US2023021439A1PendingUtilityA1
Methods and systems for redox flow battery electrolyte hydration
Est. expiryApr 28, 2037(~10.7 yrs left)· nominal 20-yr term from priority
H01M 8/04119H01M 8/04283H01M 50/60H01M 2004/8689H01M 2004/8684Y02E60/50H01M 4/86H01M 8/04225H01M 8/188Y02E60/10
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Claims
Abstract
Methods and systems are provided for transporting and hydrating a redox flow battery system with a portable field hydration system. In one example, the redox flow battery system may be hydrated with the portable field hydration system in a dry state, in the absence of liquids. In this way, a redox flow battery system may be assembled and transported from a battery manufacturing facility to an end-use location off-site while the redox flow battery system is in the dry state, thereby reducing shipping costs, design complexities, as well as logistical and environmental concerns.
Claims
exact text as granted — not AI-modified1 . A method of operating a redox flow battery system, the redox flow battery system including first and second electrolyte chambers fluidly coupled to a redox flow battery cell, the method comprising:
during a first condition as determined by a controller, including when the redox flow battery system is in a dry state without water and liquid solvents, adding first and second amounts of dry electrolyte precursor to the first and second electrolyte chambers, respectively, the first and second amounts corresponding to a desired concentration of first and second electrolytes in the first and second electrolyte chambers during an operating mode, including when the redox flow battery system is being charged or discharged, fluidly coupling the redox flow battery system to a field hydration system, the field hydration system detachably fluidly coupled to the first and second electrolyte chambers of the redox flow battery system and including a water supply pump detachably fluidly coupled to a water source, supplying water from the field hydration system to the redox flow battery system, wherein the redox flow battery system would remain in the dry state without the water from the field hydration system,
stopping, via the controller of the redox flow battery system controlling one or more actuators, a supply of water from the field hydration system to the redox flow battery system in response to a conductivity of the supplied water increasing above a threshold conductivity as determined by the controller, the conductivity determined using signals received from a conductivity sensor of the field hydration system, and
operating the redox flow battery system, wherein operating the redox flow battery system includes both charging by applying a charging current and discharging via oxidation and reduction of the first and second electrolytes.
2 . The method of claim 1 , further comprising, during a second condition as determined by the controller, including when the redox flow battery system is in a wet state with greater than a threshold amount of water therein, directing, via the controller, the water to the first electrolyte chamber, and in response to a first electrolyte chamber liquid level reaching a first threshold level as determined by the controller and before operating the redox flow battery system, raising a temperature of the first electrolyte chamber to a first threshold temperature via the controller, the first threshold temperature being greater than an ambient temperature.
3 . The method of claim 1 , wherein the field hydration system is detachably fluidly coupleable to the redox flow battery system by way of one or more inlets and outlets to and from the first and second electrolyte chambers, each of the first and second electrolyte chambers comprising negative and positive electrolyte chambers, respectively, wherein the field hydration system comprises one or more components configured to prepare electrolytes for both positive and negative terminals of the redox flow battery system, the one or more components including the water supply pump for supplying water from a supply source, a filtration system, and bypass and diverter valves for directing water to drain and to the negative and positive electrolyte chambers, wherein the redox flow battery system is configured to be dry-assembled at a battery manufacturing facility different from an end-use location without filling and hydrating the redox flow battery system before delivery of the redox flow battery system to the end-use location, wherein the end-use location corresponds to a location where the redox flow battery system is to be installed and utilized as a fixed location, non-portable, on-site energy storage, and wherein the field hydration system permits automated and controlled hydration of the redox flow battery system once in the end-use location.
4 . The method of claim 2 , further comprising, during the second condition as determined by the controller, in response to the first electrolyte chamber liquid level reaching the first threshold level as determined by the controller, recirculating, via the controller controlling the one or more actuators, the first electrolyte with a circulation pump fluidly coupled to the first electrolyte chamber.
5 . The method of claim 1 , further comprising, during the first condition, prior to coupling the redox flow battery system to the field hydration system, assembling the redox flow battery system and transporting the assembled redox flow battery system from a battery manufacturing facility to an end-use location different from the battery manufacturing facility.
6 . The method of claim 5 , wherein fluidly coupling the redox flow battery system to the field hydration system is performed at the end-use location.
7 . A redox flow battery system, comprising:
a field hydration system that is separate from the redox flow battery system and detachably fluidly coupleable to positive and negative electrolyte chambers of the redox flow battery system, the field hydration system comprising a water supply pump, a diverter valve, a bypass valve, and a conductivity sensor; a redox flow battery cell fluidly coupled to the positive and negative electrolyte chambers; dry electrolytes located in the positive and negative electrolyte chambers with less than a threshold amount of solvents; the field hydration system detachably fluidly coupleable to a water source arranged externally to the redox flow battery; and a controller, including executable instructions stored thereon to, activate the water supply pump of the field hydration system configured to flow water from the water source to the positive and negative electrolyte chambers; open the bypass valve and close the diverter valve in response to a water conductivity being greater than a threshold conductivity to flow water through the open bypass valve, where flowing water through the open bypass valve includes flowing water out of the field hydration system and away from the positive and negative electrolyte chambers, the water conductivity determined by the controller based on signals received from the conductivity sensor; and charge by applied current and discharge the redox flow battery cell during operation.
8 . A redox flow battery system, including first and second electrolyte chambers fluidly coupled to a redox flow battery cell, and a controller with executable instructions stored in non-transitory memory thereon to:
during a first condition as determined by the controller, including when the redox flow battery system is in a dry state without water and liquid solvents, add first and second amounts of dry electrolyte precursor to the first and second electrolyte chambers, respectively, the first and second amounts corresponding to a desired concentration of first and second electrolytes in the first and second electrolyte chambers during an operating mode, including when the redox flow battery system is being charged by applied current or discharged, fluidly couple the redox flow battery system to a field hydration system using one or more actuators controlled by the controller, the field hydration system detachably fluidly coupled to the first and second electrolyte chambers of the redox flow battery system and including a water supply pump detachably fluidly coupled to a water source, supply water from the field hydration system to the redox flow battery system, wherein the redox flow battery system would remain in the dry state without the water from the field hydration system, stop, via the controller of the redox flow battery system controlling one or more actuators, the supply of water from the field hydration system to the redox flow battery system in response to a conductivity of the supplied water increasing above a threshold conductivity as determined by the controller, the conductivity determined using signals received from a conductivity sensor of the field hydration system, and operate the redox flow battery system in at least one operating mode in response to decoupling the field hydration system from the redox flow battery system.Join the waitlist — get patent alerts
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