IP Library › Granted Patent US 12,281,620
Granted Patent B1
US 12,281,620 · App. 18/734,201 · Granted Apr 22, 2025

System and method for blending multiple fuels

Inventors: Temitayo O. Femi-Fowode (SE Smyrna, GA); Alston Ilford Scipio (Mableton, GA); Adenuga Moshood Adelakun (Winnipeg, CA); Oyebimpe B. Olubode (Toronto, CA); Colin Noel Stevens (Atlanta, GA); John Karigiannis (Laval, CA)
Assignee: GE Infrastructure Technology LLC
F02C9/40F02C7/224F02C7/232F02C9/263F02C9/28F23R3/36
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Quick Facts
Patent No.
US 12,281,620
App. No.
18/734,201
Granted
Apr 22, 2025
Kind
B1
Abstract

A method of blending at least two fuels includes providing at least two fuels to a helical static mixer via a fuel supply system, the fuel supply system including a fuel supply circuit for each fuel of the at least two fuels, mixing, via a plurality of helical structures of the helical static mixer, the at least two fuels to form a fuel mixture, determining, via one or more sensors, a measured interchangeability index of the fuel mixture, comparing the measured interchangeability index to a predetermined interchangeability index, adjusting, via the fuel supply system, one or more parameters of at least one of the at least two fuels based on the comparison between the measured interchangeability index and the predetermined interchangeability index, and providing the fuel mixture to a combustion system.

Claims (41)

1. A method of blending at least two fuels, the method comprising:

providing at least two fuels to a helical static mixer via a fuel supply system, the fuel supply system including a fuel supply circuit for each fuel of the at least two fuels, the fuel supply circuit including a main fuel supply line, a recirculation line extending from an inlet on the main fuel supply line and an outlet on the main fuel supply line, and an atmospheric vent line extending from the main fuel supply line between the inlet and the outlet;

mixing, via a plurality of helical structures of the helical static mixer, the at least two fuels to form a fuel mixture;

determining, via one or more sensors, a measured interchangeability index of the fuel mixture, the interchangeability index being one of a measured Wobbe Index of the fuel mixture or a measured Modified Wobbe Index of the fuel mixture;

comparing the measured interchangeability index to a predetermined interchangeability index;

adjusting, via the fuel supply system, one or more parameters of at least one of the at least two fuels based on the comparison between the measured interchangeability index and the predetermined interchangeability index; and

providing the fuel mixture to a combustion system.

2. The method as in claim 1 , wherein the one or more parameters include at least one of a pressure, a temperature, an amount, and a flow rate.

3. The method as in claim 1 , wherein adjusting the one or more parameters comprises:

adjusting a temperature of at least one of the at least two fuels via an electric heater disposed in thermal communication on the fuel supply circuit.

4. The method as in claim 1 , wherein adjusting the one or more parameters comprises:

adjusting an amount of at least one of the at least two fuels provided to the helical static mixer by modulating a control valve disposed in fluid communication on the fuel supply circuit.

5. The method as in claim 1 , further comprising, prior to providing the fuel mixture to the combustion system, providing the fuel mixture from the helical static mixer to a second helical static mixer.

6. The method as in claim 1 , further comprising providing the fuel mixture from the helical static mixer to a second helical static mixer, mixing the fuel mixture with another one of the at least two fuels in the second helical static mixer to form a second fuel mixture, and providing the second fuel mixture to the combustion system.

7. The method as in claim 1 , further comprising combusting the fuel mixture in the combustion system to form exhaust gases and providing at least some of the exhaust gases to the fuel supply system as one of the at least two fuels.

8. The method as in claim 7 , further comprising providing ammonia to the exhaust gases prior to providing the at least some of the exhaust gases to the fuel supply system.

9. The method as in claim 1 , wherein the fuel supply circuit includes an electric heater disposed in thermal communication on the main fuel supply line upstream of the recirculation line and one or more valves disposed in fluid communication on the main fuel supply line downstream of the electric heater.

10. The method as in claim 1 , wherein the fuel supply system further includes an outlet line extending from the helical static mixer to the combustion system, wherein a heat exchanger is disposed in thermal communication on the outlet line.

11. A system for blending at least two fuels, the system comprising:

a combustion system;

a helical static mixer including a plurality of helical structures;

a fuel supply system for supplying at least two fuels to the helical static mixer and the combustion system, the fuel supply system including a fuel supply circuit for each fuel of the at least two fuels, the fuel supply circuit including a main fuel supply line, a recirculation line extending from an inlet on the main fuel supply line and an outlet on the main fuel supply line, and an atmospheric vent line extending from the main fuel supply line between the inlet and the outlet;

one or more sensors operably connected to the fuel supply system;

a controller operably connected to the fuel supply system, the helical static mixer, and the one or more sensors, the controller including the controller including memory and one or more processors, the memory storing instructions that when executed by the one or more processors cause the system to perform one or more operations including:

providing at least two fuels to the helical static mixer via a fuel supply system;

mixing, via the plurality of helical structures of the helical static mixer, the at least two fuels to form a fuel mixture;

determining, via one or more sensors, a measured interchangeability index of the fuel mixture, the interchangeability index being one of a measured Wobbe Index of the fuel mixture or a measured Modified Wobbe Index of the fuel mixture;

comparing the measured interchangeability index to a predetermined interchangeability index;

adjusting, via the fuel supply system, one or more parameters of at least one of the at least two fuels based on the comparison between the measured interchangeability index and the predetermined interchangeability index; and

providing the fuel mixture to the combustion system.

12. The system as in claim 11 , wherein the one or more parameters include at least one of a pressure, a temperature, an amount, and a flow rate.

13. The system as in claim 11 , wherein adjusting the one or more parameters comprises:

adjusting a temperature of at least one of the at least two fuels via an electric heater disposed in thermal communication on the fuel supply circuit.

14. The system as in claim 11 , wherein adjusting the one or more parameters comprises:

adjusting an amount of at least one of the at least two fuels provided to the helical static mixer by modulating a control valve disposed in fluid communication on the fuel supply circuit.

15. The system as in claim 11 , further comprising a second helical static mixer downstream of the helical static mixer, and wherein the one or more operations further include further comprising providing the fuel mixture from the helical static mixer to the second helical static mixer, mixing the fuel mixture with another one of the at least two fuels via the second helical static mixer to form a second fuel mixture, and providing the second fuel mixture to the combustion system.

16. The system as in claim 11 , wherein the one or more operations further include combusting the fuel mixture in the combustion system to form exhaust gases and providing at least some of the exhaust gases to the fuel supply system as one of the at least two fuels.

17. The system as in claim 16 , wherein the one or more operations further include providing ammonia to the exhaust gases prior to providing the at least some of the exhaust gases to the fuel supply system.

18. The system as in claim 11 , further comprising a second helical static mixer and a third helical static mixer, wherein the helical static mixer and the second helical static mixer are in fluid communication with the third helical static mixer.

19. The system as in claim 11 , wherein the fuel supply circuit includes an electric heater disposed in thermal communication on the main fuel supply line upstream of the recirculation line and one or more valves disposed in fluid communication on the main fuel supply line downstream of the electric heater.

20. The system as in claim 11 , wherein the fuel supply system further includes an outlet line extending from the helical static mixer to the combustion system, wherein a heat exchanger is disposed in thermal communication on the outlet line.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 5, 2024
From: FEMI-FOWODE, TEMITAYO O.; SCIPIO, ALSTON ILFORD; ADELAKUN, ADENUGA MOSHOOD; OLUBODE, OYEBIMPE B.; STEVENS, COLIN NOEL; KARIGIANNIS, JOHN
To: GE INFRASTRUCTURE TECHNOLOGY LLC
Reel/Frame 067627/0396 →
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