IP Library Granted Patent US 12,358,787
Granted Patent B2
US 12,358,787 · App. 18/904,051 · Granted Jul 15, 2025

Systems and methods for an internal combustion engine utilizing ammonia as a fuel source and as a heat-exchange medium for engine cooling

Inventors: James L. Wall, II (Concord, NC); David Gwynn Kapp, Jr. (Concord, NC)
Assignee: First Ammonia Motors, Inc.
C01B3/047F02M21/0206F02M21/0227C01B2203/0277C01B2203/085C01B2203/1035C01B2203/1205C01B2203/1623C01B2203/84
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Quick Facts
Patent No.
US 12,358,787
App. No.
18/904,051
Granted
Jul 15, 2025
Kind
B2
Abstract

The present invention relates, in general, to systems and methods for generating hydrogen from ammonia on-board vehicles, where the produced hydrogen is used as fuel source for an internal combustion engine along with ammonia. The present invention utilizes ammonia not only as a co-fuel for the engine, but also as a heat-exchange medium used by a cooling system for the internal combustion engine, such that the heat is transferred from hot engine coolant to the ammonia, thereby cooling the engine coolant, and also pre-heating the ammonia.

Claims (38)

1. A system for heat-exchange between ammonia and engine coolant for an internal combustion engine, comprising:

an ammonia tank containing liquid ammonia;

an expansion valve receiving liquid ammonia from the ammonia tank, the expansion valve effecting a state change of the liquid ammonia to gaseous ammonia;

a heat-exchange unit fluidly coupled to the expansion valve and to the internal combustion engine, the heat-exchange unit receiving gaseous ammonia from the expansion valve; and

a radiator fluidly coupled to the heat-exchange unit and to the internal combustion engine, the radiator receiving hot engine coolant from the internal combustion engine, and the radiator supplying the hot engine coolant to the heat-exchange unit,

wherein heat is transferred from the hot engine coolant to the gaseous ammonia within the heat-exchange unit, resulting in heated gaseous ammonia and cooled engine coolant,

wherein the heated gaseous ammonia exits the heat-exchange unit and is supplied to the internal combustion engine, and

wherein the cooled engine coolant exits the heat-exchange unit and is supplied to the radiator.

2. The system of claim 1 , wherein the heated gaseous ammonia is supplied to the internal combustion engine for use as a combustion fuel.

3. The system of claim 1 , wherein during a cold state of the internal combustion engine, only the heated gaseous ammonia is supplied to the internal combustion engine for use as a combustion co-fuel along with hydrogen and nitrogen resulting from ammonia decomposition.

4. The system of claim 1 , wherein the heat-exchange unit is an evaporator.

5. The system of claim 1 , wherein the heat-exchange unit has a structure consisting of a series of parallel plates that allows heat-exchange via a parallel flow of the ammonia and the hot engine coolant.

6. The system of claim 1 , wherein the gaseous ammonia is pre-heated within the heat-exchange unit, thereby maintaining a gaseous state as it traverses within the heat-exchange unit.

7. The system of claim 1 , wherein the internal combustion engine utilizes as combustion co-fuels only (i) the heated gaseous ammonia and (ii) constituent hydrogen and nitrogen generated from the liquid ammonia stored in the ammonia tank.

8. A system for heat-exchange between ammonia and engine coolant for an internal combustion engine, comprising:

an ammonia tank containing liquid ammonia;

an expansion valve receiving liquid ammonia from the ammonia tank, the expansion valve effecting a state change of the liquid ammonia to gaseous ammonia; and

a heat-exchange unit fluidly coupled to the expansion valve and to the internal combustion engine, the heat-exchange unit receiving gaseous ammonia from the expansion valve, and the heat-exchange unit receiving hot engine coolant from the internal combustion engine,

wherein heat is transferred from the hot engine coolant to the gaseous ammonia within the heat-exchange unit, resulting in heated gaseous ammonia and cooled engine coolant, and

wherein the heated gaseous ammonia and the cooled engine coolant exit the heat-exchange unit and are supplied to the internal combustion engine.

9. The system of claim 8 , wherein the heated gaseous ammonia is supplied to the internal combustion engine for use as a combustion fuel.

10. The system of claim 8 , wherein only the heated gaseous ammonia is supplied to the internal combustion engine for use as a combustion co-fuel along with constituent hydrogen and nitrogen resulting from ammonia decomposition.

11. The system of claim 8 , wherein the heat-exchange unit is an evaporator.

12. The system of claim 8 , wherein the heat-exchange unit has a structure consisting of a series of parallel plates that allows heat-exchange via a parallel flow of the ammonia and the hot engine coolant.

13. The system of claim 8 , wherein during a cold start of the internal combustion engine, only the heated gaseous ammonia and hydrogen and nitrogen resulting from ammonia decomposition are supplied to the internal combustion engine for use as combustion co-fuels.

14. The system of claim 8 , wherein the internal combustion engine utilizes as combustion co-fuels (i) the heated gaseous ammonia and (ii) constituent hydrogen and nitrogen generated from the liquid ammonia stored in the ammonia tank.

15. A system for heat-exchange between ammonia and engine coolant for an internal combustion engine, comprising:

an ammonia tank containing liquid ammonia;

an expansion valve receiving liquid ammonia from the ammonia tank, the expansion valve effecting a state change of the liquid ammonia to gaseous ammonia; and

a heat-exchange unit fluidly coupled to expansion valve and to the internal combustion engine, the heat-exchange unit receiving the gaseous ammonia from the expansion valve, and the heat-exchange unit receiving hot engine coolant from the internal combustion engine,

wherein the gaseous ammonia and the hot engine coolant undergo a heat-exchange within the heat-exchange unit, resulting in heated gaseous ammonia and cooled engine coolant, and

wherein the heated gaseous ammonia exits the heat-exchange unit and is supplied to the internal combustion engine for use as a combustion co-fuel along with hydrogen,

wherein the cooled engine coolant exits the heat-exchange unit and is supplied to the internal combustion engine.

16. The system of claim 15 , wherein the heat-exchange unit is an evaporator.

17. The system of claim 15 , wherein the heat-exchange unit has a structure consisting of a series of parallel plates that allows heat-exchange via a parallel flow of the mixed phase liquid and gas ammonia and the hot engine coolant.

18. The system of claim 15 , wherein during a cold start of the internal combustion engine, only the heated gaseous ammonia and hydrogen and nitrogen resulting from ammonia decomposition are supplied to the internal combustion engine for use as combustion co-fuels.

19. The system of claim 15 , wherein the internal combustion engine utilizes only the heated gaseous ammonia and hydrogen generated from the liquid ammonia stored in the ammonia tank as combustion co-fuels.

20. The system of claim 15 , wherein the heat-exchange unit has a structure that allows heat-exchange via a counter-current flow of the mixed phase liquid and gas ammonia and the hot engine coolant.

Continuity (5)
Continuation In Part 18660466 · May 10, 2024
Continuation In Part 18241328 · Sep 1, 2023
Continuation 17986265 · Nov 14, 2022
Provisional Application 63395820 · Aug 6, 2022
Related Publication 20250033957A1 · Jan 30, 2025
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