Metal-air battery system
The concentric electrode arrangement in the metal-air battery system facilitates efficient power storage and discharge by circulating electrolyte, reducing resistance and preventing zinc pellet loss, addressing the limitations of existing systems.
Patent Information
- Application Number
- JP2021110540
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-07-02
- Publication Date
- 2025-09-03
- Estimated Expiration
- 2041-07-02
AI Technical Summary
The existing metal-air battery systems face challenges in efficiently circulating electrolyte without risking the loss or transport of zinc pellets, which are essential components, limiting their ability to store and discharge power effectively.
A metal-air battery system with a concentric arrangement of electrodes, including a negative electrode, charging positive electrode, and discharging positive electrode, allows electrolyte circulation between the outer peripheral surfaces of these electrodes, reducing current density and resistance loss, and incorporates a switching device to manage charging and discharging operations.
This configuration enables efficient charging and discharging by reducing resistance, allowing for power storage while preventing zinc pellet loss and internal short circuits, enhancing the system's efficiency and lifespan.
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Abstract
Description
[Technical Field]
[0001] The present disclosure relates to a metal-air battery system. [Background technology]
[0002] Metal-air battery systems that use a metal as the negative electrode active material and oxygen (air) as the positive electrode active material are known. Patent Document 1 describes a cylindrical three-electrode metal-air battery system in which a cylindrical fuel electrode, an auxiliary electrode, and an air electrode are concentrically arranged and immersed in an electrolyte. This metal-air battery system can be used as a secondary battery that uses the fuel electrode and auxiliary electrode for charging and the fuel electrode and air electrode for discharging, or as a fuel cell that generates electricity using the auxiliary electrode and air electrode by placing zinc pellets in an auxiliary electrode with a holding structure. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2015-170400 Summary of the Invention [Problem to be solved by the invention]
[0004] When it is necessary to store power in a metal-air battery system, the electrolyte is stored in a tank and circulated with a pump. However, the metal-air battery system of Patent Document 1 is not configured to circulate the electrolyte, and if it were configured to circulate the electrolyte, there is a risk that the zinc pellets inserted in the auxiliary electrode would be carried away with the electrolyte. Therefore, it is not anticipated that the metal-air battery system of Patent Document 1 will be modified to circulate the electrolyte, and such a modification is not easily possible.
[0005] In view of the above circumstances, an object of at least one embodiment of the present disclosure is to provide a metal-air battery system that is capable of storing power and efficiently charging and discharging it. [Means for solving the problem]
[0006] In order to achieve the above object, the metal-air battery system according to the present disclosure is a metal-air battery system including a cell having a chamber and an electrode device housed in the chamber, wherein the electrode device includes a first electrode, a cylindrical second electrode provided radially outside the first electrode so as to surround the first electrode, and a cylindrical third electrode provided radially outside the second electrode so as to surround the second electrode, and is configured such that an electrolyte flows between at least an outer peripheral surface of the first electrode and an inner peripheral surface of the third electrode, and the combination of the first electrode, the second electrode, and the third electrode is a combination of a negative electrode containing a metal, a charge positive electrode, and a discharge positive electrode. The electrode device has a shape extending in the axial direction and includes a first end portion which is one end portion in the axial direction and a second end portion which is the other end portion in the axial direction, and the chamber includes a first chamber portion provided on the first end side of the electrode device so as to accommodate at least one end portion of the third electrode therein, and a second chamber portion provided on the second end side of the electrode device so as to accommodate at least the other end portion of the third electrode therein, and the first chamber portion includes a first end face and a second end face which are positioned apart from each other in the axial direction. a first opening and a second opening are formed in the first end surface and the second end surface, respectively; the second chamber portion includes a third end surface and a fourth end surface that are spaced apart from each other in the axial direction; a third opening and a fourth opening are formed in the third end surface and the fourth end surface, respectively; the first electrode, the second electrode, and the third electrode that constitute the electrode device are inserted into the second opening and the fourth opening, respectively; and a seal member is provided between the inner circumferential surface of each of the first chamber portion and the second chamber portion and the outer circumferential surface of the third electrode to seal the gap therebetween. do. [Effects of the Invention]
[0007] According to the metal-air battery system of the present disclosure, by arranging the electrodes so that their cross sections are concentric, a difference in the area of the inner and outer electrodes can be obtained, making it possible to reduce the current density of the outer electrodes during operation compared to the central electrodes. By utilizing this effect and arranging electrodes that require reduced resistance loss on the outer side, the resistance of the system as a whole can be reduced, allowing for efficient charging and discharging, and also enabling the storage of electricity by circulating the electrolyte solution through the cells. [Brief explanation of the drawings]
[0008] [Figure 1] FIG. 1 is a schematic diagram illustrating the configuration of a metal-air battery system according to a first embodiment of the present disclosure. [Figure 2] FIG. 2 is a schematic diagram illustrating a configuration of a modified example of the metal-air battery system according to the first embodiment of the present disclosure. [Figure 3] FIG. 1 is a cross-sectional view showing a configuration of a three-electrode cell of a metal-air battery system according to a first embodiment of the present disclosure. [Figure 4] FIG. 2 is a cross-sectional view showing a configuration of a three-electrode cell of a metal-air battery system according to a second embodiment of the present disclosure. [Figure 5] FIG. 10 is a cross-sectional view showing the configuration of a three-electrode cell of a metal-air battery system according to a third embodiment of the present disclosure. [Figure 6] FIG. 10 is a cross-sectional view schematically illustrating the configuration of a three-electrode cell of a modified example of a metal-air battery system according to Embodiment 3 of the present disclosure. [Figure 7] FIG. 10 is a schematic diagram illustrating a configuration of a portion of another modified example of a metal-air battery system according to the third embodiment of the present disclosure. [Figure 8] FIG. 10 is a cross-sectional view showing the configuration of a three-electrode cell of a metal-air battery system according to a fourth embodiment of the present disclosure. [Figure 9] FIG. 10 is a cross-sectional view showing a configuration of a three-electrode cell of a modified example of a metal-air battery system according to Embodiment 4 of the present disclosure. [Figure 10] FIG. 10 is a cross-sectional view showing the configuration of a three-electrode cell of a metal-air battery system according to a fifth embodiment of the present disclosure. [Figure 11] FIG. 10 is a cross-sectional view showing the configuration of a three-electrode cell of a metal-air battery system according to a sixth embodiment of the present disclosure. DETAILED DESCRIPTION OF THE INVENTION
[0009] Hereinafter, a metal-air battery system according to an embodiment of the present disclosure will be described with reference to the drawings. The embodiment described below shows one aspect of the present disclosure, does not limit the present disclosure, and can be modified as desired within the scope of the technical concept of the present disclosure.
[0010] (Embodiment 1) <Configuration of the metal-air battery system according to the first embodiment of the present disclosure> 1, a metal-air battery system 1 according to a first embodiment of the present disclosure includes a cylindrical three-electrode cell 2. To circulate an electrolyte solution inside the cell 2, both ends of an electrolyte solution circulation line 3 are connected to the cell 2, and the circulation line 3 is provided with an electrolyte solution tank 4 for storing the electrolyte solution and a pump 5.
[0011] The electrolyte can be either an aqueous electrolyte in which an electrolyte is dissolved in water, or a non-aqueous electrolyte in which an electrolyte is dissolved in a non-aqueous solution such as an organic solvent. Examples of aqueous electrolytes include aqueous solutions containing hydroxides, chlorides, phosphates, borates, sulfates, etc. of potassium, sodium, lithium, barium, magnesium, etc. as electrolytes. In other words, any indicator salt that can provide the electrical conductivity of an aqueous solution can be used as the electrolyte. Examples of non-aqueous electrolytes include those in which an indicator salt such as an alkali metal is dissolved in a liquid such as a cyclic or chain carbonate, a cyclic or chain ester, a cyclic or chain ether, a sulfone compound, or an ionic liquid.
[0012] The cell 2 is equipped with an electrode device 10 having a shape extending in the axial direction, which includes a first electrode 11, a cylindrical second electrode 12 provided radially outside the first electrode 11 so as to surround the first electrode 11, and a cylindrical third electrode 13 provided radially outside the second electrode so as to surround the second electrode 12. Here, "surrounding" means that the second electrode 12 and the third electrode 13 respectively accommodate at least a portion of the first electrode 11 and the second electrode 12 in the longitudinal direction. In other words, the first electrode 11, the second electrode 12, and the third electrode 13 are arranged so that their cross sections perpendicular to their axial direction are concentric (or concentric if these electrodes are cylindrical). In embodiment 1, the first electrode 11 is a negative electrode 11a, the second electrode 12 is a charging positive electrode 12a used together with the negative electrode 11a during charging of the metal-air battery system 1, and the third electrode 13 is a discharging positive electrode 13a used together with the negative electrode 11a during discharging of the metal-air battery system 1.
[0013] The negative electrode 11a may be a cylindrical electrode made of a metal, such as zinc, or may be an electrode made of another metal, such as stainless steel or aluminum, with zinc plated on its surface. In the latter case, it is sufficient that at least the outer surface of the negative electrode 11a facing the charging positive electrode 12a is plated with zinc. The metal contained in the negative electrode 11a is not limited to zinc. Depending on the type of electrolyte (e.g., aqueous electrolyte / non-aqueous electrolyte), iron, aluminum, lithium, sodium, potassium, copper, magnesium, or alloys thereof may be used. The charging positive electrode 12a may be a cylindrical electrode made of a non-oxidizing porous metal material, such as nickel, a nickel alloy, or stainless steel, in a meshed form.
[0014] The discharge positive electrode 13a may have a three-layer structure including a porous outermost layer through which oxygen can diffuse, a porous intermediate layer made of a metal such as nickel, and an innermost layer in which an oxygen reduction catalyst is supported on a conductive material such as carbon. As the oxygen reduction catalyst, a catalyst containing platinum as its active component (e.g., platinum-supported carbon) may be used in an acidic solution environment. In an alkaline solution environment, a catalyst containing a 3d transition metal such as iron, manganese, nickel, or cobalt or its oxide as its active component may be used. Other catalysts containing ruthenium, silver, gold, or iridium as their active component may also be used in both acidic and alkaline solutions. Furthermore, catalysts containing organic metal complexes, carbon fibers (e.g., carbon nanotubes), or nitrogen carbides as active components may also be used. This configuration allows the electrode areas of the charge positive electrode 12a and the discharge positive electrode 13a to be larger than those of the negative electrode 11a, thereby reducing the current density during charging and discharging compared to the negative electrode 11a. This is expected to have the effect of relatively reducing loss due to the resistance of the charge positive electrode 12a and the discharge positive electrode 13a.
[0015] The metal-air battery system 1 may further include a switching device 7. The negative electrode 11a is electrically connected to an AC-DC converter 6, and the charging positive electrode 12a and the discharging positive electrode 13a are connected to the AC-DC converter 6 via the switching device 7, which is switchable so that either one of them is energized to the AC-DC converter 6, i.e., so that the negative electrode 11a is electrically connected to either the charging positive electrode 12a or the discharging positive electrode 13a. The AC-DC converter 6 may be electrically connected to each of a load 8 and an AC power source 9. Note that if a DC power source is used instead of the AC power source 9 and the load 8 is operated with DC current, the AC-DC converter 6 is not necessary.
[0016] The configuration of the switching device 7 is not particularly limited. For example, the switching device 7 may be configured with a first switch 7c that electrically connects and disconnects the discharge positive electrode 13a and the negative electrode 11a, and a second switch 7d that electrically connects and disconnects the negative electrode 11a and the charge positive electrode 12a (hereinafter referred to as a "switch-type switching device 7"). The first switch 7c and the second switch 7d are not limited to mechanical switches and may be semiconductor switches. Also, as shown in FIG. 2, the switching device 7 may be configured with a first diode 7a that allows current to flow from the discharge positive electrode 13a to the negative electrode 11a, and a second diode 7b that allows current to flow from the negative electrode 11a to the charge positive electrode 12a (hereinafter referred to as a "diode-type switching device 7"). The diode-type switching device 7 is superior in durability and cost to a switching device 7 configured with a mechanical switch, and is also superior in cost to a switching device 7 configured with a semiconductor switch. Note that, since no discharge reaction occurs in the charging positive electrode 12 while the charging positive electrode 12a is immersed in the electrolyte, the diode 7b does not need to be provided (the switching device 7 is composed of only the diode 7a). Furthermore, if there is no need to consider the reaction at the discharging positive electrode 13a during charging, the diode 7a does not need to be provided either (i.e., a configuration in which the switching device 7 is not provided).
[0017] 3, the cell 2 includes a chamber 20 that houses the electrode device 10. The chamber 20 includes a first chamber portion 21 provided on the first end 10a side, which is one end of the electrode device 10, to house at least one end 13d1 of the third electrode 13 therein, and a second chamber portion 22 provided on the second end 10b side, which is the other end of the electrode device 10, to house at least the other end 13d2 of the third electrode 13 therein.
[0018] The first chamber portion 21 includes a first end face 21a and a second end face 21b spaced apart from each other in the axial direction of the cell 2, and a first opening 23a and a second opening 23b are formed in the first end face 21a and the second end face 21b, respectively. The second chamber portion 22 includes a third end face 22a and a fourth end face 22b spaced apart from each other in the axial direction of the cell 2, and a third opening 24a and a fourth opening 24b are formed in the third end face 22a and the fourth end face 22b, respectively.
[0019] The first electrode 11, the second electrode 12, and the third electrode 13 are inserted into the second opening 23b and the fourth opening 24b, respectively, and a sealing member 25 is provided between the inner circumferential surface of each of the first chamber portion 21 and the second chamber portion 22 and the outer circumferential surface of the third electrode 13 to seal the gap between them. The sealing member 25 can prevent leakage of the electrolyte from the chamber 20 between the first opening 23a and the third opening 24a. The sealing member 25 may be an adhesive, a heat-shrinkable tube, a heat seal, resin welding, or the like.
[0020] A diaphragm 26 is provided on the inner peripheral surface of the discharge positive electrode 13a, i.e., the surface facing the negative electrode 11a. The diaphragm 26 can be an anion exchange membrane or a microporous membrane formed from a polymer or solid oxide. The anion exchange membrane is not particularly limited in its configuration, but a high-performance membrane with high ionic conductivity and strength is preferably used. The microporous membrane is also not particularly limited in its configuration, and commercially available membranes for various applications can be used. When using an aqueous electrolyte, it is preferable to use a microporous membrane suitable for aqueous solutions. However, any resin microporous membrane can be used if the surface is subjected to a hydrophilic treatment, such as modifying the surface with hydrophilic groups, adding a surfactant to the surface, or compounding the surface with oxide particles.
[0021] <Operation of the metal-air battery system according to the first embodiment of the present disclosure> Next, the operation of the metal-air battery system 1 will be described with reference to Figures 1 to 3. First, the operation of flowing current to the load 8 due to discharge of the metal-air battery system 1 will be described. With the switching device 7 operated to electrically connect the negative electrode 11a to the discharge positive electrode 13a, the pump 5 is started and the electrolyte is supplied from the electrolyte tank 4 to the cell 2 via the circulation line 3. After passing through the cell 2, the electrolyte is circulated through the circulation line 3 by returning to the electrolyte tank 4 via the circulation line 3.
[0022] In the cell 2, the electrolyte solution that flows into the first chamber 21 through the first opening 23a flows through the first end 10a of the electrode device 10 into the flow path formed between the outer peripheral surface of the negative electrode 11a and the inner peripheral surface of the discharge positive electrode 13a, i.e., the flow path formed between the outer peripheral surface of the negative electrode 11a and the inner peripheral surface of the charge positive electrode 12a, and the flow path formed between the outer peripheral surface of the charge positive electrode 12a and the inner peripheral surface of the discharge positive electrode 13a, and flows through these flow paths. The electrolyte solution that flows through these flow paths flows from these flow paths through the second end 10b of the electrode device 10 to the second chamber 22 and then flows out of the second chamber 22 through the third opening 24a.
[0023] While the electrolyte flows through the cell 2 in this manner, the following reaction occurs at the negative electrode 11a and the discharge positive electrode 13a. At the negative electrode 11a, a metal contained in the negative electrode 11a, such as zinc, reacts with hydroxide ions in the electrolyte to generate zincate ions, and electrons are released to the negative electrode 11a and then flow to the discharge positive electrode 13a. At the discharge positive electrode 13a, oxygen contained in the air outside the cell 2 diffuses through the outermost and intermediate layers, and the oxygen reduction catalyst in the innermost layer causes a reaction between the air, water in the electrolyte, and the electrons that have flowed to the discharge positive electrode 13a to generate hydroxide ions. The generated hydroxide ions are used in the above reaction at the negative electrode 11a.
[0024] When an anion exchange membrane (diaphragm 26) is provided on the inner circumferential surface of the discharge positive electrode 13a, i.e., on the innermost layer of the discharge positive electrode 13a (a layer in which an oxygen reduction catalyst is supported on a conductive material), oxygen molecules react at the reaction interface (three-phase interface) where the oxygen reduction catalyst, conductive material, and ion conductor come into contact, generating hydroxide ions. The generated hydroxide ions migrate into the electrolyte through the ion conductor. In this way, the reaction interface between the oxygen reduction catalyst and the ionomer expands and resistance decreases. Furthermore, providing the diaphragm 26 on the inner circumferential surface of the discharge positive electrode 13a can prevent the electrolyte from leaking to the outside of the cell 2 through the discharge positive electrode 13a or clogging the intermediate layer and outermost layer of the discharge positive electrode 13a. Furthermore, by preventing carbon dioxide contained in the air from mixing with the electrolyte, it can prevent carbonate precipitation from the electrolyte and clogging the intermediate layer and outermost layer of the discharge positive electrode 13a. Therefore, it is possible to reduce the loss of overvoltage due to the reaction in the discharge positive electrode 13a, and to suppress the alteration, deterioration, and leakage of the electrolyte.
[0025] This operation causes electrons to flow from the negative electrode 11a to the discharge positive electrode 13a, resulting in a DC current flowing from the discharge positive electrode 13a to the negative electrode 11a. The AC-DC converter 6 converts this DC current into an AC current and supplies the AC current to the load 8.
[0026] Next, the charging operation of the metal-air battery system 1 will be described. The switching device 7 is operated to electrically connect the negative electrode 11a to the charging positive electrode 12a, and the electrolyte is circulated in this state. AC current from the AC power source 9 is converted to DC current by the AC-DC converter 6, and the DC current flows to the charging positive electrode 12a. That is, electrons flow to the negative electrode 11a. At the negative electrode 11a, zinc ions in the electrolyte receive electrons, causing zinc to deposit on the negative electrode 11a, and the metal-air battery system 1 is charged.
[0027] If zinc were to deposit uniformly on the surface of the negative electrode 11a during this charging process, no problems would arise. However, in reality, needle-like dendrites may form. As the dendrites grow, they may connect the negative electrode 11a and the charging positive electrode 12a. This causes an internal short circuit, causing the battery voltage to drop to 0V, making charging impossible.
[0028] If such an internal short circuit occurs, if a switching device 7 is provided, the first switch 7c is closed and the second switch 7d is opened, thereby electrically connecting the negative electrode 11a to the discharge positive electrode 13a and switching from the charge state to the discharge state. Even if an internal short circuit occurs between the negative electrode 11a and the charge positive electrode 12a due to dendrites, the negative electrode 11a and the charge positive electrode 12a are electrically separated, so discharge using the negative electrode 11a and the discharge positive electrode 13a is possible. During discharge, zinc is dissolved from the negative electrode 11a into the electrolyte as zinc ions, eliminating the internal short circuit.
[0029] In this way, by arranging the negative electrode 11a, the charge positive electrode 12a, and the discharge positive electrode 13a so that their cross sections are concentric, a difference in electrode area between the inside and outside can be obtained, making it possible to reduce the current density during operation of the charge positive electrode 12a and the discharge positive electrode 13a arranged on the outside compared to the central negative electrode 11a. By utilizing this effect and arranging the charge positive electrode 12a and the discharge positive electrode 13a, which require a reduction in resistance loss, on the outside, the resistance of the system can be reduced, allowing for efficient charging and discharging, and also enabling the storage of power by circulating the electrolyte to the cell.
[0030] Furthermore, by providing a switch-type switching device 7, charging can be performed using the negative electrode 11a and the charging positive electrode 12a, and discharging can be performed using the negative electrode 11a and the discharging positive electrode 13a, so that discharging can be performed even if an internal short circuit occurs during charging, allowing charging and discharging to be performed without any problems, and power can be stored because the electrolyte is circulated and supplied to the cell 2. On the other hand, by providing either a switch-type or diode-type switching device 7, the risk of reverse reactions occurring at the positive electrode during charging and discharging can be reduced, and improvements in efficiency and lifespan can be expected.
[0031] <Modifications of the metal-air battery system according to the first embodiment of the present disclosure> In the first embodiment, the negative electrode 11a is not cylindrical, but the negative electrode 11a may also be cylindrical like the charge positive electrode 12a and the discharge positive electrode 13a. In this case, since the electrolyte also flows inside the negative electrode 11a, it is preferable that zinc is also contained on the inner circumferential surface of the negative electrode 11a.
[0032] (Embodiment 2) Next, a metal-air battery system according to embodiment 2 will be described. The metal-air battery system according to embodiment 2 is different from embodiment 1 in that the configuration of the electrode device 10 is changed. In embodiment 2, the same components as those in embodiment 1 are given the same reference numerals, and detailed description thereof will be omitted.
[0033] <Configuration of a metal-air battery system according to embodiment 2 of the present disclosure> As shown in FIG. 4, in the second embodiment of the present disclosure, a cell 2 includes an electrode device 10 having a charging positive electrode 11b as a first electrode 11, a negative electrode 12b as a second electrode 12, and a discharging positive electrode 13a as a third electrode 13. The negative electrode 12b is cylindrical, and zinc is contained not only on the outer circumferential surface but also on the inner circumferential surface of the negative electrode 12b. As in the first embodiment, the charging positive electrode 11b may be a cylindrical electrode manufactured in a meshed shape. However, in this second embodiment, a non-mesh, non-cylindrical, i.e., rod-shaped electrode is described. The other configurations are the same as those in the first embodiment.
[0034] <Operation of the metal-air battery system according to the second embodiment of the present disclosure> The operation of embodiment 2 is the same as that of embodiment 1. That is, in the metal-air battery system 1 according to embodiment 2, charging is performed using the negative electrode 12b and the charge positive electrode 11b, and discharging is performed using the negative electrode 12b and the discharge positive electrode 13a, so that discharging can be performed even if an internal short circuit occurs during charging. In embodiment 2, the charge positive electrode 11b, the negative electrode 12b, and the discharge positive electrode 13a are also arranged concentrically in cross section, so that the same effects as those of embodiment 1 can be obtained.
[0035] In the second embodiment, a measuring device is provided to measure the potential difference between the negative electrode 12b and the discharge positive electrode 13a, and by monitoring this potential difference during charging, it is possible to detect the occurrence of an internal short circuit between the negative electrode 12b and the discharge positive electrode 13a. When an internal short circuit between the negative electrode 12b and the discharge positive electrode 13a is detected, the internal short circuit can be resolved by discharging using the negative electrode 12b and the charge positive electrode 11b.
[0036] (Embodiment 3) Next, a metal-air battery system according to embodiment 3 will be described. The metal-air battery system according to embodiment 3 is different from embodiment 1 in that the configuration of the electrode device 10 is changed. In embodiment 3, the same components as those in embodiment 1 are given the same reference numerals, and detailed description thereof will be omitted.
[0037] <Configuration of a metal-air battery system according to embodiment 3 of the present disclosure> As shown in FIG. 5, in Embodiment 3 of the present disclosure, cell 2 includes electrode device 10 having discharge positive electrode 11c as first electrode 11, charge positive electrode 12a as second electrode 12, and negative electrode 13c as third electrode 13. Discharge positive electrode 11c, charge positive electrode 12a, and negative electrode 13c all have a cylindrical shape. Diaphragm 26 is provided on the outer peripheral surface of discharge positive electrode 11c, i.e., the surface facing negative electrode 13c. However, in Embodiment 3 (and also in Embodiment 4 described below), the three-layer structure of discharge positive electrode 11c differs from that of discharge positive electrode 13a of Embodiments 1 and 2 (see FIG. 2), in that a layer in which an oxygen reduction catalyst is supported on a conductive material such as carbon is the outermost layer on the outer peripheral surface, and a porous layer through which oxygen can diffuse is the innermost layer on the inner peripheral surface.
[0038] An isolating member 30 is provided inside each of the first chamber portion 21 and the second chamber portion 22. The isolating member 30 separates the flow of the electrolyte in the chamber 20 into a first flow F1 flowing inside the discharge positive electrode 11c and a second flow F2 flowing outside the discharge positive electrode 11c. When provided inside the first chamber portion 21 and the second chamber portion 22, the isolating member 30 has a cylindrical shape with end faces 31 and 32 at both ends in the axial direction of the cell 2, and openings 31a and 32a formed in the end faces 31 and 32, respectively. The discharge positive electrode 11c is inserted into one opening 32a, and a sealing member 33 such as an O-ring is provided between the inner peripheral edge of opening 31b and the outer peripheral surface of the discharge positive electrode 11c. The other opening 31a faces the first opening 23a or the third opening 24a.
[0039] Of the first chamber section 21 and the second chamber section 22, the first chamber section 21 is located upstream in the flow direction of the electrolyte flowing through the cell 2. An oxygen-containing gas supplying device 34 is provided in the isolating member 30, which supplies an oxygen-containing gas such as air to the electrolyte in the first flow F1 inside the isolating member 30. As the oxygen-containing gas supplying device 34, for example, a bubbling device having an oxygen-containing gas supplying line 35 with one end located inside the isolating member 30 and the other end opening to the outside of the cell 2 or connected to a cylinder of oxygen-containing gas or the like, and a compressor 36 provided on the oxygen-containing gas supplying line 35 can be used. The other configurations are the same as those of the first embodiment.
[0040] <Operation of the metal-air battery system according to the third embodiment of the present disclosure> Next, the operation of the metal-air battery system 1 according to Embodiment 3 will be described, focusing on the differences from the operation of the metal-air battery system 1 according to Embodiment 1. When the metal-air battery system 1 discharges, within the cell 2, the electrolyte that has flowed into the first chamber portion 21 through the first opening 23a is separated into a first flow F1 that is the flow of electrolyte that has entered the inside of the isolation member 30 through the opening 31a, and a second flow F2 that is the flow of electrolyte outside the isolation member 30.
[0041] An oxygen-containing gas pressurized by a compressor 36 is supplied to the interior of the separator 30 via an oxygen-containing gas supply line 35, whereby the oxygen-containing gas is bubbled through the electrolyte. As a result, the electrolyte with dissolved oxygen flows as a first flow F1 through the interior of the discharge positive electrode 11c. Meanwhile, the electrolyte outside the separator 30 flows as a second flow F2 through a flow path formed between the outer circumferential surface of the discharge positive electrode 11c and the inner circumferential surface of the charge positive electrode 12a, and a flow path formed between the outer circumferential surface of the charge positive electrode 12a and the inner circumferential surface of the negative electrode 13c.
[0042] The electrolyte in the first flow F1 flows from inside the discharge positive electrode 11c into the separator 30 provided in the second chamber 22 and then flows out from the separator 30 through the opening 31a. Meanwhile, the electrolyte in the second flow F2 flows into the second chamber 22 through the second end 10b of the electrode device 10. The electrolyte formed by joining the first flow F1 and the second flow F2 in the second chamber 22 flows out from the second chamber 22 through the third opening 24a. However, for the purpose of separating the gas contained in the first flow F1, the first flow F1 and the second flow F2 may be allowed to flow out from the second chamber 22 separately without joining.
[0043] While the electrolyte flows through cell 2 in this manner, reactions similar to those described in embodiment 1 occur in negative electrode 13c and discharge positive electrode 11c. However, in embodiment 3, oxygen contained in the electrolyte flowing through discharge positive electrode 11c diffuses through the innermost and intermediate layers of discharge positive electrode 11c, and the oxygen reduction catalyst in the outermost layer causes a reaction between air, water in the electrolyte in second flow F2, and electrons that have flowed to discharge positive electrode 11c to produce hydroxide ions. The remaining operations are the same as in embodiment 1, and the effects obtained by providing diaphragm 26 are also the same as in embodiment 1.
[0044] In the third embodiment, as in the first embodiment, the discharge positive electrode 11c, the charge positive electrode 12a, and the negative electrode 13c are arranged concentrically in cross section. Also, as in the first embodiment, when the metal-air battery system 1 is charged, electrons flow to the negative electrode 13c, and zinc ions in the electrolyte receive the electrons at the negative electrode 13c, causing zinc to deposit on the negative electrode 13c. Also, as in the first embodiment, when the metal-air battery system 1 is charged, even if an internal short circuit occurs because a dendrite connects the negative electrode 13c and the charge positive electrode 12a, discharge using the negative electrode 13c and the discharge positive electrode 11c is possible. Therefore, in the third embodiment, the same effects as those obtained in the first embodiment can be obtained.
[0045] In the third embodiment, the third electrode 13 arranged on the outermost side of the electrode device 10 is the negative electrode 13c, and the area of the negative electrode is relatively larger than when the first electrode 11 or the second electrode 12 is the negative electrode. Therefore, the amount of zinc deposited on the negative electrode 13c in the third embodiment is larger than in the first embodiment, and the electricity storage capacity can be increased compared to the first embodiment.
[0046] <Modification of the metal-air battery system according to the third embodiment of the present disclosure> As shown in Fig. 6, in a cell 2 in a modified example of the metal-air battery system 1 according to the third embodiment, only the discharge positive electrode 11c of the electrode device 10 is inserted into the first opening 23a and the third opening 24a. That is, both ends of the discharge positive electrode 11c extend from the first opening 23a and the third opening 24a to the outside of the first chamber portion 21 and the second chamber portion 22. The downstream end of the oxygen-containing gas supply line 35 is connected to the end of the discharge positive electrode 11c extending from the first opening 23a to the outside of the first chamber portion 21. The other configurations are the same as those of the third embodiment, except that a separator 30 (see Fig. 4) is not provided.
[0047] In this modification of the third embodiment, an oxygen-containing gas flow F3 flows through the inside of the discharge positive electrode 11c, isolated from the second flow F2. In this embodiment, while the electrolyte and the oxygen-containing gas flow through the cell 2, discharge occurs through the same reaction as in the third embodiment. The charging operation is also the same as in the third embodiment. Therefore, this modification can also achieve the same effects as in the third embodiment.
[0048] In this modification of the third embodiment, an oxygen-containing gas is circulated through the discharge positive electrode 11c, but the present invention is not limited to this. As shown in FIG. 7, an electrolyte solution having dissolved oxygen may be circulated through the discharge positive electrode 11c as a first flow F1. In this modification, both ends of a circulation line 40 through which the electrolyte solution circulates are connected to both ends of the discharge positive electrode 11c, and the circulation line 40 is provided with an electrolyte tank 41 for storing the electrolyte solution and a pump 42. The circulation line 40, the electrolyte tank 41, and the pump 42 are provided separately from the circulation line 3 (see FIG. 1), the electrolyte tank 4 (see FIG. 1), and the pump 5 (see FIG. 1), respectively.
[0049] The electrolyte tank 41 is provided with a bubbling device 43 that supplies an oxygen-containing gas while bubbling it into the electrolyte stored in the electrolyte tank 41. This allows the electrolyte of the first flow F1 to be an electrolyte having oxygen dissolved therein. As described above, in this modification of the third embodiment, either an oxygen-containing gas or an oxygen-containing electrolyte may flow inside the discharge positive electrode 11c. That is, an oxygen-containing fluid can be circulated inside the discharge positive electrode 11c. In this modification, the configuration including the oxygen-containing gas supply line 35 and the compressor 36, or the configuration including the circulation line 40, the electrolyte tank 41, the pump 42, and the bubbling device 43, constitutes an oxygen-containing fluid supply device 37 that circulates an oxygen-containing fluid inside the discharge positive electrode 11c.
[0050] (Embodiment 4) Next, a metal-air battery system according to embodiment 4 will be described. The metal-air battery system according to embodiment 4 is different from embodiment 3 in that the configuration of the electrode device 10 is changed. In embodiment 4, the same components as those in embodiment 3 are denoted by the same reference numerals, and detailed description thereof will be omitted.
[0051] <Configuration of a metal-air battery system according to embodiment 4 of the present disclosure> As shown in Fig. 8, in the third embodiment of the present disclosure, a cell 2 includes an electrode device 10 having a discharge positive electrode 11c as a first electrode 11, a negative electrode 12b as a second electrode 12, and a charge positive electrode 13b as a third electrode 13. The discharge positive electrode 11c, the negative electrode 12b, and the charge positive electrode 13b all have a cylindrical shape. In the fourth embodiment, the charge positive electrode 13b is described as a non-mesh cylindrical electrode, rather than the cylindrical electrode manufactured in a mesh shape as in the first embodiment. The other configurations are the same as those of the third embodiment.
[0052] <Operation of the metal-air battery system according to the fourth embodiment of the present disclosure> The operation of embodiment 4 is the same as that of embodiment 3, and therefore the same operational effects as those of embodiment 3 can be obtained. Also, in embodiment 4, the charging positive electrode 11b, the negative electrode 12b, and the discharging positive electrode 13a are arranged concentrically in cross section, and therefore the same operational effects as those of embodiment 1 can be obtained.
[0053] As in the second embodiment, in the fourth embodiment, a measuring device for measuring the potential difference between the negative electrode 12b and the discharge positive electrode 11c is provided, and by monitoring this potential difference during charging, it is possible to detect the occurrence of an internal short circuit between the negative electrode 12b and the discharge positive electrode 11c. When an internal short circuit between the negative electrode 12b and the discharge positive electrode 11c is detected, the internal short circuit can be resolved by discharging using the negative electrode 12b and the charge positive electrode 13b.
[0054] <Modification of the metal-air battery system according to the fourth embodiment of the present disclosure> As in the third embodiment, the fourth embodiment can be modified such that the first flow F1 of electrolyte solution flowing inside the discharge positive electrode 11c is replaced with a flow F3 of oxygen-containing gas, as shown in FIG. 9. The configuration shown in FIG. 7 can also be applied to this modification to make the first flow F1 of electrolyte solution having dissolved oxygen. When a mesh-shaped charge positive electrode 13b is used in the fourth embodiment, a diaphragm 26 can be provided on the inner peripheral surface of the charge positive electrode 13b to prevent the electrolyte solution from leaking from the cell 2 through the charge positive electrode 13b.
[0055] (Embodiment 5) Next, a metal-air battery system according to embodiment 5 will be described. The metal-air battery system according to embodiment 5 is different from embodiment 1 in that the configuration of the electrode device 10 is changed. In embodiment 5, the same components as those in embodiment 1 are given the same reference numerals, and detailed description thereof will be omitted.
[0056] <Configuration of a metal-air battery system according to embodiment 5 of the present disclosure> 10 , in the fifth embodiment of the present disclosure, the cell 2 includes an electrode device 10 having a negative electrode 11a as a first electrode 11, a discharge positive electrode 12c as a second electrode 12, and a charge positive electrode 13b as a third electrode 13. A diaphragm 26 is provided on the inner circumferential surface of the discharge positive electrode 12c, i.e., the surface facing the negative electrode 11a.
[0057] An isolating member 30 is provided inside each of the first chamber portion 21 and the second chamber portion 22. The isolating member 30 separates the flow of the electrolyte in the chamber 20 into a first flow F1 that flows through a flow path between the outer peripheral surface of the discharge positive electrode 12c and the inner peripheral surface of the charge positive electrode 13b, and a second flow F2 that flows through a flow path between the outer peripheral surface of the negative electrode 11a and the inner peripheral surface of the discharge positive electrode 12c. When provided inside the first chamber portion 21 and the second chamber portion 22, the isolating member 30 has a cylindrical shape with end faces 31 and 32 at both ends in the axial direction of the cell 2, and openings 31a and 32a formed in the end faces 31 and 32, respectively. The discharge positive electrode 12c is inserted into one opening 32a, and a sealing member 33, such as an O-ring, is provided between the inner peripheral edge of the opening 32a and the outer peripheral surface of the discharge positive electrode 12c. The other opening 31a faces the first opening 23a or the third opening 24a.
[0058] Of the first chamber section 21 and the second chamber section 22, an oxygen-containing gas supplying device 34 is provided in the first chamber section 21, which is located upstream in the flow direction of the electrolyte flowing through the cell 2, to supply an oxygen-containing gas such as air to the electrolyte in the first flow F1 outside the separating member 30. The configuration of the oxygen-containing gas supplying device 34 in the fifth embodiment is the same as that in the third embodiment. The other configurations are the same as those in the first embodiment.
[0059] <Operation of the metal-air battery system according to the fifth embodiment of the present disclosure> The operation of the metal-air battery system 1 according to embodiment 5 is the same as that of embodiment 3, except that the first flow F1 is a flow that flows through a flow path between the outer peripheral surface of the discharge positive electrode 12c and the inner peripheral surface of the charge positive electrode 13b, and the second flow F2 is a flow that flows through a flow path between the outer peripheral surface of the negative electrode 11a and the inner peripheral surface of the discharge positive electrode 12c. Therefore, embodiment 5 also achieves the same effects as embodiment 3. Furthermore, embodiment 5 also achieves the same effects as embodiment 1, because the negative electrode 11a, the discharge positive electrode 12c, and the charge positive electrode 13b are arranged concentrically in cross section.
[0060] In embodiment 5, the first electrode 11 is the negative electrode 11a and the third electrode 13 is the charging positive electrode 13b, and therefore the distance between the negative electrode 11a and the charging positive electrode 13b is greater than in embodiments 1 to 4. Therefore, in embodiment 5, an internal short circuit is less likely to occur during charging of the metal-air battery system 1 than in embodiments 1 to 4.
[0061] As in the second and fourth embodiments, in the fifth embodiment, a measuring device for measuring the potential difference between the negative electrode 11a and the discharge positive electrode 12c is provided, and by monitoring this potential difference during charging, it is possible to detect the occurrence of an internal short circuit between the negative electrode 11a and the discharge positive electrode 12c. When an internal short circuit between the negative electrode 11a and the discharge positive electrode 12c is detected, the internal short circuit can be resolved by discharging using the negative electrode 11a and the charge positive electrode 13b.
[0062] In the fifth embodiment, the diaphragm 26 is provided on the inner peripheral surface of the discharge positive electrode 12c, which prevents oxygen contained in the electrolytic solution of the first flow F1 from migrating to the electrolytic solution of the second flow F2 via the discharge positive electrode 12c, thereby preventing the formation of a high-resistance layer of zinc oxide in the electrolytic solution of the second flow F2.
[0063] <Modification of the metal-air battery system according to the fifth embodiment of the present disclosure> Also in the fifth embodiment, when a mesh-shaped charging positive electrode 13b is used, by providing a diaphragm 26 also on the inner peripheral surface of the charging positive electrode 13b, leakage of the electrolyte from the cell 2 through the charging positive electrode 13b can be suppressed.
[0064] (Embodiment 6) Next, a metal-air battery system according to embodiment 6 will be described. The metal-air battery system according to embodiment 6 is obtained by changing the configuration of the electrode device 10 compared to embodiment 5. In embodiment 6, the same components as those in embodiment 5 are given the same reference numerals, and detailed description thereof will be omitted.
[0065] <Configuration of a metal-air battery system according to embodiment 6 of the present disclosure> As shown in Fig. 11, in Embodiment 6 of the present disclosure, a cell 2 includes an electrode device 10 having a charge positive electrode 11b as a first electrode 11, a discharge positive electrode 12c as a second electrode 12, and a negative electrode 13c as a third electrode 13. A diaphragm 26 is provided on the outer peripheral surface of the discharge positive electrode 12c, i.e., the surface facing the negative electrode 13c. The three-layer structure of the discharge positive electrode 12c is the same as the three-layer structure of the discharge positive electrode 11c of Embodiments 3 and 4 (see Fig. 5).
[0066] An isolating member 30 is provided inside each of first chamber 21 and second chamber 22. The isolating member 30 separates the flow of the electrolyte in chamber 20 into a first flow F1 that flows through a flow path between the outer peripheral surface of charge positive electrode 11b and the inner peripheral surface of discharge positive electrode 12c, and a second flow F2 that flows through a flow path between the outer peripheral surface of discharge positive electrode 12c and the inner peripheral surface of negative electrode 13c. Of first chamber 21 and second chamber 22, first chamber 21 is located upstream in the flow direction of the electrolyte flowing through cell 2. An oxygen-containing gas supplying device 34 is provided in first chamber 21, which is located upstream in the flow direction of the electrolyte flowing through cell 2, to supply an oxygen-containing gas such as air to the electrolyte in first flow F1 inside isolating member 30. The other configurations are the same as those of the fifth embodiment.
[0067] <Operation of the metal-air battery system according to the sixth embodiment of the present disclosure> The operation of the metal-air battery system 1 according to Embodiment 6 is similar to that of Embodiment 5, and the description of the operation of Embodiment 3 applies, except that the first flow F1 is a flow that flows through a flow path between the outer peripheral surface of the charge positive electrode 11b and the inner peripheral surface of the discharge positive electrode 12c, and the second flow F2 is a flow that flows through a flow path between the outer peripheral surface of the discharge positive electrode 12c and the inner peripheral surface of the negative electrode 13c. Therefore, the effects obtained in Embodiment 3 can also be obtained in Embodiment 6. Furthermore, because the charge positive electrode 11b, the discharge positive electrode 12c, and the negative electrode 13c are arranged concentrically in cross section, the same effects as those obtained in Embodiment 1 can also be obtained in Embodiment 6.
[0068] In the same manner as in the fifth embodiment, in the sixth embodiment, the first electrode 11 is the charging positive electrode 11b and the third electrode 13 is the negative electrode 13c, and therefore the distance between the charging positive electrode 11b and the negative electrode 13c is greater than in the first to fourth embodiments. For this reason, in the sixth embodiment, an internal short circuit is less likely to occur during charging of the metal-air battery system 1 than in the first to fourth embodiments.
[0069] In the sixth embodiment, the third electrode 13 disposed on the outermost side of the electrode device 10 is the negative electrode 13c, and the area of the negative electrode is therefore relatively larger than when the first electrode 11 or the second electrode 12 is the negative electrode. As a result, the amount of zinc deposited on the negative electrode 13c in the sixth embodiment is greater than in the first embodiment, and the electricity storage capacity can be increased compared to the first embodiment.
[0070] In the same manner as in the fifth embodiment, in the sixth embodiment, a measuring device for measuring the potential difference between the negative electrode 13c and the discharge positive electrode 12c is provided, and by monitoring this potential difference during charging, it is possible to detect the occurrence of an internal short circuit between the negative electrode 13c and the discharge positive electrode 12c. When an internal short circuit between the negative electrode 13c and the discharge positive electrode 12c is detected, the internal short circuit can be resolved by discharging using the negative electrode 13c and the charge positive electrode 11b.
[0071] In the sixth embodiment, the diaphragm 26 is provided on the outer peripheral surface of the discharge positive electrode 12c, which prevents oxygen contained in the electrolytic solution of the first flow F1 from migrating to the electrolytic solution of the second flow F2 via the discharge positive electrode 12c, thereby preventing the formation of a high-resistance layer of zinc oxide in the electrolytic solution of the second flow F2.
[0072] The contents described in each of the above embodiments can be understood, for example, as follows.
[0073] [1] A metal-air battery system according to one embodiment includes: a chamber (20); an electrode device (10) housed in the chamber (20); A metal-air battery system (1) comprising a cell (2) having The electrode device (10) A first electrode (11), a cylindrical second electrode (12) provided radially outside the first electrode (11) so as to surround the first electrode (11); a cylindrical third electrode (13) provided radially outside the second electrode (12) so as to surround the second electrode (12); and configured so that an electrolyte flows between at least an outer peripheral surface of the first electrode (11) and an inner peripheral surface of the third electrode (13), The combination of the first electrode (11), the second electrode (12), and the third electrode (13) is a combination of a metal-containing negative electrode (11a, 12b, 13c), a charging positive electrode (11b, 12a, 13b), and a discharging positive electrode (11c, 12c, 13a).
[0074] According to the metal-air battery system of the present disclosure, by arranging the electrodes so that their cross sections are concentric, a difference in the area of the inner and outer electrodes can be obtained, making it possible to reduce the current density of the outer electrodes during operation compared to the central electrodes. By utilizing this effect and arranging electrodes that require reduced resistance loss on the outer side, the resistance of the system as a whole can be reduced, allowing for efficient charging and discharging, and also enabling the storage of electricity by circulating the electrolyte solution through the cells.
[0075] [2] A metal-air battery system according to another embodiment is the metal-air battery system according to [1], a switching device (7) for switching so that the negative electrode (11a, 12b, 13c) is electrically connected to either the charging positive electrode (11b, 12a, 13b) or the discharging positive electrode (11c, 12c, 13a); The switching device (7) a first switch (7c) that electrically opens and closes the connection between the discharge positive electrodes (11c, 12c, 13a) and the negative electrodes (11a, 12b, 13c); a second switch (7d) for electrically opening and closing the connection between the negative electrodes (11a, 12b, 13c) and the charging positive electrodes (11b, 12a, 13b); Equipped with.
[0076] According to this configuration, by charging using the negative electrode and the charge positive electrode and discharging using the negative electrode and the discharge positive electrode, even if an internal short circuit occurs during charging, discharging can be performed, so charging and discharging can be performed without any problems. In addition, the risk of reverse reactions occurring at the positive electrode during charging and discharging can be reduced, and improvements in efficiency and lifespan can be expected.
[0077] [3] A metal-air battery system according to yet another embodiment is the metal-air battery system according to [2], The switching device (7) includes a first diode (7a) that allows current to flow in a direction from the discharge positive electrode (11c, 12c, 13a) to the negative electrode (11a, 12b, 13c).
[0078] This configuration reduces the risk of reverse reactions occurring at the positive electrode during charging and discharging when the positive electrode is immersed in the electrolyte, and is expected to improve efficiency and lifespan. Furthermore, compared to the switching device in [2] above, a switching device with superior durability and low cost can be constructed.
[0079] [4] A metal-air battery system according to yet another embodiment is the metal-air battery system according to [3], The switching device (7) further includes a second diode (7ba) that allows current to flow in a direction from the negative electrode (11a, 12b, 13c) to the charging positive electrode (11b, 12a, 13b).
[0080] This configuration reduces the risk of reverse reactions occurring at the positive electrode during charging and discharging, and is expected to improve efficiency and lifespan. Furthermore, compared to the switching device in [2] above, a switching device with superior durability and low cost can be configured.
[0081] [5] A metal-air battery system according to another embodiment is a metal-air battery system according to any one of [1] to [4], The electrode device (10) has a shape extending in an axial direction and includes a first end (10a) which is one end in the axial direction and a second end (10b) which is the other end in the axial direction, The chamber (20) a first chamber portion (21) provided on the first end (10a) side of the electrode device (10) so as to accommodate at least one end (13d1) of the third electrode (13) therein; a second chamber portion (22) provided on the second end (10b) side of the electrode device (10) so as to accommodate at least the other end (13d2) of the third electrode (13) therein; Equipped with the first chamber portion (21) includes a first end surface (21a) and a second end surface (21b) spaced apart from each other in the axial direction, and a first opening (23a) and a second opening (23b) are formed in the first end surface (21a) and the second end surface (21b), respectively; the second chamber portion (22) includes a third end surface (22a) and a fourth end surface (22b) spaced apart from each other in the axial direction, and a third opening (24a) and a fourth opening (24b) are formed in the third end surface (22a) and the fourth end surface (22b), respectively; The first electrode (11), the second electrode (12), and the third electrode (13) that constitute the electrode device (10) are inserted into the second opening (23b) and the fourth opening (24b), respectively, and a sealing member (25) that seals the gap between the inner circumferential surface of each of the first chamber portion (21) and the second chamber portion (22) and the outer circumferential surface of the third electrode (13) is provided.
[0082] According to this configuration, the spaces between the inner surfaces of the first and second chambers and the outer surface of the third electrode are sealed by sealing members provided between these surfaces, thereby preventing leakage of electrolyte from the chambers between the first opening and the third opening.
[0083] [6] A metal-air battery system according to yet another embodiment is the metal-air battery system according to [5], The third electrode (13) is the discharge positive electrode (13a).
[0084] With this configuration, even if a short circuit occurs between the negative electrode and the charging positive electrode during charging, discharging is possible between the negative electrode and the discharging positive electrode.
[0085] [7] A metal-air battery system according to yet another embodiment is the metal-air battery system according to [5], The first electrode (11) is the discharge positive electrode (11c) having a cylindrical shape, an isolating member (30) is provided inside each of the first chamber portion (21) and the second chamber portion (22) to separate the flow of the electrolyte in the chamber (20) into a first flow (F1) flowing inside the discharge positive electrode (11c) and a second flow (F2) flowing outside the discharge positive electrode (11c); The metal-air battery system further comprises an oxygen-containing gas supply device (34) that supplies an oxygen-containing gas to the electrolytic solution of the first flow (F1).
[0086] With this configuration, even if a short circuit occurs between the negative electrode and the charging positive electrode during charging, discharging is possible between the negative electrode and the discharging positive electrode.
[0087] [8] A metal-air battery system according to yet another embodiment is the metal-air battery system according to [5], The first electrode (11) is the discharge positive electrode (11c) having a cylindrical shape, Only the discharge positive electrode (11c) of the electrode device (10) is inserted into the first opening (23a) and the third opening (24a), An oxygen-containing fluid supply device (37) for circulating a fluid containing oxygen is provided inside the discharge positive electrode (11c).
[0088] With this configuration, even if a short circuit occurs between the negative electrode and the charging positive electrode during charging, discharging is possible between the negative electrode and the discharging positive electrode.
[0089] [9] A metal-air battery system according to yet another embodiment is the metal-air battery system according to [7] or [8], The second electrode (12) is the charging positive electrode (12a), and the third electrode (13) is the negative electrode (13c).
[0090] With this configuration, the area of the negative electrode is relatively larger than when the first electrode or the second electrode is the negative electrode, which increases the amount of metal deposited on the negative electrode and increases the electricity storage capacity.
[0091]
[10] A metal-air battery system according to yet another embodiment is the metal-air battery system according to [7] or [8], The second electrode (12) is the negative electrode (12b), and the third electrode (13) is the charging positive electrode (13b).
[0092] With this configuration, by monitoring the voltage between the negative electrode and the discharge positive electrode, it becomes possible to detect in advance an internal short circuit between the negative electrode and the charge positive electrode.
[0093]
[11] A metal-air battery system according to yet another embodiment is the metal-air battery system according to [5], the second electrode (12) is the discharge positive electrode (12c), a separator (30) is provided inside each of the first chamber (21) and the second chamber (22) to separate the flow of the electrolyte in the chamber (20) into a first flow (F1) flowing between the charge positive electrode (11b, 13b) and the discharge positive electrode (12c) and a second flow (F2) flowing between the discharge positive electrode (12c) and the negative electrode (11a, 13c); The metal-air battery system (1) further comprises an oxygen-containing gas supply device (34) that supplies an oxygen-containing gas to the electrolytic solution of the first flow (F1).
[0094] In this configuration, the distance between the negative electrode and the charge positive electrode is longer than in a configuration in which the negative electrode and the charge positive electrode are adjacent to each other, making it less likely that an internal short circuit will occur between the negative electrode and the charge positive electrode. Even if an internal short circuit does occur during charging, discharging is possible between the negative electrode and the discharge positive electrode. Furthermore, by monitoring the voltage between the negative electrode and the discharge positive electrode, it is possible to detect in advance an internal short circuit between the negative electrode and the charge positive electrode.
[0095]
[12] A metal-air battery system according to yet another embodiment is the metal-air battery system according to
[11] , The first electrode (11) is the charging positive electrode (11b), and the third electrode (13) is the negative electrode (13c).
[0096] With this configuration, the area of the negative electrode is relatively larger than when the first electrode or the second electrode is the negative electrode, which increases the amount of metal deposited on the negative electrode and increases the electricity storage capacity.
[0097]
[13] A metal-air battery system according to yet another embodiment is the metal-air battery system according to
[11] , The first electrode (11) is the negative electrode (11a), and the third electrode (13) is the charging positive electrode (13b).
[0098] With this configuration, by arranging the electrodes so that their cross sections are concentric, a difference in the area of the inner and outer electrodes can be obtained, making it possible to reduce the current density of the outer electrodes during operation compared to the central electrodes. By utilizing this effect and arranging electrodes that require reduced resistance loss on the outer side, the resistance of the system as a whole can be reduced, allowing for efficient charging and discharging. Furthermore, by circulating the electrolyte through the cell, it is possible to store electricity.
[0099]
[14] A metal-air battery system according to yet another embodiment is the metal-air battery system according to any one of [1] to
[13] , The discharge positive electrodes (11c, 12c, 13a) are provided with diaphragms (26) on the surfaces facing the negative electrodes (11a, 12b, 13c).
[0100] According to such a configuration, depending on the respective positions of the negative electrode, the charge positive electrode, and the discharge positive electrode, it is possible to reduce the loss of overvoltage due to the reaction in the discharge positive electrode, suppress the alteration and deterioration of the electrolyte, suppress the leakage of the electrolyte from the discharge positive electrode, or suppress the generation of a high-resistance layer due to contact between the negative electrode and an oxygen-containing gas. [Explanation of symbols]
[0101] 1. Metal-air battery system 2 cells 7 Switching Device 7a First diode 7b Second diode 7c First Switch 7d Second switch 10 Electrode device 10a 1st end 10b 2nd end 11 1st electrode 11a negative electrode 11b Positive electrode for charging 11c Positive electrode for discharge 12 2nd electrode 12a positive electrode for charging 12b negative electrode 12c positive electrode for discharge 13 Third electrode 13a Positive electrode for discharge 13b Positive electrode for charging 13c negative electrode 13d1 (One end of the third electrode) 13d2 (the other end of the third electrode) 20 Chamber 21 First Chamber Section 21a First end surface 21b 2nd end face 22 Second chamber section 22a 3rd end face 22b 4th end face 23a 1st opening 23b 2nd opening 24a 3rd opening 24b 4th opening 25 Sealing material 26 Bulkhead 30 Isolation member 34 Oxygen-containing gas supply device 37 Oxygen-containing fluid supply device F1 First Stream F2 Second flow
Claims
1. a chamber; an electrode device housed in the chamber; A metal-air battery system comprising a cell having The electrode device is A first electrode; a cylindrical second electrode provided radially outside the first electrode so as to surround the first electrode; a cylindrical third electrode provided radially outside the second electrode so as to surround the second electrode; and Equipped with An electrolyte is configured to flow between at least an outer peripheral surface of the first electrode and an inner peripheral surface of the third electrode, a combination of the first electrode, the second electrode, and the third electrode is a combination of a negative electrode containing a metal, a charge positive electrode, and a discharge positive electrode; the electrode device has a shape extending in an axial direction and includes a first end portion that is one end portion in the axial direction and a second end portion that is the other end portion in the axial direction, The chamber comprises: a first chamber portion provided on the first end side of the electrode device so as to accommodate at least one end of the third electrode therein; a second chamber portion provided on the second end side of the electrode device so as to accommodate at least the other end of the third electrode therein; Equipped with the first chamber portion includes a first end surface and a second end surface spaced apart from each other in the axial direction, and a first opening and a second opening are formed in the first end surface and the second end surface, respectively; the second chamber portion includes a third end surface and a fourth end surface spaced apart from each other in the axial direction, and a third opening and a fourth opening are formed in the third end surface and the fourth end surface, respectively; The first electrode, the second electrode, and the third electrode that constitute the electrode device are inserted into the second opening and the fourth opening, respectively, and a sealing member is provided between the inner surfaces of the first chamber portion and the second chamber portion and the outer surface of the third electrode to seal the gap between them.
2. Further provided is a switching device for switching so that the negative electrode is electrically connected to either the charging positive electrode or the discharging positive electrode, The switching device a first switch that electrically opens and closes the connection between the discharge positive electrode and the discharge negative electrode; a second switch that electrically opens and closes the connection between the negative electrode and the charging positive electrode; The metal-air battery system of claim 1 , comprising:
3. Further provided is a switching device for switching so that the negative electrode is electrically connected to either the charging positive electrode or the discharging positive electrode, 2. The metal-air battery system according to claim 1, wherein the switching device comprises a first diode that allows current to flow in a direction from the discharge positive electrode to the negative electrode.
4. 4. The metal-air battery system according to claim 3, wherein the switching device further comprises a second diode that allows current to flow in a direction from the negative electrode to the positive electrode for charging.
5. The metal-air battery system according to any one of claims 1 to 4, wherein the third electrode is the discharge positive electrode.
6. the first electrode is the discharge positive electrode having a cylindrical shape, an isolating member is provided inside each of the first chamber portion and the second chamber portion, which separates the flow of the electrolyte in the chamber into a first flow flowing inside the discharge positive electrode and a second flow flowing outside the discharge positive electrode; The metal-air battery system according to any one of claims 1 to 4, further comprising an oxygen-containing gas supply device that supplies an oxygen-containing gas to the first flow of electrolytic solution.
7. the first electrode is the discharge positive electrode having a cylindrical shape, Only the discharge positive electrode of the electrode device is inserted into the first opening and the third opening, The metal-air battery system according to any one of claims 1 to 4, wherein an oxygen-containing fluid supply device that circulates a fluid containing oxygen is provided inside the discharge positive electrode.
8. 8. The metal-air battery system according to claim 6, wherein the second electrode is the charging positive electrode, and the third electrode is the charging negative electrode.
9. 8. The metal-air battery system according to claim 6, wherein the second electrode is the negative electrode, and the third electrode is the positive electrode for charging.
10. the second electrode is the discharge positive electrode, an isolating member is provided inside each of the first chamber portion and the second chamber portion, which separates the flow of the electrolyte solution in the chamber into a first flow flowing between the charging positive electrode and the discharging positive electrode and a second flow flowing between the discharging positive electrode and the discharging positive electrode; The metal-air battery system according to any one of claims 1 to 4, further comprising an oxygen-containing gas supply device that supplies an oxygen-containing gas to the first flow of electrolytic solution.
11. 11. The metal-air battery system according to claim 10, wherein the first electrode is the charging positive electrode and the third electrode is the charging negative electrode.
12. 11. The metal-air battery system according to claim 10, wherein the first electrode is the negative electrode and the third electrode is the positive electrode for charging.
13. The metal-air battery system according to any one of claims 1 to 12, wherein the discharge positive electrode is provided with a diaphragm on a surface facing the negative electrode.
Citation Information
Patent Citations
JP1972025917U
Metal-air battery
JP2015170400A
Air battery
JP2016081572A
Electrode and metal air secondary battery
JP2017016902A
Metal air battery
WO2011152464A1