Flow-type battery cell
The flow-type battery cell addresses increased energy consumption by managing slurry viscosity and supply rates, enhancing electron conduction pathways to reduce pump energy use without degrading performance.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- SHARP KK
- Filing Date
- 2023-09-13
- Publication Date
- 2026-04-24
AI Technical Summary
Increasing the weight ratio of zinc in a battery increases viscosity, leading to increased energy consumption of the pump due to pressure loss.
A flow-type battery cell design that includes a slurry containing a solid active material and electrolyte, with a liquid supply control unit to manage the supply rate, allowing for periods of increased and reduced flow to facilitate electron conduction pathways without degrading battery performance.
The design suppresses pump energy consumption while maintaining battery performance by optimizing slurry viscosity and promoting electron conduction pathways through controlled supply rates.
Smart Images

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Abstract
Description
[Technical Field]
[0001] This disclosure relates to a flow-type battery cell. [Background technology]
[0002] Battery cells have been disclosed before.
[0003] For example, Non-Patent Document 1 discloses a battery using a zinc slurry uniformly dispersed in a binder. [Prior art documents] [Non-patent literature]
[0004] [Non-Patent Document 1] Metal-Air Batteries: Present and Perspectives [Overview of the Initiative] [Problems that the invention aims to solve]
[0005] However, in the battery described in Non-Patent Document 1, increasing the weight ratio of zinc, the active material, increases viscosity, leading to increased energy consumption of the pump due to pressure loss.
[0006] Therefore, in view of the above problems, this disclosure aims to provide a flow-type battery cell that suppresses the energy consumption of the pump without degrading battery performance. [Means for solving the problem]
[0007] The flow-type battery cell according to this disclosure comprises a slurry containing a solid active material and an electrolyte, a negative electrode chamber to which the slurry is supplied, a positive electrode chamber to which air is supplied, and a liquid supply control unit for changing the supply rate of the slurry. It is characterized by having the following features. [Effects of the Invention]
[0008] As explained above, this disclosure makes it possible to provide a flow-type battery cell that suppresses the energy consumption of the pump without degrading battery performance. [Brief explanation of the drawing]
[0009] [Figure 1] Figure 1 is a schematic cross-sectional view of the flow-type battery cell relating to this disclosure. [Figure 2] Figure 2 shows the relationship between the thickener concentration and the solution viscosity (electrolyte). [Figure 3] Figure 3 is a schematic cross-sectional view showing a modified example of the flow-type battery cell shown in Figure 1. [Modes for carrying out the invention]
[0010] Preferred embodiments of the present disclosure will be described in detail below with reference to the drawings. The embodiments described below are not intended to unduly limit the scope of the claims of the present disclosure, and not all configurations described in these embodiments are necessarily essential solutions of the present disclosure. In the drawings, the X, Y, and Z axes are shown, with the Z axis in particular indicating the direction of gravity (height direction) of the flow-type battery cell.
[0011] The flow-type battery cell 100 described herein is, for example, a flow-type metal-air battery. The battery of the flow-type battery cell 100 takes in air, generates electricity using the air in a power generation unit (not shown), and then charges in a charging unit (not shown) and discharges the air.
[0012] Furthermore, the flow-type battery cell 100 is a flow-type battery that circulates slurry in the negative electrode chamber, which will be described later. The configuration of the flow-type battery cell will be described below.
[0013] Figure 1 is a schematic cross-sectional view of a flow-type battery cell 100 according to the present disclosure. As shown in Figure 1, the flow-type battery cell 100 according to the present disclosure includes a slurry 10, a negative electrode chamber 20, a negative electrode current collector plate 21, a negative electrode 22, a negative electrode flow path layer 23, a gasket 24, a positive electrode chamber 30, a positive electrode 31, a positive electrode current collector plate 32, a separator 50, a sealing portion 60, and a liquid supply control portion 40. The flow-type battery cell 100 according to the present disclosure is manufactured by stacking them.
[0014] The negative electrode chamber 20 is supplied with the slurry 10 described later. The negative electrode chamber 20 is a space partitioned by the separator 50, the negative electrode flow path layer 23, and the negative electrode 22. Also, the negative electrode chamber 20 can take various shapes depending on the negative electrode 22 and the negative electrode flow path layer 23.
[0015] A conductive material for energizing the negative electrode 22 is used for the negative electrode current collector plate 21. The shape of the negative electrode current collector plate 21 is not limited.
[0016] A material that is conductive and corrosion-resistant to the slurry 10 is used for the negative electrode 22. As shown in Figure 1, the negative electrode 22 and the negative electrode current collector plate 21 may be formed of separate members, or the negative electrode 22 may also serve as the negative electrode current collector plate 21.
[0017] The negative electrode flow path layer 23 may be sandwiched between the separator 50, the negative electrode 22, and / or the negative electrode current collector plate 21. Also, the negative electrode 22 may also serve as the negative electrode flow path layer 23.
[0018] The gasket 24 is sandwiched between the negative electrode flow path layer 23 and the negative electrode 22 and / or the negative electrode current collector plate 21 to prevent leakage of the slurry 10.
[0019] Air is supplied to the positive electrode chamber 30. The positive electrode chamber 30 is a space partitioned by the positive electrode 31 and the positive electrode current collector plate 32. The positive electrode chamber 30 can take various shapes depending on the positive electrode current collector plate.
[0020] A conductive material is used for the positive electrode 31, and the shape is not limited.
[0021] The positive electrode conductive plate 32 is made of a conductive material that conducts electricity with the positive electrode 31.
[0022] Furthermore, if the flow-type battery cells 100 are arranged in a stacked structure, the negative electrode energizing plate 21 and positive electrode energizing plate 32 of adjacent cells may be formed from a single component called a bipolar plate.
[0023] The separator 50 is provided between the negative electrode channel layer 23 and the positive electrode 31, and suppresses contact between the solid active material 11 in the slurry 10 and the positive electrode 31.
[0024] The sealing portion 60 is provided between the negative electrode flow channel layer 23 and the positive electrode energizing portion 32. The sealing portion 60 may be frame-shaped or it may be positioned at the edges of the negative electrode flow channel layer 23 and the positive electrode energizing portion 32. In this way, the sealing portion 60 prevents the slurry 10 from flowing into the positive electrode chamber 30 by pressing the negative electrode flow channel layer 23 and the positive electrode energizing portion 32 together.
[0025] The slurry 10 contains an electrolyte 12 and an active material. The active material includes a substance dissolved in the electrolyte 12 and a solid active material 11 that does not dissolve in the electrolyte 12 beyond its saturation solubility and possesses electron conductivity.
[0026] The active material is the negative electrode active material. The negative electrode active material is a metallic species. Examples of metallic species include zinc, cadmium, lithium, sodium, magnesium, lead, tin, aluminum, or iron. The metals constituting the metallic species may consist only of the main component metal, or they may be alloys of the main component metal and minor components. The metallic species can be either a metal or an oxide. Whether the metallic species is a metal or an oxide is determined by the progress of the discharge reaction or the charging reaction.
[0027] When the flow-type battery cell 100 is shipped, the metal species may be either a metal or an oxide. The oxidation state of the metal species may be uniform or non-uniform within the negative electrode active material. For example, if a discharge or charge reaction proceeds from the surface of the negative electrode active material toward the center, the oxidation state of the metal species on the surface of the negative electrode active material may differ from the oxidation state of the metal species in the center of the negative electrode active material.
[0028] In this embodiment, the metal type is zinc, and the flow-type battery cell 100 is a zinc-air battery. The metal constituting the zinc type may be, for example, a metal consisting only of zinc as the main component, or an alloy of zinc as the main component and minor components.
[0029] The average particle size of a metal species is several micrometers when it is in an oxidized state (e.g., ZnO) and several tens of micrometers to about 300 micrometers when it is in a reduced state (e.g., Zn). The average particle size can be measured using a particle size distribution analyzer. The analyzer measures the particle size distribution using, for example, laser diffraction / scattering, and calculates the median diameter D50 as the average particle size from the measured particle size distribution.
[0030] The electrolyte 12 is selected according to the type of metal. If the metal is zinc, the electrolyte 12 is an alkaline aqueous solution, such as a potassium hydroxide aqueous solution or a sodium hydroxide aqueous solution. If the metal is lithium, the electrolyte 12 is a non-aqueous electrolyte. If the metal is magnesium, the electrolyte 12 is a neutral aqueous solution, such as a sodium chloride aqueous solution.
[0031] The slurry 10 contains solid active material 11. In the case of an electrolyte 12 containing metal species such as zinc and a strong alkaline aqueous solution such as potassium hydroxide aqueous solution, the metal species dissolve when the concentration of zinc oxide and metal species such as zinc is below the saturation solubility. When the concentration of zinc oxide and metal species such as zinc exceeds the saturation solubility, the metal species such as zinc oxide and zinc do not dissolve and exist as solid active material 11. Furthermore, solid active material particles can be identified by appearance. When solid active material particles (that have not dissolved beyond saturation) are present, the electrolyte becomes a suspension and is white when the active material is zinc oxide. On the other hand, in the case of a saturated solution, it is transparent because it is dissolved. For analysis, there are methods to measure the particle size distribution, and laser diffraction, dynamic light scattering, etc. are used. In this embodiment, a suspension of zinc oxide and metal species such as zinc is used. Furthermore, the solid active material 11 has a larger electrical capacity per unit volume compared to the active material dissolved in the electrolyte. Therefore, a small amount of slurry 10 can be supplied to the negative electrode chamber 20 in excess, allowing the supply of slurry 10 to be temporarily paused and reducing the power consumption of the pump.
[0032] Furthermore, the concentration of the solid active material 11 in the slurry 10 in this embodiment is 5 wt% or more and 50 wt% or less. Preferably, it is 10 wt% to 30 wt%. Setting it to 5 wt% or more allows for the effective formation of electron conduction pathways between the solid active material 11. Setting it to 50 wt% or less prevents the viscosity of the slurry 10 from becoming too high, thereby reducing the power consumption of the pump.
[0033] The flow-type battery cell 100 described herein is a discharge cell. During discharge, an oxidation reaction of the solid active material occurs at the negative electrode 22 (formula (1) below), and an oxygen reduction reaction occurs at the positive electrode 31 (formula (2) below).
[0034] Zn + 4OH - →Zn(OH)4 2- +2e - →ZnO+H2O + +2OH - 2e - (1) 1 / 2O2 + H2O + 2e- →2OH - (2)
[0035] In the case of zinc, in equation (1), the solid active material, metallic zinc, undergoes an oxidation reaction to become zincate ions, which in turn become zinc oxide. In equation (2), it undergoes a reduction reaction with oxygen to become hydroxide ions.
[0036] The liquid delivery control unit 40 changes the supply rate of the slurry 10. The liquid delivery control unit 40 is a control device such as a controller that controls the output of the pump, and the supply rate of the slurry 10 can be controlled by the output of the pump, etc.
[0037] Thus, in the flow-type battery cell 100 according to this disclosure, the liquid delivery control unit 40 changes the supply rate of the slurry 10, thereby providing a period in which the liquid delivery rate of the slurry 10 containing the solid active material 11 is temporarily increased to transport the solid active material 11, and a period in which the liquid delivery rate is reduced to allow the solid active material 11 to settle. As the solid active material 11 settles due to the reduction in the liquid delivery rate, many particles of the solid active material 11 come into contact with each other and form electron conduction pathways. Furthermore, when these come into contact with the negative electrode 22, the reaction area of the negative electrode increases. In this way, it is possible to reduce the power consumption of the pump without degrading the battery performance.
[0038] Furthermore, the flow-type battery cell 100 according to this embodiment further includes a slurry storage tank 70, as shown in Figure 1. The slurry storage tank 70 may store the slurry 10 to be supplied to the negative electrode chamber 20. The slurry 10 may be supplied from the slurry storage tank 70 to the negative electrode chamber 20.
[0039] The slurry storage tank 70 may be equipped with a stirrer 71.
[0040] Figure 2 shows the relationship between the thickener concentration and the solution viscosity (electrolyte 12). The electrolyte 12 contains 7 mol / L KOH, the active material is 4 wt% ZnO, and the thickener is Carbopol 690 (manufactured by Lubrizol). Viscosity can be measured using a viscometer. For example, a ViscoTester VT-06 manufactured by Rion Co., Ltd. is used, with one of rotors 1 to 3.
[0041] The slurry 10 preferably contains a thickening agent. Because the difference in specific gravity between the electrolyte 12 and the solid active material 11 is very large, the electrolyte 12 and the solid active material 11 separate in a very short time. As shown in Figure 2, adding a thickening agent increases the viscosity of the solution. In other words, by including a thickening agent, the settling rate of the solid active material 11 is reduced, and the solid active material 11 can be uniformly dispersed in the slurry 10 even after time has passed. The slurry 10 may also contain a gelling agent.
[0042] The concentration of the thickener is preferably 0.75 wt% or more and less than 3 wt% in the slurry 10, and more preferably 1 wt% or more and less than 2 wt%. If the concentration is less than 0.75 wt%, the settling rate of the solid active material 11 is too fast, requiring an increase in the flow rate to transport the solid active material 11, which increases the power consumption of the pump. If the concentration is 3 wt% or more, the viscosity is too high, resulting in a large pressure loss during liquid transfer and increasing the power consumption of the pump.
[0043] The viscosity of the electrolyte 12 is preferably between 10 mPa·s and 300 mPa·s. If it is less than 10 mPa·s, the settling rate of the solid active material 11 is too fast, requiring an increase in flow rate to transport the solid active material 11, which increases the power consumption of the pump. If it is greater than 300 mPa·s, the viscosity becomes high, increasing the pressure loss during slurry transport, which also increases the power consumption of the pump.
[0044] The viscosity of the slurry 10 is preferably between 100 mPa·s and 3000 mPa·s. If the viscosity is too low, the settling rate of the solid active material 11 is fast. This necessitates a higher frequency of increasing the flow rate to transport the settled solid active material 11, which tends to increase the power consumption of the pump. On the other hand, if the viscosity is too high, the pressure loss during the delivery of the solid active material 11 slurry increases, resulting in higher power consumption of the pump. Furthermore, because the solid active material 11 does not settle and remains dispersed, the negative electrode 22 and the solid active material 11 cannot come into contact, and the particles of the solid active material 11 that come into contact with other particles of the solid active material 11 cannot come into contact with each other (the number of active material particles that conduct with the negative electrode 22 decreases, and the formation of electron conduction pathways decreases). As a result, electron conduction pathways from the solid active material 11 to the negative electrode 22 cannot be formed, and the utilization efficiency of the active material decreases. Therefore, setting the range as described above will lead to suppression of excessive settling velocity of the solid active material 11, reduction of pump power consumption, reduction of pressure loss during liquid transfer, and improvement of the utilization efficiency of the active material.
[0045] As mentioned above regarding the average particle size of metal species, the average particle size of the solid active material 11 in a reduced state that is not an oxide is preferably 30 μm to 300 μm. If it is less than 30 μm, the particles of the solid active material 11 do not easily come into contact with each other, making it difficult to form electron conduction pathways. If it is greater than 300 μm, the settling velocity of the solid active material 11 is fast, requiring an increase in flow rate to transport the settled solid active material 11 particles, which increases the power consumption of the pump.
[0046] Figure 3 is a schematic cross-sectional view showing a modified example of the flow-type battery cell 100 shown in Figure 1. As shown in the flow-type battery cell 110 of Figure 3, the negative electrode 22 is positioned downward relative to the positive electrode chamber 30. In this way, the solid active material 11 settles on the negative electrode 22, effectively forming an electron conduction path from the solid active material 11 to the negative electrode 22. Therefore, the electrical capacity can be further improved.
[0047] The liquid supply control unit 40 preferably reduces the supply rate of the slurry 10 or stops supplying it during power generation. This reduces the power consumption of the pump. When the supply rate of the slurry 10 is reduced, the flow of the slurry is maintained, so the solid active material 11 in the slurry 10 does not solidify and accumulate in the negative electrode chamber. When the supply rate of the slurry 10 is stopped, the power consumption of the pump can be reduced to zero.
[0048] The liquid supply control unit 40 prefers that the time during which the supply rate of the slurry 10 is reduced is longer than the supply time of the slurry 10, and more preferably, the time during which the supply of the slurry 10 is stopped is longer than the supply time of the slurry 10. In this way, the deposition of the solid active material 11 is promoted, and an electron conduction path from the solid active material 11 to the negative electrode can be effectively constructed. In addition, the power consumption of the pump can be suppressed by reducing the supply rate of the slurry 10 or stopping the supply.
[0049] It is preferable that the liquid supply control unit 40 periodically changes the supply rate during power generation. This allows the slurry 10 to be efficiently supplied to the negative electrode chamber 20, thereby enabling efficient power generation. Alternatively, the liquid supply control unit 40 may periodically change the supply status (supply / stop) during power generation. Periodically means changing the supply rate or the supply status multiple times at arbitrary time intervals.
[0050] The agitator 71 preferably operates periodically.
[0051] Furthermore, it is preferable that the operation of the stirrer 71 is synchronized with the liquid feeding control unit 40. For example, when the liquid feeding control unit 40 is supplying the slurry 10, the stirrer 71 operates. On the other hand, when the liquid feeding control unit 40 stops the supply of the slurry 10, the stirrer 71 stops. Also, the stirring by the stirrer 71 does not have to be simultaneous with the liquid feeding and may operate with an arbitrary time shift from the switching of the liquid feeding. Further, when the liquid feeding control unit 40 periodically changes the presence or absence of supply (supply / stop), the stirrer 71 also periodically performs the presence or absence of stirring accordingly.
[0052] The sedimentation rate of the solid active material 11 follows the following Stokes' formula. v s =D p 2 (ρ p -ρ f )g / 18η v s : Terminal velocity of particles D p : Particle diameter ρ p : Density of particles ρ f : Density of fluid g: Acceleration due to gravity η: Viscosity of fluid
[0053] Assuming the distance from the separator 50 to the negative electrode 22 is L (cm) and the period of change in the supply rate is T (s), it is preferable to satisfy T > L × 35. The sedimentation rate of the solid active material 11 is determined by the particle diameter, density, and viscosity from Stokes' formula. Since the solid active material 11 forms an electron conduction path with the negative electrode 22 by sedimenting, if the period of change in the supply rate is small with respect to the distance from the separator 50 to the negative electrode 22, which is the sedimentation rate and the sedimentation distance, it is difficult to form a sufficient electron conduction path and the battery performance deteriorates. Using a particle diameter of 300 μm, a fluid viscosity of 10 mPa·s, a fluid density of 1.34 g / cm 3 ³, a particle density of 7.14 g / cm 3 ³, and calculating the sedimentation rate v sis 2.842×10^(-2) m / s. The period of the change in the supply rate refers to the period of "fast / slow" or "present / absent" in the supply of the slurry 10, and it is sufficient if the supply rate is slightly different.
[0054] For example, when the distance L from the separator 50 to the negative electrode 22 is 1 cm, if the period T of the change in the supply rate is 30 sec, the average discharge voltage is low, while if the period T is 60 sec, the average discharge voltage is high. Also, when the distance L is 0.5 cm, if the period T is 10 sec, the average discharge voltage is low, while if the period T is 20 sec, the average discharge voltage is high.
[0055] Also, when the solid active material 11 is zinc, if the volume in the negative electrode chamber 20 is S (cm 3 ), the density of the slurry 10 is ρ (g / cm 3 ), the discharge current is I (A), and the weight ratio of zinc in the slurry 10 is X (wt%), then it is preferable to satisfy S×ρ×(X / 100) / 65.4 > I×T / (96500×2). That is, this means that the amount of zinc consumed when discharging for only the period T is less than the total amount of zinc present in the negative electrode chamber 20. If the amount of zinc particles present in the negative electrode chamber 20 is less than the amount of zinc particles consumed when discharging with the current I for the period T, there will be a tendency that no zinc is available for discharge because all the zinc for discharge is gone, so it is preferable to satisfy the above formula.
[0056] Also, in (S×ρ×(X / 100) / 65.4)×M > I×T / (96500×2), it is more preferable to satisfy 1 / 10 < M < 1 / 2, and even more preferable to satisfy 1 / 5 < M < 1 / 3. When M is less than 1 / 10, the period T becomes short and the power consumption of the pump increases. When M is 1 / 2 or more, zinc oxide deposited in the slurry 10 present in the negative electrode chamber 20 may become a resistance and the discharge voltage may decrease. By setting it within the above range, it is possible to prevent a decrease in battery performance while suppressing the power consumption of the pump.
[0057] If α is the ratio of the flow time during which the slurry supply rate is reduced, or the time during which the flow (supply) is stopped, to the period of change in the slurry supply rate, then It is preferable that the condition 0.4 < α < 0.97 is satisfied. In this way, the solid active material 11 can form sufficient electron conduction pathways, and the utilization efficiency of the active material can be improved.
[0058] Based on the above, the flow-type battery cells 100 and 110 according to this disclosure can improve electrical capacity and suppress the energy consumption of the pump.
[0059] Although each embodiment and example of this disclosure has been described in detail above, it will be readily apparent to those skilled in the art that many modifications are possible without substantially departing from the novelty and effects of this disclosure. Therefore, all such modifications are included within the scope of this disclosure.
[0060] For example, any term that appears at least once in the specification or drawings alongside a broader or synonymous term may be replaced with that different term anywhere in the specification or drawings. Furthermore, the configuration and operation of the flow-type battery cell are not limited to those described in the embodiments and examples of this disclosure, and various modifications are possible. [Explanation of Symbols]
[0061] 10 Slurry, 11 Solid active material, 12 Electrolyte, 20 Negative electrode chamber, 21 Negative electrode energizing plate, 22 Negative electrode, 23 Negative electrode flow channel layer, 24 Gasket, 30 Positive electrode chamber, 31 Positive electrode, Positive electrode energizing section 32, 40. Fluid delivery control unit, 50 separators, 60 Sealing part, 70 Slurry storage tank, 71 Agitator, 100, 110 flow-type battery cells, L Distance from separator to negative electrode
Claims
1. A slurry containing a solid active material and an electrolyte, The negative electrode chamber to which the slurry is supplied, A positive electrode chamber that supplies air, A liquid delivery control unit for changing the supply rate of the slurry, The positive electrode chamber is equipped with a negative electrode positioned in the direction of gravity, The negative electrode is positioned at the lowest surface in the direction of gravity of the negative electrode chamber. The flow-type battery cell is characterized in that the liquid supply control unit reduces the supply rate of the slurry or stops supplying it during power generation.
2. The flow-type battery cell according to claim 1, characterized in that the concentration of the solid active material in the slurry is 10 wt% to 30 wt%.
3. The flow-type battery cell according to claim 2, characterized in that the slurry contains a thickening agent.
4. The flow-type battery cell according to claim 3, characterized in that the viscosity of the electrolyte is 10 mPa·s to 300 mPa·s.
5. The flow-type battery cell according to claim 4, characterized in that the liquid supply control unit periodically changes the supply rate during power generation.
6. The flow-type battery cell according to claim 4, characterized in that the liquid supply control unit has a longer period of time during power generation during which the supply rate of the slurry is reduced or the supply is stopped.
7. The solid active material contains zinc, The volume inside the negative electrode chamber is S (cm³) 3 ), the density of the slurry is ρ (g / cm³) 3 ), if the discharge current is I (A) and the weight ratio of zinc in the slurry is X (wt%), The flow-type battery cell according to claim 5, characterized in that S × ρ × (X / 100) / 65.4 > I × T / (96500 × 2).
8. The solid active material comprises zinc, If the volume inside the negative electrode chamber is S (cm³), the density of the slurry is ρ (g / cm³), the discharge current is I (A), and the weight ratio of zinc in the slurry is X (wt%), The flow-type battery cell according to claim 7, characterized in that S × ρ × (X / 100) / 65.4 × (1 / 2) > I × T / (96500 × 2).
9. The flow-type battery cell according to claim 8, characterized in that α satisfies 0.4 < α < 0.97, where α is the ratio of the flow time when the slurry supply rate is reduced or the flow is stopped.
10. It is further equipped with a slurry storage tank, The flow-type battery cell according to claim 5, characterized in that the slurry storage tank is equipped with an agitator.
11. The flow-type battery cell according to claim 10, characterized in that the agitator operates periodically.
12. The flow-type battery cell according to claim 11, characterized in that the operation of the agitator is synchronized with the liquid delivery control unit.
13. The flow-type battery cell according to claim 5, characterized in that the average particle size of the solid active material is 30 μm to 300 μm.
14. The negative electrode and, The system further comprises a separator separating the negative electrode chamber and the positive electrode chamber, If the distance from the separator to the negative electrode is L (cm) and the period of change in supply rate is T (s), The flow-type battery cell according to claim 13, characterized in that T > L × 35.
Citation Information
Patent Citations
Method of charging zinc suspension battery, zinc suspension battery and zinc suspension for battery
JP1993013110A
an electrochemical generator that produces electricity by oxidizing metals and reducing oxidizing gases
JP2001519588A
Magnesium air battery system
JP2018107103A
Horizontal three-electrode single-flow air zinc battery with a floating cathode
JP2018529207A
Fuel cell having multiple electrical connectors
JP2023511313A