Secondary cell
09887395 ยท 2018-02-06
Assignee
Inventors
Cpc classification
H01M50/24
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
H01M50/213
ELECTRICITY
H01M50/138
ELECTRICITY
International classification
Abstract
This secondary battery includes a tubular battery body and a cover member containing the battery body. The cover member includes a tubular body at least covering a side surface of the battery body and a bottom which at least part of a bottom surface of the battery body contacts. The bottom includes an expansion expanded in a direction away from the bottom surface of the battery body, and an end surface of the expansion contacts the insulating plate. The area of the end surface of the expansion is smaller than the area of the bottom surface of the battery body.
Claims
1. A secondary battery comprising: a metal container; a plurality of insulating sheets stacked on a bottom surface of the container; and a battery cell placed on the plurality of insulating sheets, wherein at least one of the following relationships is satisfied:
Aa>Ab
Aa>Ac where Aa denotes a projection area of the battery cell projected on the bottom surface of the container, Ab denotes a contact area Ab between the battery cell and the plurality of insulating sheets, and Ac denotes a contact area between the plurality of insulating sheets in the projection area.
2. The secondary battery according to claim 1, wherein the battery cell includes a tubular battery body and a cover member containing the battery body; the cover member includes a tubular body at least covering a side surface of the battery body and a bottom which at least part of a bottom surface of the battery body contacts; and the bottom contacts, among the plurality of insulating sheets, an insulating sheet in an uppermost layer separated for each battery cell.
3. The secondary battery according to claim 2, wherein the bottom includes an expansion expanded in a direction away from the bottom surface of the battery body, and an end surface of the expansion contacts the insulating sheet in the uppermost layer; and an area of the end surface of the expansion is smaller than an area of the bottom surface of the battery body.
4. The secondary battery according to claim 3, wherein at least one step is formed in a surface of the expansion facing the bottom surface of the battery body.
5. The secondary battery according to claim 4, wherein the step extends in a direction in which the expansion is expanded.
6. The secondary battery according to claim 4, wherein the step extends in a direction opposite to the direction in which the expansion is expanded.
7. The secondary battery according to claim 3, wherein at least one protrusion is formed in a surface of the expansion facing the bottom surface of the battery body.
8. The secondary battery according to claim 7, wherein the protrusion protrudes in a direction in which the expansion is expanded.
9. The secondary battery according to claim 7, wherein the protrusion protrudes in a direction opposite to the direction in which the expansion is expanded.
10. The secondary battery according to claim 3, wherein the cover member includes a joint portion at which the tubular body and the bottom are joined together, the joint portion extending in an axial direction of the battery body away from the bottom surface of the battery body, and wherein the end surface of the joint portion is present between a position corresponding to the bottom surface of the battery body and a position corresponding to the end surface of the expansion.
11. The secondary battery according to claim 10, wherein an outer shape of the insulating sheet in the uppermost layer which contacts the end surface of the expansion substantially matches an outer shape of the end surface of the joint portion.
12. The secondary battery according to claim 3, comprising, in addition to the insulating sheet in the uppermost layer which contacts the end surface of the expansion, a tubular insulating member covering the tubular body of the cover member and an outer circumferential portion of the insulating sheet.
13. The secondary battery according to claim 12, wherein a lower end of the tubular insulating member is bent inward at a lower position of the insulating sheet in the uppermost layer, and the inner diameter at the lower end of the tubular insulating member is smaller than an outer diameter of the insulating sheet.
14. The secondary battery according to claim 2, wherein the insulating sheet in the uppermost layer has one or more through holes.
15. The secondary battery according to claim 2, wherein the insulating sheet in the uppermost layer is formed by arranging a plurality of band shaped sheets each having a width smaller than an outer diameter of the battery cell.
16. The secondary battery according to claim 2, wherein at least one insulating sheet which is present below the insulating sheet in the uppermost layer, among the plurality of insulating sheets, has a plurality of through holes.
17. The secondary battery according to claim 2, wherein at least one insulating sheet which is present below the insulating sheet in the uppermost layer, among the plurality of insulating sheets, is formed by arranging a plurality of band shaped sheets each having a width smaller than an outer diameter of the battery cell.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
(30) Hereinafter, an embodiment of a secondary battery according to the present invention, e.g., applied to a NaS battery will be described with reference to
(31) Firstly, as shown in
(32) Specifically, in the embodiment of the present invention, two or more module strings 18 are provided. Each of the module strings 18 is formed by connecting a predetermined number of (five, in the example of
(33) Next, structure of the module 16, in particular, structure of the housing 14 will be described with reference to
(34) The housing 14 is a heat insulating container. For example, the housing 14 includes a base frame 21 made of steel material, a box body 22 having an opening at its upper surface, and placed fixedly on the base frame 21, and a lid body 24 for closing the opening of the box body 22.
(35) For example, the box body 22 is made of plate material of stainless steel. The box body 22 is formed in a box shape having a hollow area. The hollow area is a hermetical space which is sealed hermetically. The hollow area is connectable to the external space by a vacuum valve (not shown). A vacuum heat insulating board 26 formed by solidifying glass fiber into a plate shape using adhesive is porous and loaded in the hollow area to achieve vacuum heat insulating structure of the box body 22.
(36) In the same manner as in the case of the box body 22, the lid body 24 is formed of a plate member of, e.g., stainless steel. A heat insulating material layer for achieving the required minimum heat insulating property is placed on an inner surface (lower surface) of the lid body 24, and at least two stacked detachable heat insulating plates 30 are filled (stacked) in a hollow area 28 to provide air heat insulating structure only for the lid body 24 (upper surface). In the structure, the amount of heat radiation from the upper surface of the housing 14 can be controlled.
(37) Though not shown, for example, components such as a buffer, a heater, a heat equalizing plate, a mica sheet (insulating sheet) for electrical insulation are stacked together, and placed on a bottom surface 22a of the box body 22. The heater is also placed on a side surface of the box body 22.
(38) One battery assembly 42 formed by a large number of battery cells 12 is placed upright in the internal space 40 of the housing 14, the internal space 40 being formed by the box body 22 and the lid body 24. In order to suppress damages, abnormal heating of the battery cells 12, leakage of active material, etc., though not shown, as fire extinction sand, silica sand is filled in a gap between the box body 22 and the battery assembly 42.
(39) As shown in
(40) Further, as shown in
(41) The battery body 48 has a tubular shape (e.g., cylindrical shape). A positive terminal 52 is attached to a peripheral portion of an upper surface 48a, and a negative terminal 54 is attached to a central portion of the upper surface 48a.
(42) The cover member 50 includes a tubular body 56 covering at least a side surface of the battery body 48, a bottom 58 which at least a part of the bottom surface 48b of the battery body 48 contacts, and a joint portion 60 where the tubular body 56 and the bottom 58 are joined each other, e.g., by welding. The joint portion 60 extends in an axial direction of the battery body 48 away from the bottom surface 48b of the battery body 48.
(43) The upper end 56a of the tubular body 56 is bent inward, and the battery body 48 is vertically sandwiched between this upper end 56a and the bottom 58. That is, the cover member 50 has a function of suppressing expansion of the battery body 48 in the axial direction.
(44) Then, as shown in
(45) The expansion 62 includes at least one protrusion 66 on its surface facing the bottom surface 48b of the battery body 48. In an example of
(46) An example of the dimensional relationship among the bottom 58, the expansion 62, and the protrusion 66 of the cover member 50 will be described. The outer diameter Lae of the bottom 58 shown in
(47) As shown in
(48) Further, in the embodiment of the present invention, the insulating plate 68 (insulating sheet) made of, e.g., mica which contacts the end surface of the expansion 62 (end surface of the protrusion 66 in the example of
(49) The lower end 70a of the tubular insulating member 70 is bent inward at a lower position of the insulating plate 68, and the inner diameter at the lower end 70a of the tubular insulating member 70 is smaller than the outer diameter of the insulating plate 68. In the structure, the lower end 70a of the insulating member 70 is sandwiched between the insulating plate 68 and the mica sheet 47. It is possible to prevent the tubular insulating member 70 from being detached from the battery cell 12, or from unwinding. It is a matter of course that the lower end 70a of the insulating member 70 also contributes to the increase in the insulation resistance.
(50) The advantages of providing the protrusion 66 in the expansion 62 will be described with reference to
(51) For example, it is assumed that n modules 16 each, e.g., having electric power output of A (kW) are connected in series to form the secondary battery system 10 having the electric power output of nA (kW). In this case, each of the frames 20 (see
(52) Further, in the case of constructing the secondary battery system 10 in the electric power scale which is larger than that of the case described above, it is required to increase the number n of the modules 16. For example, in the case where the number n=80, the insulation resistance R for each unit of the module 16 is required to have 0.4 M80=32 M or more.
(53) In this regard, it may be considered to increase the number of mica sheets 47 provided between the battery assembly 42 and the box body 22, and increase the thickness of the mica sheet 47. However, in this case, the size of the container, in particular, the height of the housing 14, is increased, and cracks tend to occur easily in the mica sheet 47 during operation undesirably.
(54) In an attempt to address the problem, in the embodiment of the present invention, at least one protrusion 66 is provided in the surface of the expansion 62 facing the bottom surface 48b of the battery body 48. In the structure, the portion of the expansion 62 which contacts the insulating plate 68 is not the entire end surface of the expansion 62 (surface facing the insulating plate 68), but a small area, i.e., the end surface of the protrusion 66 (surface facing the insulating plate 68). In the case where no protrusion 66 is provided in the expansion 62 (reference example), as shown in
(55) Both of the embodiment of the present invention and the reference example satisfy the following relationship:
Aa>Ab
(56) where Aa denotes a projection area of the battery body 48 projected on the bottom surface 22a of the box body 22 (equal to the area of the bottom surface of the battery body 48) and Ab denotes the contact area between the cover member 50 of the battery cell 12 and the insulating plate 68.
(57) Upon comparing the contact resistance (electrical resistance) between the expansion 62 and the insulating plate 68 in the embodiment of the present invention with the reference example, it is notable that there is an increase in the contact resistance resulting from the decrease in the contact area, and a decrease in the contact resistance resulting from the increase in the load per unit area. However, since the increase in the contact resistance resulting from the decrease in the contact area is larger than the decrease in the contact resistance resulting from the increase in the load, all things considered, the above described contact resistance in the embodiment of the present invention is larger than that of the reference example.
(58) Members for electrical insulation provided between the battery assembly 42 and the bottom surface 22a of the box body 22 include the insulating plate 68 which contacts the expansion 62 of the battery cell 12, and the mica sheet 47. The insulation resistances of the insulating plate 68 and the mica sheet 47 can be regarded to have fixed values, respectively, regardless of the extent of the contact area between the expansion 62 and the insulating plate 68.
(59) As described above, since the contact resistance of each battery cell 12 is large in comparison with the case of the reference example, in the case where the contact resistance is considered over the entire module 16, the insulation resistance of the module 16 containing the battery cells 12 according to the embodiment of the present invention is large in comparison with the insulation resistance of the module 16 containing the battery cells of the reference example.
(60) That is, in the embodiment of the present invention, it is possible to improve the insulation resistance of each battery cell 12, increase the insulation resistance of each module 16 without increasing the number and the thickness of insulating sheets such as the mica sheets 47, and increase the number of modules 16 connected to the secondary battery system 10.
(61) Further, the insulating plate 68 directly contacts the end surface of the protrusion 66 provided in the expansion 62, and the expansion 62 functions as a buffer member (suspension member). Therefore, even if vibrations occur in the frame 20 or the box body 22, almost all the vibrations are cancelled at the expansion 62, and are not directly transmitted to the battery cell 12. Consequently, improvement in the reliability of the secondary battery such as the battery cell 12 is achieved.
(62) Since the contact area between the expansion 62 and the insulating plate 68 becomes small, the stress applied to the insulating plate 68 is increased. However, the stress is dispersed in the insulating plate 68. The stress is applied to the mica sheet 47, etc. at the lower position not as the concentrated load, but as the distributed load. Therefore, breakage (cracks) does not occur easily in the mica sheet 47.
(63) Next, several modified examples of the secondary battery according to the embodiment of the present invention, in particular, modified examples of the bottom 58 of the cover member 50, will be described with reference to
(64) As shown in
(65) As shown in
(66) As shown in
(67) As shown in
(68) As shown in
(69) Next, modified examples of the secondary battery according to the embodiment of the present invention will be described with reference to
(70) As shown in
(71) Specifically, no protrusion 66 (see
(72) As shown in
(73) Also in this case, the following size relationship is satisfied:
Aa>Ab
(74) where Aa denotes a projection area of the battery body 48 projected on the bottom surface 22a of the box body 22 and Ab denotes the contact area between the cover member 50 of the battery cell 12 and the insulating plate 68.
(75) As shown in
(76) Specifically, the insulating plate 68 has a large number of through holes 74 forming a matrix pattern and has a grid pattern as a whole. In an example of
(77) As shown in
(78) Specifically, the insulating plate 68 is formed by arranging a plurality of band shaped sheets 76 each having a width Wa which is smaller than the outer diameter Da of the battery body 48. In the example of
(79) Also in the second modified example and the third modified example, the following size relationship is satisfied:
Aa>Ab
(80) where Aa denotes a projection area of the battery body 48 projected on the bottom surface 22a of the box body 22 and Ab denotes the contact area between the cover member 50 of the battery cell 12 and the insulating plate 68.
(81) As shown in
(82) Specifically, no protrusion 66 is present in the expansion 62 of the cover member 50, and has the same structure as the cover member 50 (see
(83) Among the plurality of insulating sheets, as shown in
(84) In this case, the following relationship is satisfied:
Aa>Ac
(85) where Aa denotes a projection area of the battery body 48 projected on the bottom surface 22a of the box body 22 and Ac denotes the contact area between the insulating plate 68 and the mica sheet 47 in the projection area. In this case, the contact resistance between the insulating plate 68 and the mica sheet 47 is increased by the decrease in the contact area between the insulating plate 68 and the mica sheet 47. Therefore, the contact resistance of each battery cell 12 is increased. Consequently, it is possible to improve the insulation resistance of each battery cell 12, and increase the insulation resistance of each module 16 without increasing the number and the thickness of the insulating members such as the mica sheets 47, and increase the number of modules 16 connected to the secondary battery system 10.
(86) As shown in
(87) Specifically, the mica sheet 47 is formed by arranging a plurality of band shaped sheets 80 each having a width Wb which is smaller than the outer diameter Da of the battery body 48. In the example of
(88) Also in the fifth modified example, the following size relationship is satisfied:
Aa>Ac
(89) where Aa denotes a projection area of the battery body 48 projected on the bottom surface 22a of the box body 22 and Ac denotes the contact area between the insulating sheets in the projection area.
(90) In the above first to fifth modified examples, although the present invention has been described mainly in connection with the case where no protrusion 66 is present in the expansion 62 of the cover member 50, it is a matter of course that the present invention can be adopted suitably in the cover member 50 where the protrusion 66 is formed in the expansion 62. In this case, further increase in the insulation resistance can be achieved.
(91) It is a matter of course that the secondary battery according to the present invention is not limited to the embodiment described above, and various structures can be adopted without deviating from the gist of the present invention.