Battery housing structure
10074830 ยท 2018-09-11
Assignee
Inventors
Cpc classification
H01M10/0585
ELECTRICITY
H01M50/528
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
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
H01M10/0463
ELECTRICITY
H01M10/0436
ELECTRICITY
International classification
Abstract
A battery housing structure for housing a battery body that includes a positive electrode layer, a solid electrolyte layer, and a negative electrode layer. A housing member houses the battery body and includes conductors connected to the positive electrode layer and the negative electrode layer, respectively. An interposition member is interposed between the battery body and the housing member.
Claims
1. A battery housing structure comprising: a battery body including a positive electrode layer, a solid electrolyte layer, and a negative electrode layer; a housing member housing the battery body, the housing member including conductors connected to the positive electrode layer and the negative electrode layer, respectively; and a conductive interposition member directly fixed to the housing member and interposed between the battery body and the housing member so as to abut at least a portion of an outer periphery of the battery body and fixedly position the battery body relative to the housing member, wherein (1) when the conductive interposition member is disposed on a side of the positive electrode layer of the battery housing structure, the conductive interposition member has a first thickness smaller than that of a sum of thicknesses of the positive electrode layer and the solid electrolyte layer, and (2) when the conductive interposition member is disposed on a side of the negative electrode layer of the battery housing structure, the conductive interposition member has a second thickness smaller than that of a sum of thicknesses of the negative electrode layer and the solid electrolyte layer.
2. The battery housing structure according to claim 1, wherein the conductive interposition member is arranged so as to surround an outer periphery of the battery body.
3. The battery housing structure according to claim 2, wherein the conductive interposition member comprises a ring-shaped member surrounding the outer periphery of the battery body.
4. The battery housing structure according to claim 1, wherein the conductive interposition member comprises a plurality of members that oppose each other across the battery body.
5. The battery housing structure according to claim 1, wherein the conductive interposition member comprises a part supporting at least one part of the outer periphery of the battery body.
6. The battery housing structure according to claim 5, wherein the conductive interposition member has a recessed part, and the outer periphery of the battery body has a projection part having a shape fitting in the recessed part.
7. The battery housing structure according to claim 1, wherein the housing member comprises an insulating base material having a surface for supporting the battery body, and a lid member bonded to the insulating base material so as to cover the battery body on the surface of the insulating base material.
8. The battery housing structure according to claim 7, further comprising a conductive spacer arranged between the lid member and at least one of the positive electrode layer and the negative electrode layer.
9. The battery housing structure according to claim 7, further comprising a conductive spacer arranged between the insulating base material and at least one of the positive electrode layer and the negative electrode layer.
10. The battery housing structure according to claim 7, further comprising an insulating spacer arranged between the battery body and the lid member.
11. The battery housing structure according to claim 10, wherein the conductive interposition member is fixed to the insulating spacer.
12. The battery housing structure according to claim 7, wherein the conductive interposition member is fixed to the lid member.
13. The battery housing structure according to claim 7, wherein at least one of the insulating base material and the lid member has a recessed part housing at least one part of the battery body.
14. The battery housing structure according to claim 13, wherein the battery body has an outer surface, and the recessed part of at least one of the insulating base material and the lid member has a peripheral wall that surrounds at least one part of the outer surface of the battery body.
15. The battery housing structure according to claim 14, wherein the conductive interposition member is arranged between the peripheral wall and the battery body.
16. The battery housing structure according to claim 7, wherein the positive electrode layer and the negative electrode layer are laminated in an opposed direction of the insulating base material and the lid member.
17. The battery housing structure according to claim 7, wherein the positive electrode layer and the negative electrode layer are laminated in an extending direction of the insulating base material.
Description
BRIEF EXPLANATION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
(21) First, a configuration serving as a premise of the present invention will be described.
(22) As shown in
(23) According to the battery housing structure 500 configured as described above, the battery body 10 is fixed between the insulating base material 21 and the metal lid member 22 with the conductive spacer 30 interposed therebetween. When a vibration, impact, or the like is applied to the battery housing structure 500, and the battery body 10 is displaced in the housing member 20, the conductive spacer 30 is displaced as shown in
(24) In addition, as shown in
(25) According to the battery housing structure 501 configured as described above, the battery body 10 is fixed between the insulating base material 21 and the metal lid member 22 with the insulating spacer 50 and the conductive spacers 31 and 32 interposed therebetween. When a vibration, impact, or the like is applied to the battery housing structure 501, and the battery body 10 is displaced in the housing member 20, the conductive spacer 32 comes off as shown in
(26) A battery housing structure of the present invention has been configured in order to solve the above problems.
(27) Hereinafter, embodiments of the battery housing structures in the present invention will be described.
First Embodiment
(28) As shown in
(29) An all-solid-state secondary battery, serving as the battery body 10, for example, includes the solid electrolyte layer 13 sandwiched between the positive electrode layer 11 and the negative electrode layer 12. The positive electrode layer 11 contains, for example, Li.sub.2FeS.sub.2 or LiCoO.sub.2 as a positive electrode active material, and Li.sub.2SP.sub.2S.sub.5 series composition or Li.sub.3PS.sub.4 as a solid electrolyte. The negative electrode layer 12 contains, for example, graphite as a negative electrode active material, and Li.sub.2SP.sub.2S.sub.5 series composition or Li.sub.3PS.sub.4 as the solid electrolyte. The solid electrolyte layer 13 sandwiched between the positive electrode layer 11 and the negative electrode layer 12 is Li.sub.2SP.sub.2S.sub.5 series composition or Li.sub.3PS.sub.4. Furthermore, for example, a thickness of the positive electrode layer 11 is about 100 m, a thickness of the negative electrode layer 12 is about 200 m, and a thickness of the solid electrolyte layer 13 is about 300 m.
(30) The housing member 20 is composed of the insulating base material 21 and the metal lid member 22. The insulating base material 21 has the surface on which the battery body 10 is placed. The metal lid member 22 is bonded to the insulating base material 21 so as to cover the battery body 10 placed on the surface of the insulating base material 21. The insulating base material 21 has a plate shape, and the metal lid member 22 has the recessed part for housing the battery body 10. The battery body 10 is formed such that the positive electrode layer 11, the solid electrolyte layer 13, and the negative electrode layer 12 are sequentially laminated in the opposed direction of the insulating base material 21 and the metal lid member 22. The conductive spacer 30 composed of a carbon sheet, conductive polymer, or the like is arranged between the outer face of the negative electrode layer 12 of the battery body 10 and the inner face of the metal lid member 22 serving as one part of the housing member. The battery body 10 is arranged in the housing member 20 such that the outer face of the negative electrode layer 12 is connected to the inner surface of the metal lid member 22 through the conductive spacer 30.
(31) The metal lid member 22 is bonded to an outer peripheral surface of the insulating base material 21 through a metalized layer (not shown) so as to cover the battery body 10 placed on the surface of the insulating base material 21. The metalized layer is formed by, for example, printing/coating a metal paste containing a metal such as tungsten (W) as its major component and firing it. The insulating base material 21 is composed of ceramics such as alumina. The metal lid member 22 is composed of metal such as aluminum (Al) or copper (Cu), or alloy such as iron (Fe)-nickel (Ni)-covert (Co) alloy.
(32) Furthermore, the insulating base material 21 is composed of ceramics in this embodiment, but it may be composed of insulating material such as synthetic resin which can resist heating temperature in a reflow furnace. In this case, the insulating base material 21 is preferably composed of synthetic resin whose heat distortion temperature is 270 C. or more.
(33) The positive electrode connector 112 and the negative electrode connector 122 serving as the electrode connectors to connect the inner face to the outer face of the insulating base material 21 are arranged inside the insulating base material 21. The positive electrode connector 112 and the negative electrode connector 122 are formed in a following manner, for example. First, a print pattern serving as a conductor layer of each of the positive electrode connector 112 and the negative electrode connector 122 is formed in a ceramic green sheet as the insulating base material 21 in such a manner that a metal paste containing a metal such as tungsten (W) as its major component is printed/applied onto a surface of the green sheet, or printed/applied into a hole formed in the green sheet. Then, the green sheets having the above print patterns are laminated and fired, whereby the insulating base material 21 having the positive electrode connector 112 and the negative electrode connector 122 therein is produced. Herein, a method of forming the electrode connector is not limited.
(34) The positive electrode layer connection terminal 111 is arranged on the inner faces of the metal lid member 22 and the insulating base material 21. The positive electrode terminal 110 and the negative electrode terminal 120 are arranged on the outer face of the insulating base material 21. The positive electrode connector 112 and the negative electrode connector 122 serving as the electrode connectors to connect the inner face to the outer face of the insulating base material 21 are arranged inside the insulating base material 21. The positive electrode layer 11 of the battery body 10 is connected to the positive electrode terminal 110 through the positive electrode layer connection terminal 111 and the positive electrode connector 112. The negative electrode layer 12 of the battery body 10 is connected to the negative electrode terminal 120 through the metal lid member 22 and the negative electrode connector 122. The positive electrode layer connection terminal 111, the positive electrode terminal 110, and the negative electrode terminal 120 are formed as follows. First, a print pattern serving as the conductor layer of each of the positive electrode layer connection terminal 111, the positive electrode terminal 110, and the negative electrode terminal 120 is formed in the ceramic green sheet as the insulating base material 21 by printing/applying a metal paste containing a metal such as tungsten (W) as its major component. Then, the green sheets having the print patterns are fired, whereby the insulating base material 21 is formed so as to have the positive electrode layer connection terminal 111, the positive electrode terminal 110, and the negative electrode terminal 120 on its outer surfaces. The process of forming the positive electrode layer connection terminal 111, the positive electrode terminal 110, and the negative electrode terminal 120 is performed in the same process of forming the positive electrode connector 112 and the negative electrode connector 122. In order to obtain preferable wettability with a solder, a nickel (Ni) layer and a gold (Au) layer are preferably formed on the surfaces of the positive electrode terminal 110 and the negative electrode terminal 120 by plating or the like.
(35) Furthermore, the housing member 20 includes the positive electrode layer connection terminal 111, the positive electrode connector 112, and the positive electrode terminal 110 as the conductors connected the positive electrode layer 11, and the metal lid member 22, the negative electrode connector 122, and the negative electrode terminal 120 as the conductors connected to the negative electrode layer 12. In addition, the negative electrode layer connection terminal 122 may be provided on the inner face of the metal lid member 22. Furthermore, the positive electrode layer 11 is arranged on a side of the insulating base material 21, but the negative electrode layer 12 may also be arranged.
(36) According to the battery housing structure 1 in the one embodiment of the present invention, as shown in
(37) According to the battery housing structure 1 in the present invention configured as described above, since the interposition member 40 is provided between the battery body 10 and the housing member 20, the battery body 10 can be prevented from being displaced in the housing member 20 even when a vibration, impact, or the like is applied to the battery housing structure 1. As a result, it is possible to assure a preferable electric connection between the electrode layers (the positive electrode layer 11 and the negative electrode layer 12) of the battery body 10 and the conductors (the metal lid member 22 and the positive electrode layer connection terminal 111) in the housing member 20, so that a connection defect or electric short circuit is not caused, and reliability can be enhanced.
(38) In addition, according to the battery housing structure 1 in the present invention, the battery bodies 10 having various shapes and sizes can be positioned in the same housing member 20 by changing a shape or size of the interposition member 40, or by using a plurality of interposition members, or the like.
(39) Furthermore, according to the battery housing structure 1 in the present invention, since the housing member 20 larger than the battery body 10 is used, the battery body 10 can be easily housed in the housing member 20. In addition, since air exists between the outer periphery of the battery body 10 and an inner periphery of the housing member 20, a heat insulting property can be maintained, so that a heat releasing property can be enhanced.
(40) According to the battery housing structure 1 in the present invention, since the interposition member 40 is arranged so as to support or lock the outer periphery of the battery body 10, and the outer periphery of the battery body 10 fits in the ring-shaped interposition member 40, the battery body 10 can be fixedly positioned in the housing member 20.
(41) As shown in
(42) In addition, in terms of reliability of the battery, the battery body 10 is preferably positioned and fixed in the housing member 20 without any gap. In this case, it is preferable that the interposition members 40, 41, and 42 are tightly fitted without any loose area.
(43) Meanwhile, in terms of production easiness of the battery, the battery body 10 is preferably loosely positioned and fixed in the housing member 20. In this case, a dimension of the recessed part of each of the interposition members 40, 41, and 42 is to be larger than a dimension of the projection part of the battery body 10, so that the battery body 10 can be easily arranged inside the interposition members 40, 41, and 42.
(44) As shown in the battery housing structure 1 in the present invention, in the case where the battery body 10 is formed in such a manner that the positive electrode layer 11, the solid electrolyte layer 13, and the negative electrode layer 12 are sequentially laminated in the opposed direction of the insulating base material 21 and the metal lid member 22, the production easiness of the battery is to be prioritized, and it is preferable that the battery body 10 is loosely positioned and fixed in the housing member 20.
(45) Furthermore, according to the battery housing structure 1 in the present invention, since the housing member 20 houses the battery body 10 which does not contain a liquid electrolyte but contains the solid electrolyte, it can resist the heating temperature in the reflow furnace. As a result, the battery housing structure 1 in the present invention can be mounted on a surface of a substrate by reflow soldering.
(46) Furthermore, according to the battery housing structure 1 in the present invention, the positive electrode connector 112 and the negative electrode connector 122 are arranged inside the insulating base material 21, the positive electrode terminal 110 and the negative electrode terminal 120 are arranged on the lower face of the insulating base material 21, and the positive electrode layer 11 and the negative electrode layer 12 of the battery body 10 are connected to the positive electrode terminal 110 and the negative electrode terminal 120 through the positive electrode connector 112 and the negative electrode connector 122, respectively.
(47) In this configuration, since the positive electrode terminal 110 and the negative electrode terminal 120 are arranged on the lower face which is the one outer surface of the insulating base material 21, the reflow soldering can be performed by supplying a soldering material paste in advance to positions on a wiring substrate which are to be connected to the positive electrode terminal 110 and the negative electrode terminal 120.
(48) In this case, since the metalized layer is formed on the outer periphery surface of the insulating base material 21 which is bonded to the metal lid member 22, the insulating base material 21 and the metal lid member 22 are bonded through the metalized layer, and the negative electrode connector 122 arranged inside the insulating base material 21 is connected to the metalized layer, so that the metal lid member 22 is electrically connected to the negative electrode connector 122, the metal lid member 22 is electrically connected to the negative electrode layer 12 of the battery body 10 through the negative electrode connector 122, and thus, the metal lid member 22 serves as a conduction path.
(49) In this configuration, the metal lid member 22 and the insulating base material 21 can be efficiently welded to each other by seam welding by applying a predetermined voltage to between the outer face of the metal lid member 22, and the negative electrode terminal 120 arranged on the outer surface of the insulating base material 21, and highly airtight bonding can be provided. As a result, deterioration due to moisture absorption of the battery body 10 can be prevented, for example.
Second Embodiment
(50) As shown in
Third Embodiment
(51) As shown in
(52) As shown in
Fourth Embodiment
(53) According to the above embodiments, as shown in
Fifth Embodiment
(54) As shown in
(55) In addition, the configuration of the assumed surface mount type battery housing structure 5 shown in FIGS. 13 and 14 is used as a semiconductor device package such as micro electro mechanical systems (MEMS). Furthermore, the stepped surface may be also formed in a direction perpendicular to an extending direction of the stepped surfaces 211 and 212.
(56) Furthermore, while the insulating interposition members 40, and 41 to 44 are provided in the battery housing structures 1 to 5, the conductive interposition members 40 and 41 to 44 may be provided. In the case where the insulating interposition member 40 is provided, a thickness of the interposition member 40 is not limited, but in the case where the conductive interposition member 40 is provided, the thickness of the interposition member 40 is limited in order to prevent electric short circuit caused between the positive electrode layer 11 and the negative electrode layer 12. For example, in the case where the conductive interposition member 40 is provided on a side of the positive electrode layer 11 in the battery housing structures 1 to 3 shown in
(57) According to the battery housing structures 1 to 5 in the above embodiments, the positive electrode layer 11 and the negative electrode layer 12 are laminated in the opposed direction of the insulating base material 21 and the metal lid member 22.
Sixth Embodiment
(58) As shown in
(59) The insulating interposition member 40 is provided between the battery body 10 and the insulating base material 21 serving as the one part of the housing member 20. The interposition member 40 is arranged so as to surround the outer periphery of the battery body 10, and composed of the ring-shaped member. Furthermore, the interposition member 40 is arranged so as to support or lock the outer periphery of the battery body 10, and the outer periphery of the battery body 10 fits in the ring-shape interposition member 40. In addition, the recessed part of the insulating base material 21 has the peripheral wall formed so as to surround the battery body 10, and the interposition member 40 is arranged between the peripheral wall and the battery body 10. The ring-shaped interposition member 40 may have the planar shapes shown in
(60) The two interposition members 41 and 42 having the planar shapes shown in
(61) The insulating base material 21 has the positive electrode connector 112 and the negative electrode connector 122 serving as the electrode connectors to connect the inner face to the outer face of the insulating base material 21. The positive electrode layer connection terminal 111 and the negative electrode layer connection terminal 121 are formed in the inner face of the insulating base material 21. The conductive spacer 31 is arranged between the positive electrode layer 11 and the positive electrode layer connection terminal 111, and the conductive spacer 32 is arranged between the negative electrode layer 12 and the negative electrode layer connection terminal 121. The battery body 10 is arranged on a bottom face of the recessed part of the insulating base material 21 so that the positive electrode layer connection terminal 111 is connected to the positive electrode layer 11 through the conductive spacer 31, and the negative electrode layer connection terminal 121 is connected to the negative electrode layer 12 through the conductive spacer 32. The positive electrode layer 11 is connected to the positive electrode terminal 110 through the conductive spacer 31, the positive electrode layer connection terminal 111, and the positive electrode connector 112. The negative electrode layer 12 is connected to the negative electrode terminal 120 through the conductive spacer 32, the negative electrode layer connection terminal 121, and the negative electrode connector 122.
(62) Another configuration of the battery housing structure 6 is the same as that of the battery housing structure 1 shown in
Seventh Embodiment
(63) The interposition member 40 is arranged on a side of the insulating base material 21 as shown in
Eighth Embodiment
(64) As show in
(65) In addition, in a case where each of the conductive spacers 30, 31, and 32 contains carbon or a carbon sheet in the battery housing structures 1 to 8 in the present invention, battery performance can be prevented from deteriorating because even when each of the conductive spacers 30, 31, and 32 serving as a buffer material is interposed between at least one of the positive electrode layer 11 and the negative electrode layer 12, and the housing member 20, the carbon or the carbon sheet does not react with the electrode material or the like.
(66) In addition, in the battery housing structures 1 to 8 in the present invention, the conductive spacers 30, 31, and 32 are not always indispensable components. When the conductive spacers 30, 31, and 32 are provided, the electric connection can be preferably assured between the battery body 10 and the metal lid member 22 serving as the one part of the housing member 20, or the conductor in the insulating base material 21, so that reliability can be further improve.
(67) Furthermore, in the case where the battery body 10 is formed such that the positive electrode layer 11, the solid electrolyte layer 13, and the negative electrode layer 12 are sequentially laminated in the extending direction of the insulating base material 21 as in the battery housing structures 6 to 8 in the present invention, the reliability of the battery is to be prioritized and the battery body 10 is preferably positioned and fixed in the housing member 20 without any space. In addition, in the case where the conductive spacer is arranged between the battery body 10 and the metal lid member 22, it is to be noted that the conductive spacer is to be arranged so as not to cover both of the positive electrode layer 11 and the negative electrode layer 12.
(68) According to the above embodiments, Li.sub.2FeS.sub.2 or LiCoO.sub.2 is used as the positive electrode active material, Li.sub.2SP.sub.2S.sub.5 series composition or Li.sub.3PS.sub.4 is used as the solid electrolyte, and graphite is used as the negative electrode active material, but following materials may be used.
(69) The positive electrode active material may include a lithium-containing phosphate compound having a nasicon type structure such as Li.sub.3V.sub.2(PO.sub.4).sub.3, a lithium-containing phosphate compound having an olivine type structure such as LiFePO.sub.4 or LiMnPO.sub.4, a layered compound such as LiCoO.sub.2, LiCo.sub.1/3Ni.sub.1/3Mn.sub.1/3O.sub.2, and a lithium-containing compound having a spinel type structures such as LiMn.sub.2O.sub.4, LiNi.sub.0.5Mn.sub.1.5O.sub.4, or Li.sub.4Ti.sub.5O.sub.12.
(70) The negative electrode active material may include a compound having a composition expressed by MOx (M contains at least one kind element selected from the group consisting of Ti, Si, Sn, Cr, Fe, and Mo, and x is a numeric value within a range of 0.9x2.0). In addition, it may be a mixture of two or more active materials each having a composition expressed by MOx in which M is a different element such as TiO.sub.2 or SiO.sub.2. Furthermore, the negative electrode active material may be a graphite-lithium compound, a lithium alloy such as LiAl, and an oxide such as Li.sub.3V.sub.2 (PO.sub.4).sub.3, Li.sub.3Fe.sub.2 (PO.sub.4).sub.3, or Li.sub.4Ti.sub.5O.sub.12.
(71) The solid electrolyte may include a lithium-containing phosphate compound having a nasicon type structure. The lithium-containing phosphate compound having the nasicon type structure is expressed by a chemical formula of Li.sub.xM.sub.y(PO.sub.4).sub.3 (x and y are numerical values within a range of 1x2, and 1y2, and M contains at least one kind element selected from the group consisting of Ti, Ge, Al, Ga, and Zr, in the chemical formula). In this case, one part of P in the chemical formula may be replaced with B, or Si. In addition, it may be a mixture of two or more lithium-containing phosphate compounds having the nasicon type structure having different compositions such as Li.sub.1.5Al.sub.0.5Ge.sub.1.5(PO.sub.4).sub.3 and Li.sub.1.2Al.sub.0.2Ti.sub.1.8(PO.sub.4).sub.3.
(72) Furthermore, the lithium-containing phosphate compound having the nasicon type structure used for the solid electrolyte may include a compound containing a crystal phase of lithium-containing phosphate compound having the nasicon type structure, or glass which precipitates the crystal phase of the lithium-containing phosphate compound having the nasicon type structure through a heat treatment.
(73) Furthermore, the material used for the solid electrolyte can be a material having ion conductivity and having electron conductivity which is vanishingly small, other than the lithium-containing phosphate compound having the nasicon type structure. Such material may include lithium halide, lithium nitride, lithium oxoate, and derivatives of those. Furthermore, it may include a LiPO series compound such as lithium phosphate (Li.sub.3PO.sub.4), LiPON(LiPO.sub.4-xN.sub.x) in which nitrogen is mixed in lithium phosphate, a LiSiO series compound such as Li.sub.4SiO.sub.4, a LiPSiO series compound, a LiVSiO series compound, a compound having a perovskite structure such as La.sub.0.51Li.sub.0.35TiO.sub.2.94, La.sub.0.55Li.sub.0.35TiO.sub.3, or Li.sub.3xLa.sub.2/3-xTiO.sub.3, and a compound having a garnet type structure containing Li, La, and Zr
(74) Next, a description will be given on examples of the battery housing structures in the present invention produced according to the above embodiments. In addition, it is to be noted that the configuration of the battery housing structure in the present invention is not limited to the above embodiments.
EXAMPLE
(75) Hereinafter, examples 1 to 7 produced as the battery housing structures in the present invention will be described.
Example 1
(76) The battery body 10 shown in
(77) The positive electrode material was produced by mixing Li.sub.2FeS.sub.2 and Li.sub.2SP.sub.2S.sub.5 series compound at a mass ratio of 1:1. The negative electrode material was produced by mixing graphite and Li.sub.2SP.sub.2S.sub.5 series compound at a mass ratio of 1:1.
(78) The positive electrode material, the solid electrolyte, and the negative electrode material produced as described above were sequentially laminated, and pressed at a pressure of 3000 kgf/cm.sup.2, whereby a pellet having a three-layer structure was produced. Thus, as shown in
(79) Meanwhile, a metal paste containing a metal of tungsten (W) as its major component was printed/applied to an alumina compact as the ceramic green sheet composing the insulating base material 21 shown in
(80) As the interposition member 40 shown in
(81) Furthermore, the conductive spacer 30 was arranged on the negative electrode layer 12 of the battery body 10. As the conductive spacer 30, a carbon sheet having a square shape of 2.8 mm2.8 mm in planar view and having a thickness of 70 m was used.
(82) Then, the metallize layer was formed on the outer peripheral surface of the insulating base material 21, and the metal lid member 22 composed of iron-nickel-covert alloy was arranged so as to cover the battery body 10 placed on the surface of the insulating base material 21. Thus, the metal lid member 22 and the insulating base material 21 were bonded by seam welding by applying a predetermined voltage between the outer surface of the metal lid member 22 and the negative electrode terminal 120 arranged on the outer surface of the insulating base material 21. Thus, the surface mount type battery housing structure 1 having the rectangular shape of 5 mm5 mm in planar view was produced.
Example 2
(83) The surface mount type battery housing structure 1 was produced similarly to the example 1 except that the ring-shaped interposition member 40 having the planar shape shown in
Example 3
(84) The surface mount type battery housing structure 1 was produced similarly to the example 1 except that the interposition member 40 was composed of the two interposition members 41 and 42 having the planar shape shown in
Example 4
(85) The surface mount type battery housing structure 1 was produced similarly to the example 1 except that the interposition member 40 was composed of the two interposition members 41 and 42 having the planar shape shown in
Example 5
(86) The surface mount type battery housing structure 1 was produced similarly to the example 1 except that the shape of the battery body 10 was changed to a column shape having a diameter of 2.55 mm, and a height of 0.7 mm, and the hole formed in the center of the interposition member 40 was changed to a circular shape having a diameter of 2.6 mm.
Example 6
(87) The surface mount type battery housing structure 1 was produced similarly to the example 5 except that the hole formed in the center of the interposition member 40 was changed as shown in
Example 7
(88) The surface mount type battery housing structure 1 was produced similarly to the example 5 except that the interposition member 40 was composed of the two interposition members 41 and 42 having a planar shape shown in
(89) In addition, as for the interposition members 40, 41, and 42 shown in
(90) A free-fall drop test was performed for the battery housing structures 1 produced in the examples 1 to 7, and for the battery housing structure 500 (in
(91) It is to be considered that the embodiments and examples disclosed in the above are illustrative and not restrictive in every respect. It is intended that the scope of the present invention is shown not by the above embodiments and the examples but by claims, and includes all modifications and variations within the meaning and the range equivalent to those of claims.
(92) It is possible to provide a mount type battery housing structure capable of preferably assuring an electric connection between an electrode layer of a battery body and a conductor of a housing member, and housing the battery body of a solid battery with high reliability.
REFERENCE SIGNS
(93) 1, 2, 3, 4, 5, 6, 7, 8: Battery housing structure, 10: Battery body, 11: Positive electrode layer, 12: Negative electrode layer, 13: Solid electrolyte layer, 20: Housing member, 21: Insulating base material, 22: Metal lid member, 30, 31, 32: Conductive spacer, 40, 41, 42, 43, 44: Interposition member, 50: Insulating spacer, 110: Positive electrode terminal, 111: Positive electrode layer connection terminal, 112: Positive electrode connector, 120: Negative electrode terminal, 121: Negative electrode layer connection terminal, 122: Negative electrode connector