The present invention relates to a battery assembly formed by stacking a plurality of unit cells.
Conventionally, various types of secondary batteries formed by stacking a plurality of battery cells in series have been proposed, for example, in Japanese Patent Laying-Open Nos. 2000-311718, 2004-171954 and 2005-011658. Such a secondary battery has collector electrodes provided at opposite ends, and a terminal to be connected to a wire is provided at the collector electrode.
In order to connect a plurality of secondary batteries structured as described above in parallel with each other, a method may be possible to stack the plurality of secondary batteries with an insulating film interposed, so that terminals are connected in parallel with each other.
When the secondary batteries are stacked in the manner mentioned above, however, the terminals of adjacent secondary batteries come close to each other with the insulating film posed therebetween, and hence, the terminals may possibly come into contact with each other. Further, as the insulating film is provided between each of the secondary batteries, the battery assembly becomes thick, requiring much space to install the battery assembly. When a plurality of secondary batteries are connected in parallel with each other, it becomes necessary to connect wires to a plurality of terminals, and when each terminal is to be connected to a wire, routing of wires becomes very complicated.
The present invention was made in view of the foregoing and its object is to provide a battery assembly formed by connecting a plurality of secondary batteries in parallel with each other, ensuring sufficient distance between each of the terminals, allowing formation of a compact battery assembly itself, and allowing connection of wires to the terminals in a simple manner.
According to an aspect, the present invention provides a battery assembly formed by stacking a plurality of secondary batteries formed by stacking unit cells having positive and negative electrodes with a conductive layer interposed, including: first and second secondary batteries stacked next to each other, among the plurality of secondary batteries; a plate-shaped first collector electrode provided between the first secondary battery and the second secondary battery, for electrically connecting the first secondary battery to the second secondary battery; a second collector electrode of a polarity different from the first collector electrode, provided on a surface opposite to a surface of the first secondary battery on which the first collector electrode is formed; a first terminal portion provided at the first collector electrode and to be connected to a first conductive member; and a second terminal portion provided at the second collector electrode and to be connected to a second conductive member. The first terminal portion and the second terminal portion are arranged staggered in a direction of main surfaces of the first and second collector electrodes. Preferably, the battery assembly includes a plurality of the first and second secondary batteries stacked one after another; a plurality of the first and second collector electrodes; and a plurality of the first and second terminal portions. The first terminal portions overlap with each other in a direction of stacking of the first and second secondary batteries, and the second terminal portions overlap with each other in the direction of stacking. Preferably, the battery assembly further includes: a first cutout portion formed at the first collector electrode; a second cutout portion formed at the second collector electrode; a first connecting portion formed at the first terminal portion and to be connected to the first conductive member; and a second connecting portion formed at the second terminal portion and to be connected to the second conductive member. The first cutout portion is positioned in the direction of stacking of the second connecting portion and the second cutout portion is positioned in the direction of stacking of the first connecting portion.
In the battery assembly in accordance with the present invention, secondary batteries adjacent to each other in the stacking direction share the first collector electrode. Therefore, total number of terminals can be reduced. Further, as the first terminal portion and the second terminal portion are staggered, wires can be routed easily by connecting the first wire to a portion of the first terminal portion not overlapped with the second terminal portion and by connecting the second wire to a portion of the second terminal portion not overlapping with the first terminal portion. Further, unit cells adjacent to each other in the stacking direction share the collector electrode, and therefore, thickness of the battery assembly can be reduced. Further, as the secondary battery is positioned between each of the terminal portions, contact of terminal portions with each other can be prevented.
A battery assembly 100 in accordance with Embodiment 1 will be described with reference to
Referring to
Electrode sheet 25 includes an electrolyte layer 27 formed to have a plate-shape, an anode active material layer 26 formed on one main surface (first main surface) 27a of electrolyte layer 27, and a cathode active material layer 28 formed on the other main surface (second main surface) 27b of electrolyte layer 27. Electrode sheets 25 are stacked in series with each other, with a collector foil 29 interposed.
A plurality of bipolar secondary batteries 4 are stacked one after another, with negative collector electrode 21 or positive collector electrode 23 interposed therebetween. Negative and positive collector electrodes 21 and 23 are provided between bipolar secondary batteries 4 and at opposite ends of battery assembly 100.
On a main surface of negative collector electrode 21 provided at one end of battery assembly 100, anode active material layer 26 of bipolar secondary battery 4 neighboring in the stacking direction is formed, and on the main surface of positive collector electrode 23 formed on the other end, cathode active material layer 28 of bipolar secondary battery 4 neighboring in the stacking direction is formed.
Referring to
A neighboring bipolar secondary battery 4 with positive collector electrode 23 interposed is arranged to have cathode active material layers (cathodes) 28 shown in
Specifically, battery assembly 100 is formed by connecting a plurality of bipolar secondary batteries 4 parallel with each other by negative and positive collector electrodes 21 and 23. Further, bipolar secondary batteries 4 positioned on opposite sides of positive collector electrode 23 or negative collector electrode 21 in the stacking direction share the corresponding positive collector electrode 23 or negative collector electrode 21. Therefore, as compared with a conventional battery assembly formed by stacking a plurality of bipolar secondary batteries one after another with an insulating film interposed, the insulating film becomes unnecessary, and as the neighboring secondary batteries share the collector electrode, battery assembly 100 itself can be made compact.
Referring to
Further, positive collector electrode 23 also has a terminal portion (second terminal portion) T2 to which a wire (second conducive member) U2 is connected. Wires U1 and U2 are not limited to lead wires and they may be any conductive member such as a metal pin. Terminal portion T2 is formed to protrude outward from an end surface of each bipolar battery 4. At terminal portion T2, a connection hole b1 is formed, to which wire U2 is connected. Between terminal portions T1 and T2, bipolar secondary battery 4 is positioned, and therefore, contact between terminal portions T1 and T2 is prevented.
Further, terminal portions T1 and T2 are arranged staggered in the direction of the main surface of positive collector electrode 23 or negative collector electrode 21.
Therefore, connection hole a1 can be formed at a position of terminal portion T1 away from terminal portion T2, and connection hole b1 can be formed at a position of terminal portion T2 away from terminal portion T1. Consequently, it becomes possible to connect wires U1 and U2 easily to connection holes a1 and a2.
Terminal portions T1 are arranged to overlap in the stacking direction, and connection holes a1 formed in terminal portions T1 are also aligned in the stacking direction. Therefore, by inserting wire U1 through each of connection holes a1 arranged in the stacking direction, all negative collector electrodes 21 can be connected easily.
Further, terminal portions T2 are also arranged to overlap in the stacking direction, and connection holes b1 are also aligned in the stacking direction. Therefore, by inserting wire U2 through each of connection holes b1 arranged in the stacking direction, all positive collector electrodes 23 can be connected easily.
Referring to
Of negative collector electrode 21, at a portion adjacent to terminal portion T1, a cutout portion 40 is formed. In the direction of stacking of cutout portion 40, terminal portion T2 of positive collector electrode 23 is positioned. Of positive collector electrode 23, at a portion adjacent to terminal portion T2, a cutout portion 41 is formed. In the direction of stacking of cutout portion 41, terminal portion T1 of negative collector electrode 21 is positioned. Therefore, even when terminal portion T1 or T2 should bend or curve, contact between terminal portions T1 and T2 can be prevented.
Terminal portion (first terminal portion) T1 is formed integrally with negative collector electrode 21, and terminal portion T2 is formed integrally with positive collector electrode 23.
Terminal portions T1 and T2 are formed integrally with collector electrodes 21 and 23, respectively. Therefore, as compared with formation of terminal portions T1 and T2 separate from negative collector electrode 21 and positive collector electrode 23 and connecting these by solder, higher conductivity can be ensured, and the number of components can be reduced.
Referring to
Next, each of the members forming bipolar secondary battery 4 will be described in detail. Collector foil 29 is formed, for example, of aluminum. Then, even when the active material layer provided on a surface of collector foil 29 contains solid polymer electrolyte, sufficient mechanical strength of collector foil 29 can be attained. Collector foil 29 may be formed of copper, titanium, nickel, stainless steel (SUS), an alloy of these, or metal other than aluminum having its surface coated with aluminum.
Cathode active material layer 28 includes a cathode active material layer and a solid polymer electrolyte. Cathode active material layer 28 may contain a supporting electrolyte (lithium salt) for improving ion conductivity, a conduction assistant for improving electron conductivity, NMP (N-methyl-2-pyrolidone) as a solvent for adjusting slurry viscosity, AIBN (azobisisobutyronitrile) as a polymerization initiator or the like.
As the cathode active material, composite oxide of lithium and transition metal generally used in a lithium ion secondary battery may be used. Examples of the cathode active material may include Li/Co based composite oxide such as LiCoO2, Li/Ni based composite oxide such as LiNiO2, Li/Mn based composite oxide such as spinel LiMn2O4, and Li/Fe based composite material such as LiFeO2. Other examples are sulfated compound or phosphate compound of lithium and transition metal such as LiFePO4; sulfide or oxide of transition metal such as V2O5, MnO2, TiS2, MoS2 and MoO3; PbO2, AgO, NiOOH and the like.
The solid polymer electrolyte is not specifically limited and it may be any ion-conducting polymer. For example, polyethylene oxide (PEO), polypropylene oxide (PPO) or copolymer of these may be available. Such a polyalkylene oxide based polymer easily dissolves lithium salt such as LiBF4, LiPF6, LiN(SO2CF3)2, or LiN(SO2C2F5)2. The solid polymer electrolyte is included in at least one of cathode active material layer 28 and anode active material layer 26. More preferably, the solid polymer electrolyte is included both in cathode active material layer 28 and anode active material layer 26.
As the supporting electrolyte, Li(C2F5SO2)2N, LiBF4, LiPF6, LiN(SO2C2F5)2 or a mixture of these may be used. As the electron conduction assistant, acetylene black, carbon black, graphite or the like may be used.
Anode active material layer 26 includes an anode active material layer and a solid polymer electrolyte. Anode active material layer 26 may contain a supporting electrolyte (lithium salt) for improving ion conductivity, a conduction assistant for improving electron conductivity, NMP (N-methyl-2-pyrolidone) as a solvent for adjusting slurry viscosity, AIBN (azobisisobutyronitrile) as a polymerization initiator or the like.
As the anode active material layer, a material generally used in a lithium ion secondary battery may be used. If a solid electrolyte is used, however, it is preferred to use a composite oxide of carbon or lithium and metal oxide or metal, as the anode active material layer. More preferably, the anode active material layer is formed of a composite oxide of carbon or lithium and transition metal. Further preferably, the transition metal is titanium. Specifically, it is more preferred that the anode active material layer is of a composite oxide of titanium and lithium or a titanium oxide.
As the solid electrolyte forming electrolyte layer 27, by way of example, a solid polymer electrolyte such as polyethylene oxide (PEO), polypropylene oxide (PPO) or copolymer of these may be used. The solid electrolyte contains supporting electrolyte (lithium salt) for ensuring ion conductivity. As the supporting salt, LiBF4, LiPF6, LiN(SO2CF3)2, LiN(O2C2F5)2 or a mixture of these may be used.
xSrTiO3•(1-x)LiTaO3
Specific examples of materials for cathode active material layer 28, anode active material layer 26 and electrolyte layer 27 are listed in Tables 1 to 3. Table 1 shows specific examples when electrolyte layer 27 is of an organic solid electrolyte, Table 2 shows specific examples when electrolyte layer 27 is of an inorganic solid electrolyte, and Table 3 shows specific examples when electrolyte layer 27 is of a gel electrolyte.
It most cases, the electrolyte used in a secondary battery is liquid. By way of example, in a lead storage battery, dilute sulfuric acid is used as the electrolytic solution. Positive collector electrode 23 and negative collector electrode 21 have some degree of strength. In the present embodiment, each of the plurality of bipolar secondary batteries 4 is positioned between positive collector electrode 23 and negative collector electrode 21. When positive collector electrode 23 and negative collector electrode 21 are positioned between bipolar secondary batteries 4, a space between positive collector electrode 23 and bipolar secondary battery 4 or a space between negative collector electrode 21 and bipolar secondary battery 4 can be eliminated. Thus, strength of battery assembly 100 can be ensured.
Referring to
In a passenger space (vehicle interior) 50 of vehicle 1, a front sheet 12 and a rear sheet 6 are arranged. In the passenger space 50, battery pack 120 including battery assembly 100 shown in
Although the present invention has been described and illustrated in detail, it is clearly understood that the same is by way of illustration and example only and is not to be taken by way of limitation, the spirit and scope of the present invention being limited only by the terms of the appended claims.
The present invention is suitable for a battery assembly formed by stacking a plurality of secondary batteries formed by stacking unit cells having positive and negative electrodes with a conductive film interposed therebetween.
Number | Date | Country | Kind |
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2006-196978 | Jul 2006 | JP | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/JP2007/063192 | 6/25/2007 | WO | 00 | 12/29/2008 |