1. Field of the Invention
The invention relates to technology of a pressure type current interrupting mechanism of a sealed battery.
2. Description of Related Art
A sealed battery is a battery configured with an electrode body that includes a positive electrode and a negative electrode being sealed, together with an electrolyte, inside a battery case. A lithium-ion secondary battery is one well-known example of a sealed battery. Some sealed batteries are provided with a current interrupting mechanism that detects overcharge and interrupts current. One such known current interrupting mechanism is a pressure-type current interrupting mechanism that physically interrupts current when the internal pressure of the battery case becomes higher than a set pressure (for example, Japanese Patent Application Publication No. 2010-212034 (JP 2010-212034 A)).
Here, when disposing of a sealed battery in which a pressure type current interrupting mechanism has been activated, it is necessary to discharge or deactivate the sealed battery. However, originally, with a sealed battery, the positive and negative electrodes are insulated from one another, so the battery is unable to be discharged from an external terminal. Also, with a sealed battery, the battery is sealed, so a battery deactivation solution such as saline solution is unable to be poured in to deactivate the battery (i.e., the battery is unable to be deactivated).
Therefore, with a sealed battery, there is a need to be able to pour a battery deactivation solution into the battery case to eliminate an overcharged state after the pressure type current interrupting mechanism is activated.
The invention thus provides a sealed battery in which a battery deactivation solution is able to be poured into the battery case to eliminate an overcharged state after the pressure type current interrupting mechanism is activated.
That is, a first aspect of the invention relates to a sealed battery that includes a battery case, an external terminal that includes a hollow portion that communicates an inside of the battery case with an outside of the battery case, a collector terminal that is arranged inside the battery case, a protruding member, and a pressure type current interrupting mechanism that is provided between the external terminal and the collector terminal. The pressure type current interrupting mechanism includes an inverted plate. The inverted plate is configured to seal off the inside of the battery case farther to the inside of the battery case than the collector terminal of the battery case. The pressure type current interrupting mechanism is configured to electrically disconnect the external terminal from the collector terminal by the inverted plate deforming according to an increase in pressure inside the battery case. The protruding member is arranged between the external terminal and the inverted plate. The protruding member protrudes toward the inverted plate. The protruding member has a through-hole that is communicated with a hollow portion of the external terminal. The hollow portion of the external terminal is configured to be communicated with the inside of the battery case farther to the inside of the battery case than the collector terminal of the battery case, via the through-hole of the protruding member, by the protruding member piercing the inverted plate when the pressure type current interrupting mechanism is activated.
In the sealed battery described above, the inverted plate may have a thin portion, and the protruding member may pierce the thin portion of the inverted plate when the pressure type current interrupting mechanism is activated.
According to the sealed battery of the invention, it is possible to pour a battery deactivation solution into the battery case to eliminate an overcharged state after the pressure type current interrupting mechanism is activated.
Features, advantages, and technical and industrial significance of exemplary embodiments of the invention will be described below with reference to the accompanying drawings, in which like numerals denote like elements, and wherein:
The structure of a lithium-ion secondary battery 100 will now be described with reference to
The lithium-ion secondary battery 100 is one example embodiment of the sealed battery of the invention. The lithium-ion secondary battery 100 includes a battery case 15, a sealing plate 16, a positive terminal 11, and a negative terminal 12.
The battery case 15 is configured as a cuboid-shaped square case, the top surface of which is open. A flat rolled electrode body 20 and an electrolyte are housed inside the battery case 15. The sealing plate 16 closes off the opening of the battery case 15. The positive terminal 11 and the negative terminal 12 are provided on the sealing plate 16. A portion of both the positive terminal 11 and the negative terminal 12 protrudes on the surface side of the sealing plate 16.
A positive electrode collector terminal 51 and a negative electrode collector terminal 52 that serve as collector terminals and are connected to the positive terminal 11 and the negative terminal 12, respectively, stick into the battery case 15 when the opening thereof has been closed by the sealing plate 16.
The rolled electrode body 20 is formed by rolling a long positive electrode sheet and a long negative electrode sheet together via a long separator sheet, with a width direction as the axial direction. A positive electrode collector 21 is exposed on an end portion on one side of the rolled electrode body 20 in the axial direction, and a negative electrode collector 22 is exposed on an end portion on the other side of the rolled electrode body 20 in the axial direction.
A leg portion 51B extends downward on the positive electrode collector terminal 51. The positive electrode collector 21 is joined to this leg portion 51B. Similarly, a leg portion 52B extends downward on the negative electrode collector terminal 52. The negative electrode collector 22 is joined to this leg portion 52B.
A pressure type current interrupting mechanism 30 is interposed between the positive terminal 11 and the positive electrode collector terminal 51. That is, the positive terminal 11 is electrically connected to the positive electrode collector 21 of the rolled electrode body 20 via the pressure type current interrupting mechanism 30 and the positive electrode collector terminal 51. Also, the negative terminal 12 is electrically connected to the negative electrode collector 22 of the rolled electrode body 20 via the negative electrode collector terminal 52. The pressure type current interrupting mechanism 30 will be described in detail later.
The structure of the pressure type current interrupting mechanism 30 provided between the positive terminal 11 and the positive electrode collector terminal 51 will be described with reference to
The positive terminal 11 includes a connection terminal 31 as an external terminal, a gasket 32, an insulating plate 33, a lead 34, and a protruding member 35.
The connection terminal 31 is formed in a hollow rivet shape, and includes a cylindrical portion 31A, a hollow portion 31B, and a tip end portion 31C. The connection terminal 31 integrally fixes the positive terminal 11, the gasket 32, the sealing plate 16, the insulating plate 33, and the lead 34 together by the cylindrical portion 31A being inserted into a hole formed in each of the gasket 32, the sealing plate 16, the insulating plate 33, and the lead 34, and the tip end portion 31C then being crimped. The connection terminal 31 is electrically connected to the lead 34 by the tip end portion 31C.
The gasket 32 is made of resin and is formed in a downwardly recessed shape. The gasket 32 is interposed between the connection terminal 31 and the sealing plate 16, and electrically insulates the connection terminal 31 from the sealing plate 16.
The insulating plate 33 is made of resin and is formed in an upwardly recessed shape. The insulating plate 33 is interposed between the sealing plate 16 and the lead 34, and electrically insulates the sealing plate 16 from the lead 34.
The lead 34 is made of aluminum and is formed in an upwardly recessed shape. A flat edge portion 34A that extends radially outward is formed on a lower end of a peripheral edge portion of the lead 34.
The protruding member 35 is made of aluminum and includes a main body 35A, a protruding portion 35B, a leg portion 35C, and a through-hole 35D. The protruding member 35 is arranged below the connection terminal 31.
The main body 35A is formed in a downwardly recessed shape. The protruding portion 35B is formed on a substantially center portion of the main body 35A and protrudes downward. The leg portion 35C is formed on an upper end of a peripheral edge portion of the main body 35A and extends radially outward. An upper surface of the leg portion 35C is joined by welding to a lower surface of a recessed portion of the lead 34. The through-hole 35D is a hole that is formed in the protruding portion 35B, and extends through the protruding portion 35B from an upper end to a lower end thereof, and is communicated with the hollow portion 31B of the connection terminal 31.
The positive electrode collector terminal 51 is made of aluminum and includes a main body 51A, a leg portion 51B, a hole portion 51C, a thin portion 51D, and an impressed portion 51E. The main body 51A is formed in a generally rectangular shape when viewed from above. The hole portion 51C that has a generally circular shape is formed in substantially a center portion of the main body 51A. The thin portion 51D that is formed thinner than the main body 51A is formed in a generally circular shape when viewed from above.
The impressed portion 51E is formed on the thin portion 51D. The impressed portion 51E is a generally circular groove that is formed on a lower surface of the thin portion 51D.
The pressure type current interrupting mechanism 30 includes an inverted plate 36, an insulating body 37, and the thin portion 51D of the positive electrode collector terminal 51. The pressure type current interrupting mechanism 30 electrically disconnects the positive terminal 11 from the positive electrode collector terminal 51 inside the battery case 15, by the inverted plate 36 deforming upward according to an increase in pressure inside the battery case 15.
The inverted plate 36 is made of aluminum and is formed in a generally discoid shape. The inverted plate 36 includes a main body 36A, a recessed portion 36B, and a thin portion 36C. The inverted plate 36 is a member that deforms in such a way as to bend in the pressure direction (i.e., upward) when the internal pressure of the battery case 15 becomes equal to or greater than a set pressure.
A peripheral edge portion of the main body 36A is joined by welding to the edge portion 34A of the lead 34, such that the main body 36A and the lead 34 are electrically connected. As a result, the connection terminal 31 and the inverted plate 36 are electrically connected via the lead 34. Also, the inverted plate 36 is interposed between the lead 34 and the insulating body 37.
The recessed portion 36B is formed on a substantially center portion of the main body 36A, with an upper surface side of the recessed portion 36B having a downwardly recessed shape. The thin portion 36C is formed in a circular shape on a substantially center portion of the recessed portion 36B. The thickness of the thin portion 36C is sufficiently less than the thickness of the main body 36A and the recessed portion 36B.
A bottom surface of the recessed portion 36B that is positioned on an outer peripheral side of the thin portion 36C is joined by welding to an upper surface of a portion of the thin portion 51D that is farther to the inside than the impressed portion 51E. As a result, the hole portion 51C of the positive electrode collector terminal 51 is sealed by the inverted plate 36, and the inside of the battery case 15 that is farther to the inside of the battery case 15 than the positive electrode collector terminal 51 of the battery case 15 is sealed off from the outside.
On the other hand, when the inverted plate 36 deforms upward from an increase in pressure inside the battery case 15, the thin portion 51D of the positive electrode collector terminal 51 is pulled upward by this deformation, such that the thin portion 51D fractures at the impressed portion 51E.
The thin portion 36C of the inverted plate 36 is formed substantially the same size as the hole portion 51C of the positive electrode collector terminal 51. The thin portion 36C of the inverted plate 36 is also formed in substantially the same position as (i.e., a position corresponding to) the hole portion 51C of the positive electrode collector terminal 51. The thin portion 36C of the inverted plate 36 is arranged below the protruding portion 35B of the protruding member 35. That is, the protruding portion 35B protrudes toward the thin portion 36C of the inverted plate 36.
The insulating body 37 is made of resin and is formed in a generally discoid shape. The insulating body 37 is interposed between the inverted plate 36 and the positive electrode collector terminal 51, and insulates the inverted plate 36 from the positive electrode collector terminal 51. More specifically, the insulating body 37 insulates a position excluding a welding portion where the recessed portion 36B of the inverted plate 36 is welded to the thin portion 51D of the positive electrode collector terminal 51.
Next, the operation of the pressure type current interrupting mechanism 30 will be described with reference to
As shown in
The upward pressure that is applied to the pressure type current interrupting mechanism 30 in turn causes upward pressure to also be applied to the inverted plate 36 (i.e., in the direction of the arrows in
As shown in
Here, the thin portion 36C of the inverted plate 36 is positioned below the protruding portion 35B of the protruding member 35. Also, when the inverted plate 36 deforms in such a way as to bend upward, the thin portion 36C becomes positioned higher than the lower end of the protruding portion 35B. Therefore, when the inverted plate 36 deforms in such a way as to bend upward, the thin portion 36C of the inverted plate 36 is consequently pierced by the protruding portion 35B of the protruding member 35. The protruding portion 35B of the protruding member 35 penetrates the inverted plate 36 by the thin portion 36C of the inverted plate 36 being pierced by the protruding portion 35B of the protruding member 35 in this way.
Also, the through-hole 35D is communicated with the hollow portion 31B of the connection terminal 31. Therefore, when the protruding portion 35B of the protruding member 35 penetrates the inverted plate 36, the inside of the battery case 15 farther to the inside of the battery case 15 than the positive electrode collector terminal 51 of the battery case 15 (i.e., below the inverted plate 36) consequently becomes communicated with the outside through the through-hole 35D of the protruding member 35 and the hollow portion 31B of the connection terminal 31. That is, after the pressure type current interrupting mechanism 30 is activated, the inside of the battery case 15 is communicated with the outside of the battery case 15 by the protruding member 35.
Next, the effects of the lithium-ion secondary battery 100 will be described. The lithium-ion secondary battery 100 enables a battery deactivation solution to be poured into the battery case to eliminate an overcharged state after the pressure type current interrupting mechanism is activated.
That is, after the pressure type current interrupting mechanism 30 is activated, the protruding portion 35B of the protruding member 35 penetrates the inverted plate 36, such that the inside of the battery case 15 (i.e., below the inverted plate 36) is communicated with the outside through the through-hole 35D of the protruding member 35, and the hollow portion 31B of the connection terminal 31, thereby enabling a battery deactivation solution to be poured into the battery case 15. Pouring a battery deactivation solution into the battery case 15 deactivates the lithium-ion secondary battery 100, thereby enabling the overcharged state to be eliminated.
With the lithium-ion secondary battery 100 in this example embodiment, the pressure type current interrupting mechanism 30 is provided on the positive terminal 11, but the invention is not limited to this. For example, the pressure type current interrupting mechanism 30 may also be provided on the negative terminal 12.
Number | Date | Country | Kind |
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2012-175187 | Aug 2012 | JP | national |
Filing Document | Filing Date | Country | Kind |
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PCT/IB2013/001550 | 7/16/2013 | WO | 00 |