SECONDARY BATTERY PACK, CHARGER AND DISCHARGER

20230163344 · 2023-05-25

Assignee

Inventors

Cpc classification

International classification

Abstract

A secondary battery pack includes: a first battery; a second battery; a third battery including positive, negative and bipolar terminals; a first connector electrically connecting a negative terminal of the first battery and the positive terminal of the third battery; and a second connector electrically connecting a positive terminal of the second battery and the negative terminal of the third battery. The third battery includes bipolar electrodes individually located in the spaces between positive electrodes and negative electrodes neighboring each other, the bipolar electrodes having an intermediate electrode potential between the positive electrode and the negative electrode; an electrolyte; a positive-electrode connection member electrically connecting the positive terminal of the third battery and the positive electrodes; a negative-electrode connection member electrically connecting the negative terminal and the negative electrodes; and a bipolar-electrode connection member electrically connecting the bipolar terminal and the bipolar electrodes.

Claims

1. A secondary battery pack comprising: a first battery and a second battery each of which includes a positive terminal and a negative terminal; a third battery including a positive terminal, a negative terminal and a bipolar terminal; a first connector configured to electrically connect the negative terminal of the first battery and the positive terminal of the third battery; and a second connector configured to electrically connect the positive terminal of the second battery and the negative terminal of the third battery, where the third battery includes the following elements, with n being an integer equal to or greater than zero: (n+1) positive electrodes and (n+1) negative electrodes alternately arranged; (2n+1) bipolar electrodes individually located in spaces between the positive electrodes and the negative electrodes neighboring each other; an electrolyte; a positive-electrode connection member configured to electrically connect the positive terminal of the third battery and the (n+1) positive electrodes; a negative-electrode connection member configured to electrically connect the negative terminal and the (n+1) negative electrodes; and a bipolar-electrode connection member configured to electrically connect the bipolar terminal and each of the (2n+1) bipolar electrodes.

2. A secondary battery pack comprising: a first battery and a second battery each of which includes a positive terminal and a negative terminal; a third battery including a positive terminal, a negative terminal and a bipolar terminal; a first connector configured to electrically connect the negative terminal of the first battery and the positive terminal of the third battery; and a second connector configured to electrically connect the positive terminal of the second battery and the negative terminal of the third battery, where the third battery includes the following elements, with n being an integer equal to or greater than zero: either (n+2) positive electrodes and (n+1) negative electrodes alternately arranged, or (n+2) negative electrodes and (n+1) positive electrodes alternately arranged; (2n+2) bipolar electrodes individually located in spaces between the positive electrodes and the negative electrodes neighboring each other; an electrolyte; a positive-electrode connection member configured to electrically connect the positive terminal of the third battery and the (n+2) or (n+1) positive electrodes; a negative-electrode connection member configured to electrically connect the negative terminal and the (n+1) or (n+2) negative electrodes; and a bipolar-electrode connection member configured to electrically connect the bipolar terminal and the (2n+2) bipolar electrodes.

3. The secondary battery pack according to claim 1, wherein at least one of the first battery and the second battery includes a plurality of secondary battery cells connected in series or in parallel.

4. A secondary battery module including the secondary battery pack according to claim 1, the secondary battery module comprising: a first input/output line; a switching means configured to switch between a first state in which the first input/output line is electrically connected to the positive terminal of the secondary battery pack and a second state in which the first input/output line is electrically connected to the negative terminal of the second battery of the secondary battery pack; a second input/output line electrically connected to the bipolar terminal of the third battery of the secondary battery pack; and a controller configured to control the switching means.

5. A charger configured to charge the secondary battery pack according to claim 1, comprising: first and second input lines to be connected to a pair of output ends of an AC power supply; a positive-electrode terminal and a negative-electrode terminal located on the first input line and configured to be connected to the positive terminal of the first battery and the negative terminal of the second battery of the secondary battery pack, respectively; a bipolar-electrode terminal located on the second input line and configured to be connected to the bipolar terminal of the third battery of the secondary battery pack; a switching means located between the first input line and the positive-electrode terminal as well as between the first input line and the negative-electrode terminal, and configured to switch between a first connection state in which the first input line is connected to the positive-electrode terminal and a second connection state in which the first input line is connected to the negative-electrode terminal; and a controller configured to control the switching means based on a frequency of the AC power supply.

6. A discharger configured to discharge the secondary battery pack according to claim 1, the discharger comprising: first and second output lines to be connected to a pair of input terminals of a load; a positive-electrode terminal and a negative-electrode terminal located on the first output line and configured to be connected to the positive terminal of the first battery and the negative terminal of the second battery of the secondary battery pack, respectively; a bipolar-electrode terminal located on the second output line and configured to be connected to the bipolar terminal of the third battery of the secondary battery pack; a switching means located between the first output line and the positive-electrode terminal as well as between the first output line and the negative-electrode terminal, and configured to switch between a first connection state in which the first output line is connected to the positive-electrode terminal and a second connection state in which the first output line is connected to the negative-electrode terminal; and a controller configured to control the switching means.

7. The secondary battery pack according to claim 2, wherein at least one of the first battery and the second battery includes a plurality of secondary battery cells connected in series or in parallel.

8. A secondary battery module including the secondary battery pack according to claim 2, the secondary battery module comprising: a first input/output line; a switching means configured to switch between a first state in which the first input/output line is electrically connected to the positive terminal of the secondary battery pack and a second state in which the first input/output line is electrically connected to the negative terminal of the second battery of the secondary battery pack; a second input/output line electrically connected to the bipolar terminal of the third battery of the secondary battery pack; and a controller configured to control the switching means.

9. A secondary battery module including the secondary battery pack according to claim 3, the secondary battery module comprising: a first input/output line; a switching means configured to switch between a first state in which the first input/output line is electrically connected to the positive terminal of the secondary battery pack and a second state in which the first input/output line is electrically connected to the negative terminal of the second battery of the secondary battery pack; a second input/output line electrically connected to the bipolar terminal of the third battery of the secondary battery pack; and a controller configured to control the switching means.

10. A secondary battery module including the secondary battery pack according to claim 7, the secondary battery module comprising: a first input/output line; a switching means configured to switch between a first state in which the first input/output line is electrically connected to the positive terminal of the secondary battery pack and a second state in which the first input/output line is electrically connected to the negative terminal of the second battery of the secondary battery pack; a second input/output line electrically connected to the bipolar terminal of the third battery of the secondary battery pack; and a controller configured to control the switching means.

11. A charger configured to charge the secondary battery pack according to claim 2, comprising: first and second input lines to be connected to a pair of output ends of an AC power supply; a positive-electrode terminal and a negative-electrode terminal located on the first input line and configured to be connected to the positive terminal of the first battery and the negative terminal of the second battery of the secondary battery pack, respectively; a bipolar-electrode terminal located on the second input line and configured to be connected to the bipolar terminal of the third battery of the secondary battery pack; a switching means located between the first input line and the positive-electrode terminal as well as between the first input line and the negative-electrode terminal, and configured to switch between a first connection state in which the first input line is connected to the positive-electrode terminal and a second connection state in which the first input line is connected to the negative-electrode terminal; and a controller configured to control the switching means based on a frequency of the AC power supply.

12. (canceled)

13. A charger configured to charge the secondary battery pack according to claim 3, comprising: first and second input lines to be connected to a pair of output ends of an AC power supply; a positive-electrode terminal and a negative-electrode terminal located on the first input line and configured to be connected to the positive terminal of the first battery and the negative terminal of the second battery of the secondary battery pack, respectively; a bipolar-electrode terminal located on the second input line and configured to be connected to the bipolar terminal of the third battery of the secondary battery pack; a switching means located between the first input line and the positive-electrode terminal as well as between the first input line and the negative-electrode terminal, and configured to switch between a first connection state in which the first input line is connected to the positive-electrode terminal and a second connection state in which the first input line is connected to the negative-electrode terminal; and a controller configured to control the switching means based on a frequency of the AC power supply.

14. A charger configured to charge the secondary battery pack according to claim 7, comprising: first and second input lines to be connected to a pair of output ends of an AC power supply; a positive-electrode terminal and a negative-electrode terminal located on the first input line and configured to be connected to the positive terminal of the first battery and the negative terminal of the second battery of the secondary battery pack, respectively; a bipolar-electrode terminal located on the second input line and configured to be connected to the bipolar terminal of the third battery of the secondary battery pack; a switching means located between the first input line and the positive-electrode terminal as well as between the first input line and the negative-electrode terminal, and configured to switch between a first connection state in which the first input line is connected to the positive-electrode terminal and a second connection state in which the first input line is connected to the negative-electrode terminal; and a controller configured to control the switching means based on a frequency of the AC power supply.

15. A discharger configured to discharge the secondary battery pack according to claims 2, the discharger comprising: first and second output lines to be connected to a pair of input terminals of a load; a positive-electrode terminal and a negative-electrode terminal located on the first output line and configured to be connected to the positive terminal of the first battery and the negative terminal of the second battery of the secondary battery pack, respectively; a bipolar-electrode terminal located on the second output line and configured to be connected to the bipolar terminal of the third battery of the secondary battery pack; a switching means located between the first output line and the positive-electrode terminal as well as between the first output line and the negative-electrode terminal, and configured to switch between a first connection state in which the first output line is connected to the positive-electrode terminal and a second connection state in which the first output line is connected to the negative-electrode terminal; and a controller configured to control the switching means.

16. A discharger configured to discharge the secondary battery pack according to claims 3, the discharger comprising: first and second output lines to be connected to a pair of input terminals of a load; a positive-electrode terminal and a negative-electrode terminal located on the first output line and configured to be connected to the positive terminal of the first battery and the negative terminal of the second battery of the secondary battery pack, respectively; a bipolar-electrode terminal located on the second output line and configured to be connected to the bipolar terminal of the third battery of the secondary battery pack; a switching means located between the first output line and the positive-electrode terminal as well as between the first output line and the negative-electrode terminal, and configured to switch between a first connection state in which the first output line is connected to the positive-electrode terminal and a second connection state in which the first output line is connected to the negative-electrode terminal; and a controller configured to control the switching means.

17. A discharger configured to discharge the secondary battery pack according to claims 7, the discharger comprising: first and second output lines to be connected to a pair of input terminals of a load; a positive-electrode terminal and a negative-electrode terminal located on the first output line and configured to be connected to the positive terminal of the first battery and the negative terminal of the second battery of the secondary battery pack, respectively; a bipolar-electrode terminal located on the second output line and configured to be connected to the bipolar terminal of the third battery of the secondary battery pack; a switching means located between the first output line and the positive-electrode terminal as well as between the first output line and the negative-electrode terminal, and configured to switch between a first connection state in which the first output line is connected to the positive-electrode terminal and a second connection state in which the first output line is connected to the negative-electrode terminal; and a controller configured to control the switching means.

Description

BRIEF DESCRIPTION OF DRAWINGS

[0072] FIG. 1 is a schematic configuration diagram of the first embodiment of the secondary battery pack according to the present invention.

[0073] FIG. 2A is an illustration of the charging operation by the reaction in the first stage of the secondary battery pack shown in FIG. 1.

[0074] FIG. 2B is an illustration of the charging operation by the reaction in the second stage of the secondary battery pack shown in FIG. 1.

[0075] FIG. 3A is an illustration of the discharging operation by the reaction in the first stage of the secondary battery pack shown in FIG. 1.

[0076] FIG. 3B is an illustration of the discharging operation by the reaction in the second stage of the secondary battery pack shown in FIG. 1.

[0077] FIG. 4A is a diagram showing one example of the voltage value at each section of the secondary battery pack in the first embodiment.

[0078] FIG. 4B is a diagram showing another example of the voltage value at each section of the secondary battery pack in the first embodiment.

[0079] FIG. 5 is a schematic configuration diagram of the second embodiment of the secondary battery pack according to the present invention.

[0080] FIG. 6 is a schematic configuration diagram of an embodiment of the secondary battery module according to the present invention.

[0081] FIG. 7 is a schematic configuration diagram of a high-voltage generator using a secondary battery pack according to the present invention.

[0082] FIG. 8 is a diagram showing an example of the arrangement of the positive electrodes, bipolar electrodes and negative electrodes of the third battery.

DESCRIPTION OF EMBODIMENTS

[0083] Embodiments of the secondary battery according to the present invention are hereinafter described.

First Embodiment

[0084] FIG. 1 is a schematic configuration diagram of a secondary battery pack according to the first embodiment of the present invention. The secondary battery pack 1 includes a case 11 as well as a first battery 2, second battery 3 and third battery 4 contained in the case 11. The first battery 2 includes two secondary battery cells 12 and 13. The second battery 3 also includes two secondary battery cells 14 and 15, while the third battery 4 includes one secondary battery cell 16. The five secondary battery cells 12-16 each include a closed container 20 as well as a plurality of electrodes 21, separators 22 and an electrolyte 23 which are contained in the closed container 20. The closed container 20 is provided with external terminals 24 electrically connected through connection members 25 to the electrodes 21 contained in the closed container 20.

[0085] The case 11 includes, for example, a metallic case body 111 having an upper opening sealed with a metallic cover 112. The cover 112 has a positive terminal 113 and a negative terminal 114, while the case body 111 has a bipolar terminal 115 on its bottom side.

[0086] The two secondary battery cells 12 and 13 forming the first battery 2, as well as the two secondary battery cells 14 and 15 forming the second battery 3, each have two electrodes 21, i.e. a positive electrode (cathode) “C” and a negative electrode (anode) “A” arranged within the closed container 20. The secondary battery cell 16 forming the third battery 4 has three electrodes 21 arranged within the closed container 20. The three electrodes 21 include a positive electrode “C” a negative electrode “A” as well as a bipolar electrode (Biode) “B” located between the positive electrode C and the negative electrode A.

[0087] The first battery 2 is formed by the secondary battery cells 12 and 13 connected in series. The external terminal 24 of the negative electrode A of the secondary battery cell 12 is electrically connected to that of the positive electrode C of the secondary battery cell 13 by a connection line 241. The external terminal 24 of the positive electrode C of the secondary battery cell 12 is electrically connected to the positive terminal 113 by a connection line 242. In the present embodiment, the external terminal 24 of the positive electrode C of the secondary battery cell 12 and the external terminal 24 of the negative electrode A of the secondary battery cell 13 correspond to the positive terminal and the negative terminal of the first battery 2, respectively.

[0088] The second battery 3 is formed by the secondary battery cells 14 and 15 connected in series. The external terminal 24 of the negative electrode A of the secondary battery cell 14 is electrically connected to that of the positive electrode C of the secondary battery cell 15 by a connection line 243. The external terminal 24 of the negative electrode A of the secondary battery cell 15 is electrically connected to the negative terminal 114 by a connection line 244. In the present embodiment, the external terminal 24 of the positive electrode C of the secondary battery cell 14 and the external terminal 24 of the negative electrode A of the secondary battery cell 15 correspond to the positive terminal and the negative terminal of the second battery 3, respectively.

[0089] The third battery 4 is serially connected to each of the first and second batteries 2 and 3. Specifically, the external terminal 24 of the negative electrode A of the secondary battery cell 13 is electrically connected to that of the positive electrode C of the secondary battery cell 16 by a connection line 245, while the external terminal 24 of the positive electrode C of the secondary battery cell 14 is electrically connected to that of the negative electrode A of the secondary battery cell 16 by a connection line 246. The external terminal of the bipolar electrode B of the secondary battery cell 16 is electrically connected to the bipolar terminal 115 by a connection line 247. In the present embodiment, the external terminals 24 connected to the positive electrode C, negative electrode A and bipolar electrode B correspond to the positive terminal, negative terminal and bipolar terminal of the third battery 4, respectively. The connection members 25 which connect the positive electrode C, negative electrode A and bipolar electrode B to the corresponding external terminals 24 respectively correspond to the positive-electrode connection member, negative-electrode connection member and bipolar-electrode connection member. The connection lines 245 and 246 respectively correspond to the first connector and the second connector.

[0090] The electrodes 21 (positive electrodes C, bipolar electrode B and negative electrodes A) each include a current collector and an active-material layer formed on the surface of the current collector. The active-material layer is made of an active material and an adhesive for adhering the active material to the current collector. As for the active materials contained in the positive electrode C and the negative electrode A, active materials commonly used for the positive and negative electrodes in secondary batteries can be used. The active material contained in the active-material layer of the bipolar electrode B is not limited to any specific material and may be any material which gives the bipolar electrode B an electrode potential between the electrode potential of the positive electrode C and that of the negative electrode A.

[0091] For example, the active-material layer of the positive electrode C should preferably contain an active material whose electrode potential changes within a range from 2 V (vs. Li/Li.sup.+) to 5 V (vs. Li/Li.sup.+), while the active-material layer of the negative electrode A should preferably contain an active material whose electrode potential changes within a range from 0 V (vs. Li/Li.sup.+) to 2 V (vs. Li/Li.sup.+). The active-material layer of the bipolar electrode B should preferably contain an active material whose electrode potential changes within a range from 1 V (vs. Li/Li.sup.+) to 4 V (vs. Li/Li.sup.+).

[0092] As for the electrolyte 23, an appropriate kind of electrolyte compatible with the active materials of the electrodes may be used. It may be an aqueous or non-aqueous electrolyte. It may be an electrolytic solution, polyelectrolyte gel or solid polyelectrolyte.

[0093] An operation principle of the secondary battery pack 1 is hereinafter described with reference to FIGS. 2A and 2B. FIGS. 2A and 2B show the movement of cations in the charging process under the condition that the negative electrodes A in the secondary battery cells 12-16 are made of a carbon-based material, the positive electrodes C are made of LiFePO.sub.4, and the bipolar electrode B is made of Li.sub.4/3Ti.sub.5/3O.sub.4.

[0094] The description is initially concerned with the charging operation for the secondary battery pack 1. A charger 100 for the secondary battery pack 100 includes a pair of input lines 101 and 102, a single-pole double-throw switching circuit 103 connected to an end of the input line 101, two branch lines 104 and 105 connected to the switching circuit 103, as well as a controller 106 configured to control the operation of the switching circuit 103. The switching circuit 103 switches between the state in which the input line 101 is connected to one branch line 104 (first state) and the state in which the input line 101 is connected to the other branch line 105 (second state). The switching circuit 103 corresponds to the switching means in the present invention. Various kinds of elements are available for this circuit, such as a bipolar transistor or relay.

[0095] When the secondary battery pack 1 is charged, the secondary battery pack 1 is set in the charger 100. The positive and negative terminals 113 and 114 of the secondary battery pack 1 are thereby connected to the branch lines 104 and 105 of the charger 100, respectively, while the bipolar terminal 115 is connected to the input line 102. Meanwhile, the input lines 101 and 102 of the charger 100 are connected to a pair of output ends of an AC power supply 150. In such a charging circuit, when the electrons flow through the input lines 101 and 102 in the direction as indicated by the arrows in FIG. 2A, the controller 106 switches the switching circuit 103 to the first state in which the input line 101 is connected to the branch line 104. In this state, cations (positive ions, Li.sup.+) move from the positive electrode C toward the negative electrode A across the electrolyte 23 in each of the secondary battery cells 12 and 13, while cations (positive ions, Li.sup.+) move from the positive electrode C toward the bipolar electrode B across the electrolyte 23 in the secondary battery cell 16.

[0096] When the electrons flow through the input lines 101 and 102 in the direction as indicated by the arrows in FIG. 2B, the controller 106 switches the switching circuit 103 to the second state in which the input line 101 is connected to the branch line 105. In this state, cations move from the bipolar electrode B toward the negative electrode A across the electrolyte 23 in the secondary battery cell 16, while cations move from the positive electrode C toward the negative electrode A across the electrolyte 23 in each of the secondary battery cells 14 and 15. As a result, C.sub.6Li deposits on the negative electrode A.

[0097] Thus, the secondary battery pack 1 is charged by the two-stage chemical reactions. Accordingly, the charging can be continued by switching the switching circuit 103 to the first connection state or the second connection state every time the direction of the alternating current from the AC power supply 150 changes its direction.

[0098] A discharging operation for the secondary battery pack 1 is hereinafter described with reference to FIGS. 3A and 3B. A discharger 200 for the secondary battery pack 1 includes a pair of output lines 201 and 202, a single-pole double-throw switching circuit 203 connected to an end of the output line 201, two branch lines 204 and 205 connected to the switching circuit 203, as well as a controller 206 configured to control the operation of the switching circuit 203. The switching circuit 203 switches between the state in which the output line 201 is connected to one branch line 204 (third state) and the state in which the output line 201 is connected to the other branch line 205 (fourth state).

[0099] When the secondary battery pack 1 is discharged, the secondary battery pack 1 is set in the discharger 200. The positive and negative terminals 113 and 114 of the secondary battery pack 1 are thereby connected to the branch lines 204 and 205 of the discharger 200, respectively, while the bipolar terminal 115 is connected to the output line 202. Meanwhile, the output lines 201 and 202 of the discharger 200 are connected to a pair of input ends of a load 250. In such a discharging circuit, the controller 206 switches the switching circuit 203 to the fourth state in which the output line 201 is connected to the branch 205 (see FIG. 3A). Then, the active material on the negative electrode A is dissolved in each of the secondary battery cells 14 and 15. The resulting cations (positive ions, Li.sup.+) move toward the positive electrode C across the electrolyte 23. Meanwhile, the active material on the negative electrode A in the secondary battery cell 16 is dissolved, and the resulting cations (positive ions, Li.sup.+) move toward the bipolar electrode B across the electrolyte 23. During this process, electrons flow from the negative electrode A of the secondary battery cell 15 toward the bipolar electrode B of the secondary battery cell 16 through the external circuit (output lines 201 and 202).

[0100] The controller 206 subsequently switches the switching circuit 203 to the third state in which the output line 201 is connected to the branch line 204 (see FIG. 3B). Then, cations move from the bipolar electrode B toward the positive electrode C across the electrode 23 in the secondary battery cell 16, and eventually deposit in the form of LiFePO.sub.4. Meanwhile, the active material on the negative electrode A is dissolved in each of the secondary battery cells 13 and 12. The resulting cations (positive ions, Li.sup.+) move toward the positive electrode C across the electrolyte 23. During this process, electrons flow from the bipolar electrode B of the secondary battery cell 16 toward the positive electrode C of the secondary battery cell 12 through the external circuit (output lines 201 and 202). Accordingly, alternating current can be released by operating the switching circuit 203 so that the electrode to be connected to the bipolar electrode B of the secondary battery cell 16 is alternately changed between the negative electrode A of the secondary battery cell 15 and the positive electrode C of the secondary battery cell 12 at an appropriate timing (e.g. according to the frequency of the load 250).

[0101] As can be understood from the comparison of FIGS. 2A and 2B with FIGS. 3A and 3B, the relationship of the input lines 101, 102, switching circuit 103 and secondary battery pack 1 in the charging process is basically the same as that of the output lines 201, 202, switching circuit 203 and secondary battery pack 1 in the discharging process. Accordingly, it is possible to make the charger 100 or discharger 200 be a charging-and-discharger having both the charging and discharging functions by appropriately controlling the timing to switch the switching circuit.

[0102] In the secondary battery pack 1 having the previously described configuration, the voltage value of the entire secondary battery pack 1 is determined by the voltage difference between the positive electrode C and the negative electrode A in the secondary battery cells 12-15, voltage difference between the positive electrode C and the bipolar electrode B in the secondary battery cell 16, as well as voltage difference between the bipolar electrode B and the negative electrode A in the secondary battery cell 16. FIG. 4A shows an example of the voltage values in the case where the positive electrodes C made of the same electrode material and the negative electrodes A made of the same electrode material are used in all secondary battery cells 12-16. On the other hand, FIG. 4B show an example of the voltage values in the case where the negative electrode of the secondary battery cell 12 and that of the secondary battery cell 14 are each made of the same electrode material as the bipolar electrode B of the secondary battery cell 16. Those examples demonstrate that secondary battery packs 1 with various voltage values can be obtained by appropriately selecting the electrode materials.

Second Embodiment

[0103] FIG. 5 is a schematic configuration diagram of a secondary battery pack 1A according to the second embodiment of the present invention. In FIG. 5, the outer shape of the secondary battery pack 1A is shown by the long dashed short dashed line. The portions which are identical or correspond to those of the secondary battery pack 1 according to the first embodiment are denoted by the same reference signs. A difference of this secondary battery pack 1A from the secondary battery pack 1 exists in the configuration of the third battery 4A. Specifically, the third battery 4A is formed by a secondary battery cell 16A having five electrodes 21 arranged within the closed container 20. The five electrodes include two negative electrodes A at both extremities, one positive electrode C located between the two negative electrodes A, and two bipolar electrodes B respectively located in the two spaces formed between the two negative electrodes A and the positive electrode C.

[0104] The two negative electrodes A are electrically connected to each other by a connection line 301. This connection line 301 is electrically connected to the positive electrode C of the secondary battery cell 14 by a connection line 246. The two bipolar electrodes B are electrically connected to each other by a connection line 302. This connection line 302 is electrically connected to the bipolar terminal 115 by a connection line 247.

[0105] The secondary battery pack 1A having the previously described configuration also allows for the charge and discharge of alternating current, as with the secondary battery pack 1.

Third Embodiment

[0106] FIG. 6 shows one embodiment of the secondary battery module according to the present invention. This secondary battery module 400 includes a case 410 having a pair of terminals 411 and 412, a secondary battery pack 420 contained in the case 410, a switching circuit 430 functioning as the switching means, and a controller 440 configured to control the switching circuit 430. The secondary battery pack 420 has almost the same configuration as the previously described secondary battery pack 1 according to the first embodiment. Therefore, the portions which are identical or correspond to those of the secondary battery pack 1 are denoted by the same reference signs, and detailed descriptions of the secondary battery pack 420 will be omitted.

[0107] The terminal 411 of the secondary battery module 400 is connected to the switching circuit 430 by a first input/output line 401. The terminal 412 of the secondary battery module 400 is connected to the bipolar terminal 115 of the secondary battery pack 420 by a second input/output line 402. One of the two contacts of the switching circuit 430 is connected to the positive terminal 113 of the secondary battery pack 420 by a first line 404, while the other contact is connected to the negative terminal 114 by a second line 405.

[0108] In the secondary battery module 400, when the pair of terminals 411 and 412 are connected to a pair of output ends of an AC power supply, a charging circuit for the secondary battery pack 420 is formed, and the secondary battery pack 420 is thereby charged. The direction of the flow of the electrons and the timing to switch the switching circuit 430 in this charging process are the same as in the charging operation performed by the charger 100 when the secondary battery pack 1 according to the first embodiment is set in the charger 100.

[0109] When the pair of terminals 411 and 412 of the secondary battery module 400 are connected to a pair of input ends of a load, a discharging circuit for the secondary battery pack 420 is formed, and alternating current is supplied from the secondary battery pack 420 to the load. The direction of the flow of the electrons and the timing to switch the switching circuit 430 in this discharging process are the same as in the charging operation performed by the discharger 200 in which when the secondary battery pack 1 according to the first embodiment is set in the discharger 200.

Fourth Embodiment

[0110] FIG. 7 is an embodiment of a high-voltage generator using a secondary battery pack according to the present invention. This high-voltage generator 500 includes a secondary battery pack 501, a switching unit 510, and a high-voltage generation unit 520 including a multistage rectification capacitor circuit. The secondary battery pack 501 has the same configuration as the secondary battery pack 1 according to the first embodiment. Therefore, the portions which are identical or correspond to those of the secondary battery pack 1 are denoted by the same reference signs, and detailed descriptions of the secondary battery pack 501 will be omitted.

[0111] The switching unit 510 includes a single-pole double-throw switching circuit 511 and a controller 512 configured to control the operation of the switching circuit 511. The two contacts of the switching circuit 511 are respectively connected to the positive terminal 113 and the negative terminal 114 of the secondary battery pack 501 in a removable manner.

[0112] The high-voltage generator 520 includes a Cockcroft-Walton (CW) circuit having a plurality of serially connected diodes D.sub.1 to D.sub.n and capacitors C.sub.1 to C.sub.n forming a multistage circuit. The CW circuit has a pair of input terminals 521 and 522, to which the switching circuit 511 of the switching unit 510 and the bipolar terminal 515 of the secondary battery pack 501 are respectively connected. The connection between the input terminal 522 of the CW circuit and the bipolar terminal 115 of the secondary battery pack 501 is removable. The pair of output terminals 523 and 524 of the CW circuit serve as the output terminals of the high-voltage generator 500.

[0113] When a pair of input terminals of a load (not shown) is connected to the output terminals 523 and 524 of the high-voltage generator 500, the controller 512 operates the switching circuit 511 so that the circuit is alternately switched between the first state indicated by the solid line in FIG. 7 (i.e. the state in which the CW circuit is connected between the positive terminal 113 and the bipolar terminal 115) and the second state indicated by the dashed line (i.e. the state in which the CW circuit is connected between the negative terminal 114 and the bipolar terminal 115). As a result, AC power is supplied from the secondary battery pack 501 to the high-voltage generation unit 520, which produces a high-voltage DC-power output to the load connected to the output terminals 523 and 524 of the CW circuit. It is possible to configure the controller 512 so that it disconnects the two contacts from both the positive terminal 113 and the negative terminal 114 upon detecting that all capacitors of the CW circuit have been fully charged.

[0114] When the amount of charges stored in the secondary battery pack 501 has been decreased to a certain level, the secondary battery pack 501 can be removed from the high-voltage generator 500 and set in a charger. For example, the previously described charger 100 (see FIG. 2A) can be used for this purpose. The operation for charging the secondary battery pack 501 is the same as the charging operation for the secondary battery pack 1 using the charger 100, and therefore, will not be described in this embodiment.

MODIFIED EXAMPLES

[0115] The previously described embodiments are mere examples and can be appropriately changed or modified along with the gist of the present invention.

[0116] In the first to fourth embodiments, the plurality of electrodes included in the third battery in the secondary battery pack are horizontally arranged in a row (see FIGS. 1 and 5). If there are a considerable number of electrodes, those electrodes may be arranged in a

[0117] V-shaped, U-shaped or zigzag form. FIG. 8 shows an example in which 13 electrodes are arranged in a zigzag form. Such an arrangement makes the positive electrodes C be closer to each other, the bipolar electrodes B be closer to each other, and the negative electrodes C be closer to each other in the third battery, thereby reducing the connection distance between the positive electrodes C, between the bipolar electrodes B as well as between the negative electrodes A.

[0118] In the first to fourth embodiments, the five secondary battery cells 12-16 forming the secondary battery pack are horizontally arranged in a row. Those secondary battery cells 12-16 may be arranged in any way as long as their electrical connection is the same.

[0119] In the first to fourth embodiments, a plurality of secondary battery cells is connected in series to construct the first and second batteries. It is also possible that one or both first and second batteries include a plurality of secondary battery cells connected in parallel.

[0120] In the first embodiment, the secondary battery pack 1 is separated from the charger 100 or discharger 200. The secondary battery pack 1 and a charging-and-discharging circuit may be contained in one case to form a secondary battery module.

[0121] The secondary battery pack included in the secondary battery module according to the third embodiment, as well as the secondary battery pack included in the high-voltage generator according to the fourth embodiment, may be configured in the same manner as the secondary battery pack shown in FIG. 5.

REFERENCE SIGNS LIST

1, 1A, 420, 501 . . . Secondary Battery Pack

2 . . . First Battery

3 . . . Second Battery

4, 4A . . . Third Battery

100 . . . Charger

101, 102 . . . Input Line

103 . . . Switching Circuit

104, 105 . . . Branch Line

106 . . . Controller

11 . . . Case

111 . . . Case Body

112 . . . Cover

113 . . . Positive Terminal

114 . . . Negative Terminal

115 . . . Bipolar Terminal

12-16, 16A . . . Secondary Battery Cell

20 . . . Closed Container

200 . . . Discharger

201 . . . Output Line

202 . . . Output Line

203 . . . Switching Circuit

204, 205 . . . Branch Line

206 . . . Controller

21 . . . Electrode

22 . . . Separator

23 . . . Electrolyte

24 . . . External Terminal

25 . . . Connection Member

241-247, 301, 302 . . . Connection Line

150 . . . AC Power Supply

250 . . . Load

400 . . . Secondary Battery Module

500 . . . High-Voltage Generator