Claims
- 1. A closed loop energy storage system comprising:
a fuel cell stack configured to react a gaseous fuel with a gaseous oxidizer to produce a liquid product and electrical power; an electrolyzer stack configured to separate the liquid product into a humid fuel including the gaseous fuel and product humidity, and a humid oxidizer including the gaseous oxidizer and product humidity; a heat exchanger configured to remove the product humidity from the humid fuel and the humid oxidizer to produce dried gaseous fuel and dried gaseous oxidizer, the heat exchanger removing product humidity through a process of freezing the product humidity out of the humid fuel and the humid oxidizer; a fuel tank configured to store the dried gaseous fuel for subsequent reaction in the fuel cell stack; and an oxidizer tank configured to store dried gaseous oxidizer for subsequent reaction in the fuel cell stack; wherein the fuel cell stack is configured to receive the gaseous fuel from the fuel tank and the gaseous oxidizer from the oxidizer tank; and wherein the heat exchanger is further configured to preheat the gaseous fuel from the fuel tank and the gaseous oxidizer from the oxidizer tank prior to the gaseous fuel and the gaseous oxidizer being reacted in the fuel cell stack.
- 2. The energy storage system of claim 1, wherein the heat exchanger is configured to use excess heat from the fuel cell stack to preheat the gaseous fuel from the fuel tank and the gaseous oxidizer from the oxidizer tank.
- 3. The energy storage system of claim 1, wherein the humid fuel produced by the electrolyzer stack is intermixed with liquid product, and the humid oxidizer produced by the electrolyzer stack is intermixed with liquid oxidizer, and further comprising:
a first phase separator configured to separate the liquid product from the humid fuel; and a second phase separator configured to separate the liquid product from the humid oxidizer.
- 4. The energy storage system of claim 1, wherein the heat exchanger is configured to use excess heat from the fuel cell stack to preheat the gaseous fuel and the gaseous oxidizer.
- 5. A closed loop energy storage system comprising:
a fuel cell stack configured to react a gaseous fuel with a gaseous oxidizer to produce a liquid product and electrical power; an electrolyzer stack configured to separate the product into a first mixture including the liquid product and the gaseous fuel, and a second mixture including the liquid product and the gaseous oxidizer; a first phase separator configured to separate the liquid product from the first mixture to produce gaseous fuel; a second phase separator configured to separate the liquid product from the second mixture to produce gaseous oxidizer; a fuel tank configured to store gaseous fuel for subsequent reaction in the fuel cell stack; and an oxidizer tank configured to store gaseous oxidizer for subsequent reaction in the fuel cell stack; wherein at least one of the phase separators is configured to receive liquid product from the fuel cell stack and store the liquid product for subsequent separation in the electrolyzer stack, without the use of a separate storage tank for the liquid product.
- 6. The energy storage system of claim 5, and further configured with a pump configured to transfer liquid product from the first phase separator to the second phase separator.
- 7. A closed loop power plant for use in freezing ambient conditions, comprising:
a fuel cell stack configured to react a gaseous fuel with a gaseous oxidizer to produce a liquid product and electrical power; a fuel storage tank configured to store the dried gaseous fuel for subsequent reaction in the fuel cell stack; an oxidizer storage tank configured to store dried gaseous oxidizer for subsequent reaction in the fuel cell stack; and a thermal enclosure enclosing the fuel cell stack; wherein the fuel storage tank and the oxidizer storage tank are not thermally enclosed.
- 8. The energy storage system of claim 7, and further comprising:
a product storage container for storing the liquid product; an electrolyzer stack configured to separate the liquid product into a humid fuel including the gaseous fuel and product humidity, and a humid oxidizer including the gaseous oxidizer and product humidity; and a heat exchanger configured to remove the product humidity from the humid fuel and the humid oxidizer to produce dried gaseous fuel and dried gaseous oxidizer; wherein the thermal enclosure further encloses the electrolyzer stack and the product storage container.
- 9. The energy storage system of claim 7, wherein the heat exchanger is further configured to use excess heat from the fuel cell stack to preheat the gaseous fuel from the fuel tank and the gaseous oxidizer from the oxidizer tank prior to the gaseous fuel and the gaseous oxidizer being reacted in the fuel cell stack.
- 10. An energy storage system pod for use in an environment characterized by fluid flowing relative to the pod so as to define forward and rearward pod directions, comprising:
a first tank for containing a first reactant; a second tank for containing a second reactant, wherein the first tank is forward of the second tank; a fuel cell stack configured to react the first reactant with the second reactant to produce power, and an outer shell containing the first tank, the second tank and the fuel cell stack, the outer shell forming an airfoil-shaped profile having a leading edge facing substantially in the forward direction, wherein the airfoil-shaped profile defines a camber thickness that varies along a chord line of the airfoil-shaped profile, wherein the first tank extends substantially across the airfoil-shaped profile at its point of greatest camber thickness, and wherein the second tank is narrower than the first tank in the direction of the camber thickness.
- 11. The energy storage system of claim 10, and further comprising an electrolyzer stack, wherein the fuel cell stack and the electrolyzer stack are located between the first and second tanks.
- 12. The energy storage system of claim 10, and further comprising a frame that supports the fuel cell stack and the first and second tanks, the frame having a first end including an attach point for an aircraft, and the frame having a second end having a first wheel and a second wheel configured to bear landing loads for the aircraft.
- 13. The energy storage system of claim 10, wherein the first reactant is a fuel and the second reactant is an oxidizer.
Parent Case Info
[0001] This application claims priority from U.S. provisional patent application 60/373,301, filed Apr. 17, 2002, which is incorporated herein by reference for all purposes.
Provisional Applications (1)
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Number |
Date |
Country |
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60373301 |
Apr 2002 |
US |