METAL-AIR BATTERY
20180076425 ยท 2018-03-15
Inventors
- Masaki TAKAHASHI (Saitama, JP)
- Tsutomu Narita (Saitama, JP)
- Yoshiharu Nakajima (Tokyo, JP)
- Hiroshi Sakama (Saitama, JP)
Cpc classification
H01M50/673
ELECTRICITY
Y02E60/10
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
H01M50/70
ELECTRICITY
H01M50/204
ELECTRICITY
H01M12/065
ELECTRICITY
H01M12/08
ELECTRICITY
International classification
H01M12/08
ELECTRICITY
Abstract
It is an object to provide a metal-air battery capable of, in particular, properly discharging produced gas externally, and performing rapid water supply. A metal-air battery according to the present invention is characterized by including a unit body including a plurality of metal-air battery cells; a water supply space provided on a top surface of the unit body and is common to the metal-air battery cells; and a wiring opening which communicably connects with the water supply space and from which wires connected to electrodes of the metal-air battery cells are drawn out. A tubular portion having the wiring opening projects from the top surface of the unit body.
Claims
1. A metal-air battery, comprising: a unit body including a plurality of metal-air battery cells; a water supply space provided on a top surface of said unit body, said water supply space being common to said metal-air battery cells; and a wiring opening which communicably connects with said water supply space and from which wires connected to electrodes of said metal-air battery cells are drawn out.
2. The metal-air battery according to claim 1, wherein a tubular portion, provided with said wiring opening, projects from said top surface of said unit body.
3. The metal-air battery according to claim 1, wherein said wiring opening is provided at a position higher than a full water level of an electrolytic solution supplied in said water supply space.
4. The metal-air battery according to claim 1, wherein an electrical system space for controlling a battery output is provided on said top surface of said unit body, and wherein said wiring opening is provided at a position higher than a base surface of said electrical system space.
5. The metal-air battery according to claim 1, wherein said water supply space and an electrical system space for controlling a battery output are provided on a unitarily-formed upper case or on separate upper cases.
6. The metal-air battery according to claim 5, wherein a surface of said upper case on which said electrical system space is positioned is provided with a layout area for an external connection terminal.
7. The metal-air battery according to claim 5, wherein said metal-air battery cells and said upper case are separately provided, wherein said metal-air battery cells are each assembled to form said unit body, and wherein said upper case is installed onto said top surface of said unit body.
8. The metal-air battery according to claim 5, wherein a lid is provided on an upper surface of said upper case so that at least said water supply space is partly exposed.
9. The metal-air battery according to claim 2, wherein said wiring opening is provided at a position higher than a full water level of an electrolytic solution supplied in said water supply space.
10. The metal-air battery according to claim 2, wherein an electrical system space for controlling a battery output is provided on said top surface of said unit body, and wherein said wiring opening is provided at a position higher than a base surface of said electrical system space.
11. The metal-air battery according to claim 3, wherein an electrical system space for controlling a battery output is provided on said top surface of said unit body, and wherein said wiring opening is provided at a position higher than a base surface of said electrical system space.
12. The metal-air battery according to claim 2, wherein said water supply space and an electrical system space for controlling a battery output are provided on a unitarily-formed upper case or on separate upper cases.
13. The metal-air battery according to claim 3, wherein said water supply space and an electrical system space for controlling a battery output are provided on a unitarily-formed upper case or on separate upper cases.
14. The metal-air battery according to claim 4, wherein said water supply space and an electrical system space for controlling a battery output are provided on a unitarily-formed upper case or on separate upper cases.
15. The metal-air battery according to claim 6, wherein a lid is provided on an upper surface of said upper case so that at least said water supply space is partly exposed.
16. The metal-air battery according to claim 7, wherein a lid is provided on an upper surface of said upper case so that at least said water supply space is partly exposed.
17. The metal-air battery according to claim 6, wherein said metal-air battery cells and said upper case are separately provided, wherein said metal-air battery cells are each assembled to form said unit body, and wherein said upper case is installed onto said top surface of said unit body.
18. The metal-air battery according to claim 12, wherein a surface of said upper case on which said electrical system space is positioned is provided with a layout area for an external connection terminal.
19. The metal-air battery according to claim 13, wherein a surface of said upper case on which said electrical system space is positioned is provided with a layout area for an external connection terminal.
20. The metal-air battery according to claim 14, wherein a surface of said upper case on which said electrical system space is positioned is provided with a layout area for an external connection terminal.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0017]
[0018]
[0019]
[0020]
[0021]
DETAILED DESCRIPTION
[0022] An embodiment according to the present invention (hereinafter referred simply as embodiment) will be discussed in detail hereinafter. The present invention is not limited to the embodiment which will be discussed below; various modifications to this embodiment are possible within the scope of the invention.
[0023]
[0024] As shown in
[0025] In the embodiment shown in
[0026] The internal structure of the metal-air battery cells 4 will be hereinafter discussed with reference to
[0027] As shown in
[0028] As shown in
[0029] The formation of the void spaces 4a that are shown in
[0030] The structure of the metal-air battery cells 4 in the present embodiment is not limited particularly to the above described structure; any known configuration having positive and negative electrodes is applicable.
[0031] As shown in
[0032] The upper case 5 is provided with a water supply space 16 which supplies the electrolytic solution 33 to each metal-air battery cell 4, and an electrical system space 22 which is electrically connected to the positive electrodes 31 and the negative electrode 32 of each metal-air battery cell 4 to control the output of the battery.
[0033] As shown in
[0034] <Water Supply Space>
[0035] As shown in
[0036] As described above, the water supply space 16 serves as a common water supply space for the metal-air battery cells 4 that includes the plurality of water supply holes 30. Accordingly, the electrolytic solution 33 can be supplied into the metal-air battery cells 4 in a single batch. Hence, in the present embodiment, since water can be supplied into the metal-air battery cells 4 in a single batch, the electrolytic solution 33 can be poured into the metal-air battery cells 4 simultaneously by substantially equal amounts. This makes it possible to obtain a desired electrical output stably and sustainably. In addition, compared with a conventional method of supplying water into each metal-air battery cell, the water supply in a single batch makes it possible to supply water easily and quickly in emergency situations such as in a disaster situation.
[0037] <Wiring Openings>
[0038] As shown in
[0039] The wiring openings 27a communicably connect with the water supply space 16. Namely, the water supply space 16 is communicably connected, from the water supply holes 30 that is provided in the water supply space 16, with the inside of each cell (see
[0040] Although the number of the wiring openings 27a is equal to the number of the positive electrodes 31 in the present embodiment, this does not limit the number of the wiring openings 27a. For instance, the wires can be tied in a bundle at each metal-air battery cell 4 and externally drawn from one wiring opening 27a with respect to each metal-air battery cell 4.
[0041] As shown in
[0042] According to the present embodiment, the wiring openings 27a function not only as openings from which the wires connected to the positive electrodes 31 and the negative electrodes 32 are drawn out, but also as vent holes through which produced gas such as hydrogen that is evolved by cell reaction is externally discharged. Accordingly, without produced gas such as hydrogen that is evolved by cell reaction not remaining in the cells, the produced gas can be externally discharged through the spaces which are communicably connected to the wiring openings 27a from the insides of the cells.
[0043] As described above, in the preset embodiment, the wiring openings 27a not only function as openings from which the wires connected to the positive electrodes 31 and the negative electrodes 32, which constitute elements of the metal-air battery cells 4, are drawn out, but also promote rapid water supply to each metal-air battery cell 4 from the water supply space 16 and undertake a role of externally discharging produced gas such as hydrogen that is evolved by cell reaction.
[0044] Hence, according to the present invention, the electrolytic solution can be quickly and easily supplied into the plurality of metal-air battery cells 4 in a single batch; additionally, when a drop in output occurs caused by inhibition of the cell reaction due to produced gas or when a large amount of produced gas occurs, damage to the metal-air battery cells 4 which may be caused by a rise in the internal pressure thereof can be prevented, and the metal-air battery 1 of the present embodiment is effectively applicable as an emergency power supply, etc., at the time of a disaster situation, or the like.
[0045] In the present embodiment, it is desirable that the wiring openings 27a be provided at positions higher than the full water level of the electrolytic solution 33 supplied in the water supply space 16. The term full water refers to the state where the water level of the electrolytic solution 33 in the water supply space 16 is the highest when the electrolytic solution 33 is supplied in the water supply space 16 (see
[0046] In addition, it is desirable that the wiring openings 27a be provided at positions higher than the base surface of the electrical system space 22. As shown in
[0047] <Electrical System Space>
[0048] As shown in
[0049] The electrical system space 22 can be configured of, e.g., a wire space 21 which accommodates the wires drawn out from each metal-air battery cell 4, and a board space 20 which accommodates a board for controlling the output of the battery. The wires accommodated in the wire space 21 are electrically connected to the board installed in the board space 20.
[0050] As shown in
[0051] Although the wire space 21 and the board space 20 are formed in the upper case 5 that is provided as a unitarily formed member in the present embodiment, the wire space 21 and the board space 20 can be provided on separate upper cases.
[0052] <External Connection Holes>
[0053] As shown in
[0054] Although a total of five external connection holes 26 are provided in
[0055] <Lid>
[0056] As shown in
[0057] The lid 7 covers the top of the electrical system space 22, thus being capable of adequately protecting the electrical system from the outside.
[0058] The lid 7 is provided with a plurality of vent holes 36, as shown in
[0059] <Assembly>
[0060] In the present embodiment, the plurality of metal-air battery cells 4 are independently provided as shown in
[0061] Additionally, the metal-air battery 1 that is shown in
[0062] Although the tubular portions 27 that include the wiring openings 27a are provided on the top surfaces 4b of the metal-air battery cells 4 in the above description, the tubular portions 27 can be provided on side surfaces, etc., of the metal-air battery cells 4. In this case, it is desirable to form the tubular portions 27 by either making the tubular portions 27 extend obliquely upward so that the wiring openings 27a face upward, or by bending the tubular portions 27 at midpoint so that the wiring openings 27a face upward, and to form the wiring openings 27a at positions higher than the full water level of the electrolytic solution 33 supplied in the water supply space. However, the formation of the tubular portions 27, which have the wiring openings 27a, on the top surface 4b of each metal-air battery cell 4 makes it possible to properly promote the discharge of the produced gas and the water supply in a single batch with a simple structure.
[0063] According to a metal-air battery of the present invention, produced gas such as hydrogen that is evolved by cell reaction can be properly discharged externally, and an electrolytic solution can be rapidly supplied in a single batch to a plurality of metal-air battery cells. Accordingly, a metal-air battery according to the present embodiment can be effectively applied as an emergency power supply, etc., at the time of a disaster situation, or the like.
[0064] This application is based on Japanese Unexamined Patent Application No. 2016-039125, filed on Mar. 1, 2016, the contents of which are all incorporated herein by reference in their entirety.
[0065] While the present disclosure has been illustrated and described with respect to a particular embodiment thereof, it should be appreciated by those of ordinary skill in the art that various modifications to this disclosure may be made without departing from the spirit and scope of the present disclosure.