tab 32.
(25) In this case, when the internal pressure increases, the rupture of the notch part that is relatively far from the electrode tab and the rupture of the notch part that is relatively close to the electrode tab may occur at the same time or at a similar time, and also, a phenomenon in which the notch part (particularly, the notch part that is relatively close to the electrode tab) is easily ruptured even when the internal pressure of the secondary battery is within a normal range may be prevented from occurring.
(26)
(27) Also, when the electrode lead is bent with respect to the notch part like an embodiment of the present invention, an area occupied by the electrode lead may be minimized in the internal space of the secondary battery to improve utilization of the internal space of the secondary battery.
(28) In this specification, the term ‘bent’ may be replaced with a term ‘folded’. Here, ‘bent’ may mean that the electrode lead is folded with respect to the notch part. Also, ‘folded’ may mean that the electrode lead is folded at an angle of about 180 degrees with respect to the notch part so that the tab bonding area and the tab non-bonding area face each other. That is, ‘bent’ may be a concept that includes ‘folded’.
(29) Referring to
(30)
(31) As illustrated in
(32)
(33) As illustrated in
(34) For example, as illustrated in
(35) As illustrated in
(36) As described above, according to an embodiment of the present invention, since the notch part is formed on the electrode lead, when the internal pressure of the secondary battery increases, the cutting of the electrode lead may be efficiently performed to improve the safety of the secondary battery. However, since the electrode lead has a relatively thin thickness at the notch part, electrical resistance may relatively increase. This may mean that power consumption is relatively large in the electrode lead, particularly the notch part, and also, a temperature in the notch part is relatively high.
(37) Thus, according to another embodiment of the present invention, a conductive material having electrical conductivity may be applied to at least a portion of a surface of the notch part. For example, the conductive material may be applied to the surface of the notch part so that the electrode lead has a uniform thickness on the whole. Since the conductive material is applied to at least a portion of the surface of the notch part, the problem in which the electrical resistance increases in the notch part may be solved. However, even in this case, since it is still necessary to effectively rupture the notch part when the internal pressure of the secondary battery increases, the conductive material may have relatively weak strength when compared to that of the material forming the electrode lead. The rupture strength of the conductive material according to another embodiment of the present invention may be relatively less than that of the electrode lead.
(38) While the embodiments of the present invention have been described with reference to the specific embodiments, it will be apparent to those skilled in the art that various changes and modifications may be made without departing from the spirit and scope of the invention as defined in the following claims.