IP Library Granted Patent US 8,450,022
Granted Patent B2
US 8,450,022 · App. 13/330,308 · Granted May 28, 2013

Fuel cell hybrid power generation system and method for gas distribution systems

Inventors: Andrew Skok (Monroe, CT); David Jonathan Teichroeb (Ontario, CA)
Assignees: FuelCell Energy, Inc.; Enbridge, Inc.
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 8,450,022
App. No.
13/330,308
Granted
May 28, 2013
Kind
B2
Abstract

A method for use with a gas distribution system in which a higher pressure gas is transported/distributed and reduced to a lower pressure gas for a gas distribution or transmission line, the method comprising pre-heating the higher pressure gas before it is reduced in pressure, using an energy recovery generator to generate electricity using the pre-heated higher pressure gas while reducing the gas pressure to a lower gas pressure, using a fuel cell power plant to generates electricity while producing heat that is used to pre-heat high pressure gas, and combining the electrical outputs of the energy recovery generator and the fuel cell power plant to generate a combined electrical output. The method also comprises the fuel cell power plant making the waste heat available to the gas pre-heater without using a combustion unit thereby increasing the system's electrical efficiency.

Claims (23)

1. A method of generating hybrid energy utilizing a gas distribution system in which an extra-high pressure fuel gas is transported/distributed and then reduced to a lower pressure for a fuel gas distribution or transmission line, the method comprising:

pre-heating the extra-high pressure fuel gas before it is reduced in pressure; using an energy recovery generator to reduce the pressure of the pre-heated extra-high pressure fuel gas to produce the lower pressure fuel gas and to generate an electrical output;using a fuel cell power plant to generate an electrical output, while generating said electrical output, using said fuel cell power plant to produce waste heat and making said waste heat available in said pre-heating step to be used in said pre-heating step to heat the extra-high pressure fuel gas without using combustion to provide any of the waste heat of the fuel cell power plant to pre-heat the extra-high pressure fuel gas; and combining the electrical outputs of the energy recovery generator and the fuel cell power plant to generate a combined electrical output; wherein the method is used with the gas distribution system in which the extra- high pressure fuel gas is transported/distributed and then reduced to a lower pressure for a fuel gas distribution or transmission line.

2. A method in accordance with claim 1 , further comprising:

making said combined electrical output available to one or more of a power grid and a load.

3. A method in accordance with claim 1 , wherein:

said energy recovery generator comprises a rotary expansion device and an electrical generator coupled to said rotary expansion device; and

said fuel cell power plant comprises a fuel cell module which is adapted to receive a fuel supply gas and an oxidant supply gas and, through electrochemical conversion of said fuel supply gas and said oxidant supply gas, produce said electrical output and said waste heat.

4. A method in accordance with claim 3 , wherein:

said rotary expansion device comprises one of a turbo expander and a reciprocating expander.

5. A method in accordance with claim 3 , wherein:

said fuel cell power plant outputs a flue gas containing exhausted oxidant gas which forms at least a portion of the waste heat of said fuel cell power plant made available to said pre-heater;

said fuel cell supply gas includes one of said lower pressure gas, said extra-high pressure fuel gas, and gas supplied through the recovery of seal leakage gas originating from the energy recovery generator; and

said fuel cell module comprises one or more of: one or more stacks of internally reforming fuel cells; and one or more stacks of non-internally reforming fuel cells.

6. A method in accordance with claim 5 , wherein:

each of said fuel cells comprises one of a high temperature fuel cell, a low temperature fuel cell, a molten carbonate fuel cell, a solid oxide fuel cell, a phosphoric acid fuel cell and a PEM fuel cell.

7. A method in accordance with claim 5 , wherein:

said pre-heating comprises heat exchanging with a thermal heat transfer fluid loop said extra-high pressure fuel gas to pre-heat said extra-high pressure fuel gas via said thermal heat transfer fluid loop;

and making available said oxidant flue gas to said heat exchanging step to heat said thermal heat transfer fluid.

8. A method in accordance with claim 7 , wherein:

said thermal heat transfer fluid loop comprises a glycol loop.

9. A method in accordance with claim 1 , wherein:

said low pressure gas has a pressure in the range of 50-80 psig;

and said extra-high pressure fuel gas has a pressure is the range of two to twenty times higher than the pressure of said low pressure gas.

Assignments (2)
RELEASE OF SECURITY INTEREST Recorded Nov 30, 2020
From: ORION ENERGY PARTNERS INVESTMENT AGENT, LLC
To: FUELCELL ENERGY, INC.
Reel/Frame 054545/0803 →
SECURITY INTEREST Recorded Oct 31, 2019
From: FUELCELL ENERGY, INC.
To: ORION ENERGY PARTNERS INVESTMENT AGENT, LLC
Reel/Frame 050899/0262 →
Continuity (2)
Continuation 11435054 · May 16, 2006
Related Publication 20120151920A1 · Jun 21, 2012