WO2021231186A1 - Methods and system for redox flow battery idle state - Google Patents
Methods and system for redox flow battery idle state Download PDFInfo
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- WO2021231186A1 WO2021231186A1 PCT/US2021/031179 US2021031179W WO2021231186A1 WO 2021231186 A1 WO2021231186 A1 WO 2021231186A1 US 2021031179 W US2021031179 W US 2021031179W WO 2021231186 A1 WO2021231186 A1 WO 2021231186A1
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M8/00—Fuel cells; Manufacture thereof
- H01M8/18—Regenerative fuel cells, e.g. redox flow batteries or secondary fuel cells
- H01M8/184—Regeneration by electrochemical means
- H01M8/188—Regeneration by electrochemical means by recharging of redox couples containing fluids; Redox flow type batteries
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M8/00—Fuel cells; Manufacture thereof
- H01M8/04—Auxiliary arrangements, e.g. for control of pressure or for circulation of fluids
- H01M8/04082—Arrangements for control of reactant parameters, e.g. pressure or concentration
- H01M8/04089—Arrangements for control of reactant parameters, e.g. pressure or concentration of gaseous reactants
- H01M8/04119—Arrangements for control of reactant parameters, e.g. pressure or concentration of gaseous reactants with simultaneous supply or evacuation of electrolyte; Humidifying or dehumidifying
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M8/00—Fuel cells; Manufacture thereof
- H01M8/04—Auxiliary arrangements, e.g. for control of pressure or for circulation of fluids
- H01M8/04223—Auxiliary arrangements, e.g. for control of pressure or for circulation of fluids during start-up or shut-down; Depolarisation or activation, e.g. purging; Means for short-circuiting defective fuel cells
- H01M8/04231—Purging of the reactants
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M8/00—Fuel cells; Manufacture thereof
- H01M8/04—Auxiliary arrangements, e.g. for control of pressure or for circulation of fluids
- H01M8/04276—Arrangements for managing the electrolyte stream, e.g. heat exchange
- H01M8/04283—Supply means of electrolyte to or in matrix-fuel cells
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M8/00—Fuel cells; Manufacture thereof
- H01M8/04—Auxiliary arrangements, e.g. for control of pressure or for circulation of fluids
- H01M8/04298—Processes for controlling fuel cells or fuel cell systems
-
- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M8/00—Fuel cells; Manufacture thereof
- H01M8/04—Auxiliary arrangements, e.g. for control of pressure or for circulation of fluids
- H01M8/04298—Processes for controlling fuel cells or fuel cell systems
- H01M8/04694—Processes for controlling fuel cells or fuel cell systems characterised by variables to be controlled
- H01M8/04791—Concentration; Density
- H01M8/0482—Concentration; Density of the electrolyte
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02E—REDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
- Y02E60/00—Enabling technologies; Technologies with a potential or indirect contribution to GHG emissions mitigation
- Y02E60/30—Hydrogen technology
- Y02E60/50—Fuel cells
Definitions
- Redox flow batteries are suitable for grid scale storage applications due to their capability for scaling power and capacity independently, as well as for charging and discharging over thousands of cycles with reduced performance losses in comparison to conventional battery technologies.
- An all-iron hybrid redox flow battery is particularly attractive due to incorporation of low-cost, earth- abundant materials.
- Iron redox flow batteries (IFBs) rely on iron, salt, and water for electrolyte, thus including simple, earth-abundant, and inexpensive materials, and eliminating incorporation of harsh chemicals, thereby allowing the IFB to have a reduced impact on the environment.
- FIG. 1 shows a schematic of an example redox flow battery system including a battery cell with electrodes and a membrane separator.
- FIG. 2 shows a side view of an example layout for the redox flow battery system of FIG. 1.
- FIG. 3 shows a high level flow chart of an example method for operating the redox flow battery system of FIG. 1.
- FIG. 4 shows a first example method for operating the redox flow battery system of FIG. 1 in an idle mode.
- FIG. 5 shows a second example method for operating the redox flow battery system of FIG. 1 in the idle mode.
- FIG. 6 shows a timeline plot illustrating operation of the redox flow battery system of FIG. 1 in the idle mode.
- the following description relates to systems and methods for manufacturing a redox flow battery with reduced cost of storage.
- the redox flow battery is shown in FIG. 1 with an integrated multi-chamber tank having separate positive and negative electrolyte chambers.
- the redox flow battery may be an all-iron flow battery (IFB) utilizing iron redox chemistry at both a negative electrode and a positive electrode of the IFB.
- the electrolyte chambers may be coupled to one or more battery cells, each cell including the negative electrode and the positive electrode.
- the redox flow battery may be arranged in a layout including a housing and various other components as shown in a side view in FIG. 2. An example of a method for operating the redox flow battery is depicted in FIG. 3.
- FIGS. 4 and 5 are examples of methods for operating the redox flow battery when the battery is in an idle mode. Adjustments to components of the redox flow battery during operation in the idle mode are depicted in FIG. 6. Effects of the methods shown in FIGS. 4 and 5 on battery state of charge (SOC) are illustrated in FIG. 7 in a graph plotting SOC against time.
- SOC battery state of charge
- Hybrid redox flow batteries are redox flow batteries that are characterized by the deposition of one or more electroactive materials as a solid layer on an electrode.
- Hybrid redox flow batteries may, for instance, include a chemical that plates via an electrochemical reaction as a solid on a substrate throughout the battery charge process. During battery discharge, the plated species may ionize via an electrochemical reaction, becoming soluble in the electrolyte.
- the charge capacity e.g., a maximum amount of energy stored
- the redox flow battery may be limited by the amount of metal plated during battery charge and may depend accordingly on the efficiency of the plating system as well as the available volume and surface area available for plating.
- “Anode” refers to the electrode where electroactive material loses electrons and “cathode” refers to the electrode where electroactive material gains electrons.
- the negative electrolyte gains electrons at the negative electrode 26; therefore the negative electrode 26 is the cathode of the electrochemical reaction.
- the negative electrolyte loses electrons; therefore the negative electrode 26 is the anode of the reaction.
- the negative electrolyte and negative electrode 26 may be respectively referred to as an anolyte and anode of the electrochemical reaction
- the positive electrolyte and the positive electrode 28 may be respectively referred to as a catholyte and cathode of the electrochemical reaction.
- the negative electrolyte and negative electrode 26 may be respectively referred to as the catholyte and cathode of the electrochemical reaction, while the positive electrolyte and the positive electrode 28 may be respectively referred to as the anolyte and anode of the electrochemical reaction.
- the terms “positive” and “negative” are used herein to refer to the electrodes, electrolytes, and electrode compartments in redox battery flow systems.
- One example of a hybrid redox flow battery is an all iron redox flow battery (IFB), in which the electrolyte includes iron ions in the form of iron salts (e.g., FcCh, FeCb, and the like), wherein the negative electrode 26 includes metal iron.
- IOB all iron redox flow battery
- the electrolyte includes iron ions in the form of iron salts (e.g., FcCh, FeCb, and the like)
- the negative electrode 26 includes metal iron.
- ferrous ion, Fe 2+ receives two electrons and plates as iron metal onto the negative electrode 26 during battery charge, and iron metal, Fe°, loses two electrons and re-dissolves as Fe 2+ during battery discharge.
- Fe 2+ loses an electron to form ferric ion, Fe 3+ , during charge, and during discharge Fe 3+ gains an electron to form Fe 2+ .
- the electrochemical reaction is summarized in equations (1) and (2), wherein the forward reactions (left to right) indicate
- the negative electrolyte used in the IFB may provide a sufficient amount of Fe 2+ so that, during charge, Fe 2+ can accept two electrons from the negative electrode electrons, ionizing into Fe 2+ and may be dissolved back into the electrolyte.
- the equilibrium potential of the above reaction is -0.44 V and thus, this reaction provides a negative terminal for the desired system.
- the electrolyte may provide Fe 2+ during charge which loses an electron and oxidizes to Fe 3+ .
- Fe 3+ provided by the electrolyte becomes Fe 2+ by absorbing an electron provided by the positive electrode 28.
- the equilibrium potential of this reaction is +0.77 V, creating a positive terminal for the desired system.
- the IFB provides the ability to charge and recharge its electrolytes in contrast to other battery types utilizing non-regenerating electrolytes. Charge is achieved by applying a current across the electrodes 26 and 28 via terminals 40 and 42, respectively.
- the negative electrode 26 may be electrically coupled via terminal 40 to the negative side of a voltage source so that electrons may be delivered to the negative electrolyte via the positive electrode 28 (e.g., as Fe 2+ is oxidized to Fe 3+ in the positive electrolyte in the positive electrode compartment 22).
- the electrons provided to the negative electrode 26 e.g., plating electrode
- Discharge can be sustained while Fe° remains available to the negative electrolyte for oxidation and while Fe 3+ remains available in the positive electrolyte for reduction.
- Fe 3+ availability can be maintained by increasing the concentration or the volume of the positive electrolyte to the positive electrode compartment 22 side of the redox flow battery cell 18 to provide additional Fe 3+ ions via an external source, such as an external positive electrolyte chamber 52.
- availability of Fe° during discharge may be an issue in IFB systems, wherein the Fe° available for discharge may be proportional to the surface area and volume of the negative electrode substrate as well as the plating efficiency. Charge capacity may be dependent on the availability of Fe 2+ in the negative electrode compartment 20.
- Fe 2+ availability can be maintained by providing additional Fe 2+ ions via an external source, such as an external negative electrolyte chamber 50 to increase the concentration or the volume of the negative electrolyte to the negative electrode compartment 20 side of the redox flow battery cell 18.
- an external source such as an external negative electrolyte chamber 50 to increase the concentration or the volume of the negative electrolyte to the negative electrode compartment 20 side of the redox flow battery cell 18.
- Efficiency losses in an IFB may result from electrolyte crossover through a separator 24 (e.g., ion-exchange membrane barrier, microporous membrane, and the like).
- a separator 24 e.g., ion-exchange membrane barrier, microporous membrane, and the like.
- ferric ions in the positive electrolyte may be driven toward the negative electrolyte by a ferric ion concentration gradient and an electrophoretic force across the separator 24.
- ferric ions penetrating the separator 24 e.g., the membrane barrier
- crossing over to the negative electrode compartment 20 may result in coulombic efficiency losses.
- Ferric ions crossing over from the low pH redox side (e.g., more acidic positive electrode compartment 22) to high pH plating side (e.g., less acidic negative electrode compartment 20) may result in precipitation of Fe(OH)3.
- Precipitation of Fe(OH)3 may degrade the separator 24 and cause permanent battery performance and efficiency losses.
- Fe(OH)3 precipitate may chemically foul the organic functional group of an ion-exchange membrane or physically clog the small micropores of an ion-exchange membrane. In either case, due to the Fe(OH)3 precipitate, membrane ohmic resistance may rise over time and battery performance may degrade.
- Additional coulombic efficiency losses may be caused by reduction of H + (e.g., protons) and subsequent formation of 3 ⁇ 4 (e.g., hydrogen gas), and the reaction of protons in the negative electrode compartment 20 with electrons supplied at the plated iron metal of the negative electrode 26 to form hydrogen gas.
- H + e.g., protons
- 3 ⁇ 4 e.g., hydrogen gas
- the IFB electrolyte (e.g., FcCh, FeCb, FeSC , Fe 2 (S0 4 ) 3 , and the like) is readily available and can be produced at low costs.
- the IFB electrolyte offers higher reclamation value because the same electrolyte can be used for the negative electrolyte and the positive electrolyte, consequently reducing cross contamination issues as compared to other systems.
- iron may solidify into a generally uniform solid structure during plating thereof on the negative electrode substrate.
- solid dendritic structures may form during plating.
- the stable electrode morphology of the IFB system may increase the efficiency of the battery in comparison to other redox flow batteries.
- the redox flow battery system 10 may include the redox flow battery cell 18 fluidly connected to an integrated multi-chambered electrolyte storage tank 110.
- the redox flow battery cell 18 may generally include the negative electrode compartment 20, separator 24, and positive electrode compartment 22.
- the separator 24 may include an electrically insulating ionic conducting barrier which prevents bulk mixing of the positive electrolyte and the negative electrolyte while allowing conductance of specific ions therethrough.
- the separator 24 may include an ion-exchange membrane and/or a microporous membrane.
- the negative electrode compartment 20 may include the negative electrode 26, and the negative electrolyte may include electroactive materials.
- the positive electrode compartment 22 may include the positive electrode 28, and the positive electrolyte may include electroactive materials.
- multiple redox flow battery cells 18 may be combined in series or in parallel to generate a higher voltage or current in the redox flow battery system 10.
- Electrolytes are stored in one or more tanks external to the cell, and are pumped via the negative and positive electrolyte pumps 30 and 32 through the negative electrode compartment 20 side and the positive electrode compartment 22 side of the redox flow battery cell 18, respectively.
- the redox flow battery system 10 may also include a first bipolar plate 36 and a second bipolar plate 38, each positioned along a rear-facing side, e.g., opposite of a side facing the separator 24, of the negative electrode 26 and the positive electrode 28, respectively.
- the first bipolar plate 36 may be in contact with the negative electrode 26 and the second bipolar plate 38 may be in contact with the positive electrode 28.
- the bipolar plates 36 and 38 may be arranged proximate but spaced away from the electrodes 26 and 28 within the respective electrode compartments 20 and 22. In either case, the bipolar plates 36 and 38 may be electrically coupled to the terminals 40 and 42, respectively, either via direct contact therewith or through the negative and positive electrodes 26 and 28, respectively.
- the IFB electrolytes may be transported to reaction sites at the negative and positive electrodes 26 and 28 by the first and second bipolar plates 36 and 38, resulting from conductive properties of a material of the bipolar plates 36, 38. Electrolyte flow may also be assisted by the negative and positive electrolyte pumps 30 and 32, facilitating forced convection through the redox flow battery cell 18. Reacted electrochemical species may also be directed away from the reaction sites by the combination of forced convection and the presence of the first and second bipolar plates 36 and 38.
- the redox flow battery cell 18 may further include negative battery terminal 40 and positive battery terminal 42.
- the positive electrolyte When a charge current is applied to the battery terminals 40 and 42, the positive electrolyte is oxidized (lose one or more electrons) at the positive electrode 28, and the negative electrolyte is reduced (gain one or more electrons) at the negative electrode 26.
- the negative electrolyte is reduced (gain one or more electrons) at the negative electrode 26.
- the electrical potential difference across the battery is maintained by the electrochemical redox reactions in the positive electrode compartment 22 and the negative electrode compartment 20, and may induce a current through a current collector while the reactions are sustained.
- the amount of energy stored by a redox battery is limited by the amount of electro active material available in electrolytes for discharge, depending on the total volume of electrolytes and the solubility of the electroactive materials.
- the redox flow battery system 10 may further include the integrated multi-chambered electrolyte storage tank 110.
- the multi-chambered electrolyte storage tank 110 may be divided by a bulkhead 98.
- the bulkhead 98 may create multiple chambers within the multi-chambered electrolyte storage tank 110 so that both the positive and negative electrolytes may be included within a single tank.
- the negative electrolyte chamber 50 holds negative electrolyte including electroactive materials
- the positive electrolyte chamber 52 holds positive electrolyte including electroactive materials.
- the bulkhead 98 may be positioned within the multi-chambered electrolyte storage tank 110 to yield a desired volume ratio between the negative electrolyte chamber 50 and the positive electrolyte chamber 52.
- the bulkhead 98 may be positioned to set the volume ratio of the negative and positive electrolyte chambers 50 and 52 according to the stoichiometric ratio between the negative and positive redox reactions.
- FIG. 1 further illustrates fill height 112 of the multi-chambered electrolyte storage tank 110, which may indicate the liquid level in each tank compartment.
- FIG. 1 also shows gas head space 90 located above the fill height 112 of negative electrolyte chamber 50, and gas head space 92 located above the fill height 112 of positive electrolyte chamber 52.
- the stored hydrogen gas can aid in purging other gases from the multi-chambered electrolyte storage tank 110, thereby acting as an inert gas blanket for reducing oxidation of electrolyte species, which can help to reduce redox flow battery capacity losses.
- utilizing the integrated multi-chambered electrolyte storage tank 110 may forego having separate negative and positive electrolyte storage tanks, hydrogen storage tanks, and gas-liquid separators common to conventional redox flow battery systems, thereby simplifying the system design, reducing the physical footprint of the redox flow battery system 10, and reducing system costs.
- the gas head spaces 90, 92 of the integrated multi-chambered electrolyte storage tank 110 may be coupled to a gas storage tank 102, siphoning accumulated hydrogen to the gas storage tank 102.
- the positive and negative electrode compartments 22, 20 may be intermittently drained.
- valves (not shown at FIG. 1) controlling flow of electrolyte between the electrode compartments 20, 22 and the integrated multi-chambered electrolyte storage tank 110 may be opened and the electrolyte in the electrode compartments 20, 22 may be pumped out of the electrode compartments 20, 22.
- the electrode compartments 20, 22 may then be flushed under an oxygen-free environment by purging the empty electrode compartments 20, 22 with a gas such as the hydrogen delivered from the gas head spaces 90, 92 of the integrated multi- chambered electrolyte storage tank 110 via the gas storage tank 102.
- a gas such as the hydrogen delivered from the gas head spaces 90, 92 of the integrated multi- chambered electrolyte storage tank 110 via the gas storage tank 102.
- the gas storage tank 102 may not be coupled to the integrated multi-chambered electrolyte storage tank 110. Instead, the gas storage tank 102 may be an independent tank of hydrogen gas or argon gas. Either hydrogen or argon gas may be used to flush the electrode compartments 20, 22 to reduce a likelihood of performance and /or capacitance loss while the redox flow battery system 10 is in the idle mode. Details of methods for the redox flow battery system 10 during the idle mode are described further below with reference to FIGS. 3-5.
- FIG. 1 also shows spillover hole 96, which creates an opening in the bulkhead 98 between gas head spaces 90 and 92, and provides a means of equalizing gas pressure between the two chambers 50, 52.
- the spillover hole 96 may be positioned a threshold height above the fill height 112. The spillover hole 96 further enables a capability to self-balance the electrolytes in each of the positive and negative electrolyte chambers 50 and 52 in the event of a battery crossover.
- the same electrolyte (Fe 2+ ) is used in both negative and positive electrode compartments 20 and 22, so spilling over of electrolyte between the negative and positive electrolyte chambers 50 and 52 may reduce overall system efficiency, but the overall electrolyte composition, battery module performance, and battery module capacity are maintained.
- Flange fittings may be utilized for all piping connections for inlets and outlets to and from the multi-chambered electrolyte storage tank 110 to maintain a continuously pressurized state without leaks.
- integrated multi-chambered electrolyte storage tank 110 may further include one or more heaters thermally coupled to each of the negative electrolyte chamber 50 and the positive electrolyte chamber 52.
- only one of the negative and positive electrolyte chambers 50 and 52 may include one or more heaters.
- the negative electrolyte may be heated by transferring heat generated at the redox flow battery cell(s) 18 of a power module (e.g., power module 210, as discussed in detail below with reference to FIG. 2) to the negative electrolyte.
- a power module e.g., power module 210, as discussed in detail below with reference to FIG. 2
- the redox flow battery cell(s) 18 of the power module may heat and facilitate temperature regulation of the negative electrolyte.
- the one or more heaters may be actuated by controller 88 to regulate a temperature of the negative electrolyte chamber 50 and the positive electrolyte chamber 52 independently or together. For example, in response to an electrolyte temperature decreasing below a threshold temperature, the controller 88 may increase a power supplied to one or more heaters so that a heat flux to the electrolyte is increased.
- the electrolyte temperature may be indicated by one or more temperature sensors mounted at the multi- chambered electrolyte storage tank 110, including sensors 60 and 62.
- the one or more heaters may include coil type heaters or other immersion heaters immersed in the electrolyte fluid, or surface mantle type heaters that transfer heat conductively through the walls of the negative and positive electrolyte chambers 50 and 52 to heat the fluid therein.
- controller 88 may deactivate one or more heaters in the negative and positive electrolyte chambers 50, 52 in response to a liquid level decreasing below a solids fill threshold level. Said in another way, controller 88 may activate the one or more heaters in the negative and positive electrolyte chambers 50, 52 only in response to a liquid level increasing above the solids fill threshold level. In this way, activating the one or more heaters without sufficient liquid in the positive and/or negative electrolyte chambers 52, 50 can be averted, thereby reducing a risk of overheating or burning out the heater(s).
- one or more inlet connections may be provided to each of the negative and positive electrolyte chambers 50, 52 from a field hydration system (not shown).
- the field hydration system can facilitate commissioning of the redox flow battery system 10, including installing, filling, and hydrating the redox flow battery system 10, at an end-use location.
- the redox flow battery system 10 may be dry-assembled at a battery manufacturing facility different from the end-use location without filling and hydrating the redox flow battery system 10, before delivering the redox flow battery system 10 to the end-use location.
- the end-use location may correspond to the location where the redox flow battery system 10 is to be installed and utilized for on-site energy storage. Said in another way, it is anticipated that, once installed and hydrated at the end- use location, a position of the redox flow battery system 10 becomes fixed, and the redox flow battery system 10 is no longer deemed a portable, dry system. Thus, from the perspective of a redox flow battery system end-user, the dry portable redox flow battery system 10 may be delivered on-site, after which the redox flow battery system 10 is installed, hydrated, and commissioned.
- the redox flow battery system 10 Prior to hydration the redox flow battery system 10 may be referred to as a dry, portable system, the redox flow battery system 10 being free of or without water and wet electrolyte. Once hydrated, the redox flow battery system 10 may be referred to as a wet non portable system, the redox flow battery system 10 including wet electrolyte.
- electrolyte solutions typically stored in the multi- chambered electrolyte storage tank 110 are pumped via negative and positive electrolyte pumps 30 and 32 throughout the redox flow battery system 10.
- Electrolyte stored in negative electrolyte chamber 50 is pumped via negative electrolyte pump 30 through the negative electrode compartment 20 side of the redox flow battery cell 18, and electrolyte stored in positive electrolyte chamber 52 is pumped via positive electrolyte pump 32 through the positive electrode compartment 22 side of the redox flow battery cell 18.
- Two electrolyte rebalancing reactors 80 and 82 may be connected in-line or in parallel with the recirculating flow paths of the electrolyte at the negative and positive sides of the redox flow battery cell 18, respectively, in the redox flow battery system 10.
- One or more rebalancing reactors may be connected in-line with the recirculating flow paths of the electrolyte at the negative and positive sides of the battery, and other rebalancing reactors may be connected in parallel, for redundancy (e.g., a rebalancing reactor may be serviced without disrupting battery and rebalancing operations) and for increased rebalancing capacity.
- the electrolyte rebalancing reactors 80 and 82 may be placed in the return flow path from the negative and positive electrode compartments 20 and 22 to the negative and positive electrolyte chambers 50 and 52, respectively. Electrolyte rebalancing reactors 80 and 82 may serve to rebalance electrolyte charge imbalances in the redox flow battery system 10 occurring due to side reactions, ion crossover, and the like, as described herein. In one example, electrolyte rebalancing reactors 80 and 82 may include trickle bed reactors, where the hydrogen gas and electrolyte are contacted at catalyst surfaces in a packed bed for carrying out the electrolyte rebalancing reaction.
- the rebalancing reactors 80 and 82 may include flow-through type reactors that are capable of contacting the hydrogen gas and the electrolyte liquid and carrying out the rebalancing reactions in the absence of a packed catalyst bed.
- sensors and probes may monitor and control chemical properties of the electrolyte such as electrolyte pH, concentration, SOC, and the like.
- sensors 62 and 60 maybe be positioned to monitor positive electrolyte and negative electrolyte conditions at the positive electrolyte chamber 52 and the negative electrolyte chamber 50, respectively.
- sensors 62 and 60 may each include one or more electrolyte level sensors to indicate a level of electrolyte in the positive electrolyte chamber 52 and the negative electrolyte chamber 50, respectively.
- sensors 72 and 70 also illustrated in FIG. 1, may monitor positive electrolyte and negative electrolyte conditions at the positive electrode compartment 22 and the negative electrode compartment 20, respectively.
- the sensors 72, 70 may be pH probes, optical probes, pressure sensors, voltage sensors, etc. Sensors may be positioned at other locations throughout the redox flow battery system 10 to monitor electrolyte chemical properties and other properties.
- a sensor may be positioned in an external acid tank (not shown) to monitor acid volume or pH of the external acid tank, wherein acid from the external acid tank is supplied via an external pump (not shown at FIG. 1) to the redox flow battery system 10 in order to reduce precipitate formation in the electrolytes.
- Additional external tanks and sensors may be installed for supplying other additives to the redox flow battery system 10.
- various sensors including, temperature, conductivity, and level sensors of a field hydration system may transmit signals to the controller 88.
- controller 88 may send signals to actuators such as valves and pumps of the field hydration system during hydration of the redox flow battery system 10.
- Sensor information may be transmitted to a controller 88 which may in turn actuate pumps 30 and 32 to control electrolyte flow through the redox flow battery cell 18, or to perform other control functions, as an example.
- the controller 88 may be responsive to, one or a combination of sensors and probes.
- Redox flow battery system 10 may further include a source of hydrogen gas.
- the source of hydrogen gas may include a separate dedicated hydrogen gas storage tank.
- hydrogen gas may be stored in and supplied from the integrated multi- chambered electrolyte storage tank 110.
- Integrated multi-chambered electrolyte storage tank 110 may supply additional hydrogen gas to the positive electrolyte chamber 52 and the negative electrolyte chamber 50.
- Integrated multi-chambered electrolyte storage tank 110 may alternately supply additional hydrogen gas to the inlet of electrolyte rebalancing reactors 80 and 82.
- a mass flow meter or other flow controlling device may regulate the flow of the hydrogen gas from integrated multi-chambered electrolyte storage tank 110.
- the integrated multi-chambered electrolyte storage tank 110 may supplement the hydrogen gas generated in redox flow battery system 10.
- hydrogen gas may be supplied from the integrated multi- chambered electrolyte storage tank 110 or the gas storage tank 102 in order to rebalance the SOC of the electroactive species in the positive electrolyte and negative electrolyte.
- controller 88 may supply hydrogen gas from integrated multi-chambered electrolyte storage tank 110 or the gas storage tank 102 in response to a measured change in pH or in response to a measured change in SOC of an electrolyte or an electroactive species.
- an increase in pH of the negative electrolyte chamber 50, or the negative electrode compartment 20 may indicate that hydrogen is leaking from the redox flow battery system 10 and/or that the reaction rate is too slow with the available hydrogen partial pressure
- controller 88 in response to the pH increase, may increase a supply of hydrogen gas from integrated multi-chambered electrolyte storage tank 110 to the redox flow battery system 10.
- controller 88 may supply hydrogen gas from integrated multi-chambered electrolyte storage tank 110 in response to a pH change, wherein the pH increases beyond a first threshold pH or decreases beyond a second threshold pH.
- controller 88 may supply additional hydrogen to increase the rate of reduction of ferric ions and the rate of production of protons, thereby reducing the pH of the positive electrolyte.
- the negative electrolyte pH may be lowered by hydrogen reduction of ferric ions crossing over from the positive electrolyte to the negative electrolyte or by protons, generated at the positive side, crossing over to the negative electrolyte due to a proton concentration gradient and electrophoretic forces. In this manner, the pH of the negative electrolyte may be maintained within a stable region, while reducing the risk of precipitation of ferric ions (crossing over from the positive electrode compartment 22) as Fe(OH)3.
- control schemes for controlling the supply rate of hydrogen gas from integrated multi-chambered electrolyte storage tank 110 responsive to a change in an electrolyte pH or to a change in an electrolyte SOC, detected by other sensors such as an oxygen-reduction potential (ORP) meter or an optical sensor, may be implemented.
- the change in pH or SOC triggering the action of controller 88 may be based on a rate of change or a change measured over a time period.
- the time period for the rate of change may be predetermined or adjusted based on the time constants for the redox flow battery system 10. For example, the time period may be reduced if the recirculation rate is high, and local changes in concentration (e.g., due to side reactions or gas leaks) may quickly be measured since the time constants may be small.
- FIG. 2 it illustrates a side view of an example redox flow battery system layout 200 for the redox flow battery system 10.
- Redox flow battery system layout 200 may be housed within a housing 202 that facilitates long-distance transport and delivery of the redox flow battery system 10.
- the housing 202 can include a standard steel freight container or a freight trailer that can be transported via rail, truck or ship.
- the redox flow battery system layout 200 can include the integrated multi-chambered electrolyte storage tank 110 and one or more rebalancing reactors (e.g., rebalancing reactor 80) positioned at a first side of the housing 202, and a power module 210, and power control system (PCS) 288 at a second side of the housing 202.
- rebalancing reactors e.g., rebalancing reactor 80
- PCS power control system
- Auxiliary components such as supports 206, as well as various piping 204, pumps 230, valves (not shown at FIG. 2), and the like may be included within the housing 202 (as further described above with reference to FIG. 1) for stabilizing and fluidly connecting the various components positioned therein.
- one or more pumps 230 may be utilized to convey electrolyte from the integrated multi-chambered electrolyte storage tank 110 to one or more redox flow battery cell stacks 214 within the power module 210.
- additional pumps 230 may be utilized to return electrolyte from the power module 210 to the negative electrolyte chamber 50 or the positive electrolyte chamber 52 of the integrated multi-chambered electrolyte storage tank 110.
- FIG. 6 shows a time plot 600 graphically illustrating redox flow battery conditions during and outside of an idle mode with time measured along a horizontal axis, where time increases from a left to right side of the time plot 600.
- the time plot 600 illustrates the methods 300, 400, and 500 executed in parallel by the battery system of FIGS. 1 and 2. In this way, each of the methods 300, 400, and 500 may occur simultaneous to one another.
- a fourth threshold duration is reached at t4.
- the electrolyte pump is activated to refill the one or more electrode compartments with fresh electrolyte. Accordingly, in one example, the electrolyte is drained from the one or more electrode compartments, the one or more electrode compartments is purged with gas, and the one or more electrode compartments is refilled with the fresh electrolyte in sequence. Refilling of the electrode compartments continues until a target volume of electrolyte in the one or more electrode compartments is attained at t5. The pump is deactivated at t5 and the redox flow battery remains in the idle mode.
- the method further includes wherein completely draining the electrolytes from the one or more electrode compartments, purging the one or more electrode compartments with the gas, and refilling the one or more electrode compartments with the fresh electrolytes are performed in sequence, and wherein refilling the one or more electrode compartments with the fresh electrolytes occurs periodically.
- the method further includes wherein elapsing of the first and third threshold periods of time occur before the second threshold period of time elapses, and wherein the first timer is reset when the third threshold period of time elapses.
- the method further includes wherein activating the electrolyte pump in response to the first threshold period of time elapsing occurs one or more times during the second threshold period of time.
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Abstract
Description
Claims
Priority Applications (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| EP21804072.3A EP4320664A4 (en) | 2020-05-15 | 2021-05-06 | Method and system for the open-circuit status of a redox flow battery |
| AU2021272137A AU2021272137A1 (en) | 2020-05-15 | 2021-05-06 | Methods and system for redox flow battery idle state |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
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| US202063025240P | 2020-05-15 | 2020-05-15 | |
| US63/025,240 | 2020-05-15 |
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| WO2021231186A1 true WO2021231186A1 (en) | 2021-11-18 |
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| PCT/US2021/031179 Ceased WO2021231186A1 (en) | 2020-05-15 | 2021-05-06 | Methods and system for redox flow battery idle state |
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| US (3) | US11664512B2 (en) |
| EP (1) | EP4320664A4 (en) |
| AU (1) | AU2021272137A1 (en) |
| WO (1) | WO2021231186A1 (en) |
Cited By (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US20240039025A1 (en) * | 2022-07-28 | 2024-02-01 | Uop Llc | Rebalancing methods and systems for redox flow batteries |
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|---|---|---|---|---|
| BR112023019116A2 (en) | 2021-03-24 | 2023-10-24 | Electrasteel Inc | ORE DISSOLUTION AND IRON CONVERSION SYSTEM |
| DE102021213675A1 (en) | 2021-12-02 | 2023-06-07 | Robert Bosch Gesellschaft mit beschränkter Haftung | Method for operating a redox flow battery cell, method for operating a redox flow battery, redox flow battery and use of a redox flow battery |
| US20230318068A1 (en) * | 2022-03-31 | 2023-10-05 | Standard Energy Inc. | Systems configured for thermal management of battery cells |
| US20240234760A9 (en) * | 2022-10-19 | 2024-07-11 | Ess Tech, Inc. | Gravity drainage subsystem for redox flow battery system |
| US12525633B1 (en) | 2024-07-09 | 2026-01-13 | Michael H. Bagot, III | Flow battery fluid exchange system and method |
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- 2021-05-06 WO PCT/US2021/031179 patent/WO2021231186A1/en not_active Ceased
- 2021-05-06 AU AU2021272137A patent/AU2021272137A1/en not_active Abandoned
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2023
- 2023-04-17 US US18/301,935 patent/US20230253584A1/en active Pending
- 2023-04-17 US US18/301,927 patent/US20230253583A1/en active Pending
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Also Published As
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|---|---|
| US11664512B2 (en) | 2023-05-30 |
| AU2021272137A1 (en) | 2024-03-21 |
| US20230253583A1 (en) | 2023-08-10 |
| EP4320664A4 (en) | 2025-07-02 |
| US20210359315A1 (en) | 2021-11-18 |
| US20230253584A1 (en) | 2023-08-10 |
| EP4320664A1 (en) | 2024-02-14 |
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