IP Library › Granted Patent US 12,600,623
Granted Patent B2
US 12,600,623 · App. 17/825,170 · Granted Apr 14, 2026

Method for continuously producing hydrogen using an eight-port wave reformer

Inventors: Pejman Akbari (Pasadena, CA); Colin D. Copeland (Pitt Meadows, CA); Stefan Tuchler (Bath, GB); Mark Davidson (Gainesville, FL)
Assignee: New Wave Hydrogen, Inc.
C01B3/24C01B2203/0211
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Quick Facts
Patent No.
US 12,600,623
App. No.
17/825,170
Granted
Apr 14, 2026
Kind
B2
Abstract

An improved hydrogen generation system comprising a multi-port wave reformer in which shock and expansion waves are created in a manner causing head-on colliding shock waves and multi-stage compression where reacting gases within a eight port wave reformer are heated and compressed to thermally crack or decompose one or more fuel sources, such as hydrocarbon fuels, to generate a fuel product containing hydrogen.

Claims (9)

1 . A hydrogen generation system comprising a multi-port wave reformer, including a rotor rotating within an outer casing and supporting end walls at opposite ends thereof, in which shock and expansion waves are created at two spaced apart locations in said rotor and in a manner causing head-on colliding shock waves and multi-stage compression where reacting gases within the wave reformer are heated and compressed to thermally crack or decompose one or more fuel sources to generate a fuel product containing hydrogen, wherein the multi-port wave reformer comprises an eight-port wave reformer including a reactant inlet port on one of said opposite end walls for admitting a reactant fluid and a reactant exhaust port on the same said one of said opposite end walls and spaced from said reactant inlet port for exhausting processed reactant fluid, whereby the reactant fluid can enter and be exhausted from the same end of the rotor, separate inlet ports on each of said opposite end walls for inputting a first driver fluid, as well as separate exhaust ports on each of said opposite end walls for exhausting the first driver fluid, and a second driver fluid inlet port on the other of said opposite end walls for inputting a second driver fluid, as well as a separate second driver fluid exhaust port on said other of said opposite end walls spaced from said second driver fluid inlet port.

2 . The hydrogen generation system as in claim 1 wherein the fuel source can comprise a hydrocarbon fuel.

3 . A hydrogen generation system comprising an eight port wave reformer, including a rotor rotating within an outer casing and supporting end walls at opposite ends thereof, a reactant fluid input port at one of said opposite ends of the rotor for inputting a reactant fluid into the reformer in which shock and expansion waves are created in the rotor following the input of each of a first driver fluid through each of the end walls at both opposite ends of the rotor, and next following the input of a second driver fluid through the other of said one of said opposite end walls, thereby causing multi-stage shock compression at spaced apart locations in said rotor where reacting fluids gases remain for a longer time within the eight port wave reformer and are heated and compressed to thermally crack or decompose one or more fuel sources to generate a fuel product containing hydrogen that is thereafter exhausted from said rotor from a processed reactant fluid exhaust port located on said one of said opposite ends of the rotor and spaced from said reactant fluid input port.

4 . The hydrogen generation system as in claim 3 wherein the fuel source can comprise a hydrocarbon fuel.

5 . The hydrogen generation system as in claim 3 wherein the eight port wave reformer develops spaced apart shock wave locations as each of the first and second driver fluids are admitted.

6 . The hydrogen generation system as in claim 5 , wherein said processed reactant fluid exhaust port discharges processed reactant fluid that includes hydrogen following a second shock wave location.

7 . The hydrogen generation system as in claim 3 , wherein the eight ports include two sets of four ports at each opposing end of said rotor, each of said sets of four ports including two spaced apart inlet portion and two spaced apart exhaust ports.

8 . The hydrogen generation system as in claim 3 for wherein a set of four ports at one end includes separate inlet ports for a reactant fluid and a first driver fluid, as well as separate exhaust ports for processed reactant fluid and a first portion of said first driver fluid, and a set of four ports at an opposite end includes separate inlet ports for another portion of the first driver fluid and a second driver fluid, as well as separate exhaust ports for each of a second portion of said first driver fluid and the second driver fluid.

9 . An eight-port wave reactor having a plurality of inlet ports and exhaust ports provided in a pair of opposing end walls thereof, with a first pair of spaced apart inlet and exhaust ports on one of said pair of opposing end walls of the wave reactor that collectively allows a driven reactant fluid to enter and leave as a processed reactant fluid that includes hydrogen from said one of said pair of opposing end walls of the wave reactor, an additional pair of spaced apart inlet and exhaust ports on the each of said pair of opposing end walls of the wave reactor that collectively allow a first driver fluid to enter and leave from each of said pair of opposing end walls of the wave reactor, and an additional pair of spaced apart inlet and exhaust ports on another one of said pair of opposing end walls of the wave reactor that collectively allow a second driver fluid to enter and leave from said another one of said pair of opposing end walls of the wave reactor to thereby cause shock waves to be created as a consequence of inputting of each of the first and second driver fluids to thereby compress and thermally crack or decompose fuel sources to generate said processed reactant fluid.

Continuity (2)
Provisional Application 63193400 · May 26, 2021
Related Publication 20220380211A1 · Dec 1, 2022
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