This invention relates to an arrangement of voltage detection terminals attached to collectors of a bipolar battery.
In a bipolar battery in which a plurality of bipolar electrodes, each having a positive electrode active material layer formed on one surface of a collector and a negative electrode active material layer formed on another surface of the collector, are laminated via an electrolyte layer. Unit cells constituting such a bipolar battery may have a fluctuation in its performance such as an internal resistance, capacity, and so on due to factors arising during manufacture. The unit cells are connected in series for use in the bipolar battery. However, when variation exists in a voltage of each unit cell, deterioration advances from a unit cell having a high voltage, and as a result, a life of the entire bipolar battery shortens.
To extend the life of the entire bipolar battery, therefore, the voltage of each unit cell is preferably measured, whereupon the voltage of each unit cell is adjusted on the basis of the measured voltages.
JP 2005-235428A, published by the Japan Patent Office in 2005, teaches that in order to measure the voltage of each unit cell of a bipolar battery, a voltage detection terminal is to be attached to the collector of each unit cell so that a voltage can be extracted from each unit cell and measured.
In this bipolar battery according to the prior art, the collector has a rectangular planar shape when seen from a lamination direction. The voltage detection terminals are attached in positions corresponding to an identical side when seen from the lamination direction.
When the voltage detection terminals are arranged in this manner, unevenness is likely to occur in a voltage distribution within an identical plane of the layer-form unit cells during discharge for the purpose of voltage regulation using the voltage detection terminal. As a result, variation may occur in a state of charge among different sites of an identical unit cell following completion of the discharge.
It is therefore an object of this invention to equalize a state of charge within an identical plane of a unit cell.
In order to achieve the above object, a bipolar battery according to this invention is constructed by laminating a plurality of bipolar electrodes, each comprising a layer-form collector, a positive electrode active material layer disposed on one surface of the collector, and a negative electrode active material layer disposed on another surface of the collector, via an electrolyte layer. The collector comprises a voltage detection terminal attached to a peripheral edge portion of the collector.
Providing that a straight line connecting a centroid of a collector and a voltage detection terminal attached thereto is a first straight line, the voltage detection terminal and a voltage detection terminal of an adjacent collector are disposed on opposite sides of a second straight line that passes through the centroid and is orthogonal to the first straight line.
The details as well as other features and advantages of this invention are set forth in the remainder of the specification and are shown in the accompanying drawings. It should be noted that thicknesses and shapes of respective layers constituting the bipolar battery might be exaggerated in the accompanying drawings in order to facilitate description.
Referring to
The collector 4 is formed from a conductive polymer material or a nonconductive polymer material to which a conductive filler is added. The collector 4 is not limited to resin and may be formed from a metal. A positive electrode active material layer 5 and a negative electrode active material layer 6 are formed respectively on a vertical lower surface and a vertical upper surface of the collector 4 when the collector 4 is laid horizontally, as shown in the figure. The collector 4 and the positive electrode active material layer 5 and negative electrode active material layer 6 formed on either side thereof together constitute a bipolar electrode 3. The bipolar battery 2 therefore comprises four bipolar electrodes 3.
The negative electrode active material layer 6 is set to have a larger surface area than the positive electrode active material layer 5. The single bipolar battery 2 is formed by laminating the bipolar electrodes 3 in a vertical direction via electrolyte layers 7 and electrically connecting the laminated bipolar electrodes 3 in series.
Here, two bipolar electrodes 3 adjacent to each other in the vertical direction in the figure will be referred to for descriptive purposes as an upper stage bipolar electrode and a lower stage bipolar electrode. The upper stage bipolar electrode and the lower stage bipolar electrode are disposed such that the negative electrode active material layer 6 positioned on an upper surface of the lower stage bipolar electrode and the positive electrode active material layer 5 positioned on a lower surface of the upper stage bipolar electrode face each other via the electrolyte layer 7.
The respective surface areas of the positive electrode active material layer 5 and the negative electrode active material layer 6 are set to be smaller than a horizontal direction surface area of the collector 4. In other words, the positive electrode active material layer 5 and the negative electrode active material layer 6 are not provided in a peripheral edge region of the collector 4 when seen from the lamination direction. A seal member 11 having a predetermined width is sandwiched between the peripheral edge regions of two collectors 4 adjacent to each other in the lamination direction. The seal member 11 insulates the positive electrode active material layer 5 and the negative electrode active material layer 6 from each other and secures a predetermined space 8 between the positive electrode active material layer 5 and the negative electrode active material layer 6 opposing each other in the vertical direction of the figure. The seal member 11 is disposed on an outer side of a horizontal direction outer periphery of the positive electrode active material layer 5 and the negative electrode active material layer 6.
The electrolyte layer 7 is constituted by a liquid-form or gel-form electrolyte 9 charged into the space 8.
The separator 12 is formed from a porous membrane through which the electrolyte 9 can pass, and provided in the space 8 in which the electrolyte 9 is charged. The separator 12 serves to prevent electric contact between the two opposing electrode active material layers 5 and 6.
A high current tab 16 is connected to the negative electrode active material layer 6 on an uppermost stage and a high current tab 17 is connected to the positive electrode active material layer 5 on a lowermost stage. In the charged bipolar battery 2, the high current tab 16 functions as a positive terminal and the high current tab 17 functions as a negative terminal.
A single unit cell 15 is constituted by the electrolyte layer 7 and the positive electrode active material layer 5 and negative electrode active material layer 6 on either side of the electrolyte layer 7. The bipolar battery 2 is constructed by connecting three unit cells 15 in series.
Referring to
When voltages allocated to the three unit cells 15a, 15b, 15c connected in series are not equal, a desired battery voltage cannot be obtained from the bipolar battery 2 as a whole. Therefore, to measure the voltages of the respective unit cells 15a, 15b, 15c in the bipolar battery 2, a voltage detection terminal 21a, a voltage detection terminal 21b, a voltage detection terminal 21c, and a voltage detection terminal 21d are attached to a first collector 4a, a second collector 4b, a third collector 4c, and a fourth collector 4d, respectively. Thus, the respective voltages of the unit cells 15a, 15b, 15c are extracted to the outside. Further, wires 22a to 22d are connected to the voltage detection terminals 21a to 21d. The wires 22a to 22d are connected to a control circuit 25. To alleviate a voltage imbalance among the three unit cells 15a, 15b, 15c, the control circuit 25 causes a unit cell having a high voltage to perform discharge on the basis of the detected voltages of the unit cells 15a, 15b, 15c. It should be noted that this discharge is performed using the voltage detection terminals 21a to 21d.
More specifically, voltage measurement and discharge are performed on the first unit cell 15a using the voltage detection terminals 21a and 21b. Voltage measurement and discharge are performed on the second unit cell 15b using the voltage detection terminals 21b and 21c. Voltage measurement and discharge are performed on the third unit cell 15c using the voltage detection terminals 21c and 21d.
Referring to
The voltage detection terminals 21a, 21b, 21c, and 21d are attached to the four collectors 4a to 4d using a method such as adhesion. It should be noted that in order to detect the voltages of N unit cells, N+1 voltage detection terminals are required.
Here, the four collectors 4a to 4d will be referred to as the first collector 4a, the second collector 4b, the third collector 4c, and the fourth collector 4d.
Referring to
Referring to
Here, resistors R1 are connected in series to the five small battery elements B1. The resistor R1 signifies a battery direct current resistance. Resistors R2 at the top and bottom of the figure signify in-plane resistance elements. The pair of voltage detection terminals 21a and 21b serving as discharge terminals of the first unit cell 15a are both positioned on a right end of the figure. During discharge of the unit cell 15, the voltage detection terminals 21a and 21b are connected via a discharge resistor R4.
In the figure, of five discharge paths passing through the respective small battery elements B1, a path of a discharge current I1 that passes through the small battery element B1 positioned closest to the pair of voltage detection terminals 21a and 21b has a shortest length and a smallest resistance value. The lengths of the discharge current paths passing through the small battery elements B1, and the resistance values of the paths, increase steadily toward the small battery element B1 positioned furthest from the pair of voltage detection terminals 21a and 21b. Accordingly, the path of a discharge current I5 that passes through the small battery element B1 positioned furthest from the pair of voltage detection terminals 21a and 21b has the greatest length and the largest resistance value of the five paths.
Referring to
Referring to
Hence, in the bipolar battery 2 according to the prior art, voltage unevenness occurs within the plane of the unit cell 15a during a period up to the completion of discharge. Unevenness in the state of charge within an identical plane of the unit cell 15, which should be even, indicates that a location having a higher voltage than the measured voltage of the unit cell 15a may exist in the same unit cell 15a. When such a site exists, depending on the manner in which the battery is used, the battery may be locally overcharged without realizing. This applies likewise to the unit cells 15b and 15c.
Referring again to
Referring to
Referring to
Referring to
Referring to
To summarize the above, in relation to a certain collector 4 and the voltage detection terminal 21 attached thereto, the voltage detection terminal 21 of the adjacent collector 4 is disposed on an opposite side of a second straight line D2, which passes through a centroid O of the collector 4 and is orthogonal to a first straight line D1 that connects the voltage detection terminal 21 to the centroid O of the collector 4. In other words, the two voltage detection terminals 21 attached to adjacent collectors 4 are disposed at an angular interval of at least 90 degrees.
Having satisfied this condition, the voltage detection terminals 21a to 21d are even more preferably arranged as follows.
The planar shape of the collector 4 is divided into four regions by two straight lines passing through the centroid O of the collector 4, and the voltage detection terminal 21 is attached to a side positioned in one of two non-adjacent regions. The voltage detection terminal 21 of the collector 4 that is adjacent in the lamination direction, meanwhile, is attached to a side positioned in the other of the two non-adjacent regions. The two straight lines are preferably constituted by two diagonal lines passing through an apex of the collector 4 having a rectangular planar shape.
More specifically, referring to
Referring to
Referring to
According to research conducted by the inventors, the voltage detection terminals 21a to 21d of the adjacent collectors 4a to 4d are preferably disposed at angular intervals between 150 and 210 degrees. Alternatively, the two non-adjacent regions in which the voltage detection terminals 21a to 21d are provided are preferably regions in which an intersection angle of the two straight lines L1a (L1b, L1c, L1d) and L2a (L2b, L2c, L2d) serving as the diagonal lines of the rectangle is an acute angle.
The reason for this is that when the voltage detection terminals 21a to 21d are attached in regions where the intersection angle of the two straight lines L1a (L1b, L1e, L1d) and L2a (L2b, L2c, L2d) serving as the diagonal lines of the rectangle is an acute angle, adjacent voltage detection terminals 21a to 21d can be disposed further from each other than when the voltage detection terminals 21a to 21d are attached in regions where the intersection angle of the two straight lines L1a (L1b, L1c, L1d) and L2a (L2b, L2c, L2d) is an obtuse angle.
Next, referring to
As described above in relation to
As shown in
The voltage detection terminal 21a and the voltage detection terminal 21b are positioned on a left end and a right end of the figure, respectively. Therefore, the lengths of the discharge current paths passing through the five small battery elements B1 are substantially equal. Resistance on all of the five discharge paths between the voltage detection terminals 21a and 21b in the figure is constituted by a single resistor R1 and six resistors R2. In other words, the five discharge paths have substantially equal resistance values.
As a result, magnitudes of discharge currents I1 to I5 passing respectively through the five small battery elements B1 are also substantially equal. Therefore, discharge is performed evenly within the plane of the first unit cell 15a from all of the five small battery elements B1, regardless of the positions thereof.
Referring to
As described above, in the bipolar battery 2, the resistance on the discharge path extending from one voltage detection terminal 21a (21b, 21c) of the unit cell 15a (15b, 15c) to the other voltage detection terminal 21b (21c, 21d) is uniform on all paths. Accordingly, the current density is equal in all locations of the plane of the unit cell 15a (15b, 15c), and therefore the state of charge within the unit cell 15a (15b, 15c) can be shifted in parallel at an identical level. Further, the voltage following completion of the discharge, detected by the pair of voltage detection terminals 21a and 21b (21b and 21c or 21c and 21d), is identical in all parts of the unit cell 15a (15b, 15c), and therefore voltage detection can be performed with a high degree of precision.
The bipolar battery 2 according to this embodiment uses the collectors 4a to 4d having a rectangular planar shape, but this invention may also be applied to a bipolar battery that uses collectors having a polygonal shape other than a rectangular shape.
Further, the planar shape of the collector is not limited to a polygonal shape having an apex, and may be any shape, such as a circular shape or an elliptical shape.
Referring to
Likewise in this embodiment, similarly to the first embodiment, the bipolar battery 2 is constituted by the four collectors 4aa, 4ba, 4ca, and 4da. In contrast to the first embodiment, however, the collectors 4aa to 4da have a planar shape that is not symmetrical and does not comprise an apex.
The voltage detection terminal 21a, the voltage detection terminal 21b, the voltage detection terminal 21c, and the voltage detection terminal 21d are attached to the first collector 4aa, the second collector 4ba, the third collector 4ca, and the fourth collector 4da, respectively.
Referring to
Referring to
Referring to
Referring to
Likewise in this embodiment, the voltage detection terminals 21 attached respectively to two adjacent collectors 4 are disposed at an angular interval of at least 90 degrees.
Having satisfied this condition, the voltage detection terminals 21a to 21d are even more preferably arranged as follows.
The planar shape of the collector 4 is divided into four regions by two straight lines passing through the centroid O of the collector 4, and the voltage detection terminal 21 is disposed on a side positioned in one of two non-adjacent regions.
More specifically, referring to
Referring to
Referring to
The voltage detection terminal 21a is preferably attached in a region where the intersection angle between the two straight lines L1a and L2a of the first collector 4a is an acute angle. This applied likewise to the voltage detection terminal 21b. Even more preferably, the voltage detection terminals 21 of two adjacent collectors 4 are disposed at an angular interval between 150 and 210 degrees.
According to this embodiment, as described above, this invention can also be applied to the collectors 4aa to 4da having a planar shape that is not symmetrical and does not comprise an apex, and in so doing, an imbalance in the state of charge within an identical plane of the unit cell can be eliminated.
Referring to
Likewise in this embodiment, similarly to the first embodiment, the bipolar battery 2 is constituted by the four collectors 4a, 4b, 4c, and 4d.
In the bipolar battery 2 according to this embodiment, conductors 41 to 44 having high electric conductivity and a predetermined width are adhered in advance to the sides of the collectors 4a to 4d to which the voltage detection terminals 21a to 21d are attached.
Referring to
Referring to
Referring to
Referring to
Referring to
In
During discharge from the first unit cell 15a, a constant voltage line is parallel to a straight line connecting the pair of voltage detection terminals 21a and 21b. Following completion of the discharge, the voltage distribution within the first unit cell 15a taken along an orthogonal line to the constant voltage line, or in other words an XV-XV line in
Referring to
The predetermined position B shown in
However, a voltage distribution in which the voltage reaches a minimum in the predetermined position B is not desirable. Therefore, in the bipolar battery 2 according to the third embodiment of this invention, as shown in
As a result, in the first unit cell 15a, for example, the entire first conductor 41 disposed on the side 33a to which the first collector 4a is attached functions as a voltage detection terminal. Further, the entire second conductor 42 disposed on the side 31b of the second collector 4b functions as a voltage detection terminal.
Referring to
To summarize the above, when a collector made of resin or the like, which has much higher electric resistance than a metallic collector, is used, the voltage distribution along an orthogonal orientation to a straight line connecting the pair of voltage detection terminals of the unit cell takes a minimum value on the straight line connecting the pair of voltage detection terminals. As a result, the voltage distribution within the plane of the unit cell is not uniform. In the bipolar battery 2 according to this embodiment, the conductors 41 to 44 are adhered to the sides 33a, 31b, 33c, and 31d on which the voltage detection terminals 21a to 21d are provided. The conductors 41 to 44 make the voltage distribution in the orthogonal direction to the straight line connecting the pair of voltage detection terminals 21a and 21b (21b and 21c, 21c and 21d) equipotent. Therefore, even when the bipolar battery 2 is constructed using the collectors 4a to 4d made of resin or the like, which have much higher electric resistance than metallic collectors, the respective current densities within the unit cells 15a to 15c can be made even.
The contents of Tokugan 2010-172270, with a filing date of Jul. 30, 2010 in Japan, are hereby incorporated by reference.
Although the invention has been described above with reference to certain embodiments, the invention is not limited to the embodiments described above. Modifications and variations of the embodiments described above will occur to those skilled in the art, within the scope of the claims.
For example, in the third embodiment, the conductors 41 to 44 do not necessarily have to be disposed over the entire length of the sides 33a, 31b, 33c, and 31d to which the voltage detection terminals 21a to 21d are attached, and may be adhered to only a part of the sides 33a, 31b, 33c, and 31d centering on the voltage detection terminals 21a to 21d.
As described above, with the bipolar battery according to this invention, a voltage distribution within a layer-form unit cell is equalized during discharge for the purpose of voltage adjustment. Hence, a favorable effect can be expected in terms of extending the life of a bipolar battery installed as a power supply in an electric vehicle, for example.
Number | Date | Country | Kind |
---|---|---|---|
2010-172270 | Jul 2010 | JP | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
---|---|---|---|---|
PCT/JP2011/066070 | 7/14/2011 | WO | 00 | 1/29/2013 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2012/014693 | 2/2/2012 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
6103416 | Bäuerlein et al. | Aug 2000 | A |
6689176 | Jen et al. | Feb 2004 | B2 |
6919144 | Miyazaki et al. | Jul 2005 | B2 |
7179565 | Okohi et al. | Feb 2007 | B2 |
7368203 | Iwanaga et al. | May 2008 | B2 |
7851088 | Takahashi et al. | Dec 2010 | B2 |
20010036573 | Jen et al. | Nov 2001 | A1 |
20030104279 | Miyazaki et al. | Jun 2003 | A1 |
20040038123 | Hisamitsu et al. | Feb 2004 | A1 |
20040048158 | Okochi et al. | Mar 2004 | A1 |
20040072080 | Iwanaga et al. | Apr 2004 | A1 |
20040229123 | Takahashi et al. | Nov 2004 | A1 |
20050066520 | Shu et al. | Mar 2005 | A1 |
20050141170 | Honda et al. | Jun 2005 | A1 |
20100028767 | Inose et al. | Feb 2010 | A1 |
20100178553 | Murata | Jul 2010 | A1 |
20110014520 | Ueda | Jan 2011 | A1 |
20130157092 | Suzuki et al. | Jun 2013 | A1 |
Number | Date | Country |
---|---|---|
1 418 638 | May 2004 | EP |
2000-040530 | Feb 2000 | JP |
2004-87238 | Mar 2004 | JP |
2004-319362 | Nov 2004 | JP |
2005-011658 | Jan 2005 | JP |
2005-174844 | Jun 2005 | JP |
2005-235428 | Sep 2005 | JP |
2005-310667 | Nov 2005 | JP |
2006-127857 | May 2006 | JP |
2008-192377 | Aug 2008 | JP |
2009-158281 | Jul 2009 | JP |
2010-073558 | Apr 2010 | JP |
2011-082097 | Apr 2011 | JP |
2260867 | Sep 2005 | RU |
2 298 264 | Apr 2007 | RU |
492207 | Jun 2002 | TW |
499766 | Aug 2002 | TW |
506154 | Oct 2002 | TW |
565961 | Dec 2003 | TW |
580777 | Mar 2004 | TW |
200512975 | Apr 2005 | TW |
1239672 | Sep 2005 | TW |
1286849 | Sep 2007 | TW |
201014010 | Apr 2010 | TW |
WO 0191209 | Nov 2001 | WO |
WO 03007415 | Jan 2003 | WO |
WO-2010010717 | Jan 2010 | WO |
WO 2010081150 | Jul 2010 | WO |
Entry |
---|
Taiwanese Search Report dated Dec. 24, 2013, (4 pgs.). |
N. Suzuki et al., US PTO Non-Final Office Action, U.S. Appl. No. 13/819,445 dated Apr. 3, 2014, (7 pgs.). |
Taiwanese Office Action dated Dec. 4, 2013, (4 pgs.). |
Japanese Office Action dated Dec. 24, 2013, (3 pgs.). |
Russian Decision on Grant and English language translation dated Jun. 25, 2014, 14 pgs. |
Russian Decision on Grant and English language translation dated May 15, 2014, 14 pgs. |
N. Suzuki et al., US PTO Notice of Allowance dated Jul. 16, 2014, 9 pgs. |
Number | Date | Country | |
---|---|---|---|
20130130082 A1 | May 2013 | US |