IP Library › Granted Patent US 9,044,730
Granted Patent B2
US 9,044,730 · App. 14/464,260 · Granted Jun 2, 2015

System for processing hydrocarbon fuels using surfaguide

Inventors: George L. Skoptsov (Pittsburgh, PA); Alan A. Johnson (Calgary, CA)
Assignee: H Quest Partners, LP
B01J19/126C10G1/00B01J2219/1269
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Quick Facts
Patent No.
US 9,044,730
App. No.
14/464,260
Granted
Jun 2, 2015
Kind
B2
Abstract

A system for processing hydrocarbon materials includes a waveguide having a lateral portion comprising housing having a first end portion configured to be connected to an energy generator, a closed opposite end portion, a primary axis extending from the first end portion to the second end portion, and a central portion having a circular opening. A reaction tube structure comprising an outer wall made of a dielectric material is positioned in or connected to the opening of the waveguide. When hydrocarbon feedstock and process gas are fed into the reaction tube structure and energy is received in the waveguide, energy is propagated to the reaction tube structure to form a plasma within the reaction tube structure and cause the feedstock and process gas to react and form into a product stream.

Claims (47)

1. A system for processing hydrocarbon materials, comprising:

a hydrocarbon feedstock source;

a process gas source, wherein the process gas source comprises one or more sources of gases selected from the group consisting of helium, argon, krypton, neon, xenon, methane, propane, butane, ethane, acetylene, propylene, butylene, ethylene, carbon monoxide, carbon dioxide, water vapor, hydrogen, and nitrogen;

a waveguide comprising a housing having a first end portion configured to be connected to a microwave generator, a closed opposite end portion, and a central portion having a slot, wherein the central portion has a depth that is perpendicular to a primary axis of the waveguide and smaller than a corresponding depth of the first end portion and the second end portion, wherein the waveguide further comprises at least one plasma column positioned to have a longest dimension that is parallel to the primary axis and configured to generate a plasma and transmit the generated plasma into the reaction tube structure; and

a reaction tube structure comprising an outer wall made of a dielectric material, wherein the reaction tube structure is configured so that a lateral dimension of the reaction tube structure extends through the slot in a position that is perpendicular to the primary axis of the waveguide;

wherein when hydrocarbon feedstock from the feedstock source and process gas from the process gas source are fed into the reaction tube structure and energy is received in the waveguide, energy is propagated to the reaction tube structure to form a plasma within the reaction tube structure and cause the feedstock and process gas to react and form into a product stream.

2. The system of claim 1 , wherein the product stream comprises a fuel product having 5-30 carbon atoms per molecule.

3. The system of claim 1 , wherein the slot is located on a side of the waveguide to allow for the passage of microwaves received in the waveguide into the reaction tube in the direction generally perpendicular to the primary axis.

4. The system of claim 3 , wherein, during operation, the energy received in the waveguide comprises microwaves, and the system is further configured to propagate the energy as an electromagnetic surface wave within the reaction tube structure.

5. The system of claim 1 , wherein reaction tube structure is positioned to receive the hydrocarbon feedstock from the hydrocarbon feedstock source through the waveguide.

6. The system of claim 1 , wherein, the at least one plasma column is configured to form at least a part of the product stream during operation.

7. The system of claim 1 , wherein the reaction tube comprises a wide portion and a tapered portion, and the tapered portion is positioned to receive the plasma column.

8. The system of claim 1 , wherein:

the waveguide further comprises a plurality of additional slots in the central portion; and

the system further comprises a plurality of additional reaction tube structures, each of which is positioned to be received by one of the additional slots.

9. The system of claim 1 , wherein the hydrocarbon feedstock source comprises a source of coal, bitumen, oil sands, tar sands, oil shale, petroleum resids, asphaltenes, pre-asphaltenes or other vitrinite or kerogen-containing materials.

10. A system for processing hydrocarbon materials, comprising:

a hydrocarbon feedstock source;

a process gas source, wherein the process gas source comprises one or more sources of gases selected from the group consisting of helium, argon, krypton, neon, xenon, methane, propane, butane, ethane, acetylene, propylene, butylene, ethylene, carbon monoxide, carbon dioxide, water vapor, hydrogen, and nitrogen;

a waveguide comprising:

a lateral portion comprising housing having a first end portion configured to be connected to a microwave generator, a closed opposite end portion, a primary axis extending from the first end portion to the second end portion, and a central portion having an opening, wherein the central portion has a depth that is smaller than a corresponding depth of the first end portion and the second end portion, and

a coaxial portion having a first end portion connected to the opening and a lateral dimension that is perpendicular to the primary axis; and

a reaction tube structure comprising an outer wall made of a dielectric material, wherein the reaction tube structure is configured so that when hydrocarbon feedstock from the feedstock source and process gas from the process gas source are fed into the reaction tube structure and microwaves are received in the waveguide, one or more surface waves are propagated in the reaction tube structure to form a plasma within the reaction tube structure and cause the feedstock and process gas to react and form into a product stream, and wherein the reaction tube structure has a lateral dimension that extends through the slot so that the lateral dimension in a position that is perpendicular to the primary axis of the lateral portion and is configured to connect to the coaxial portion.

11. The system of claim 10 , wherein the reaction tube structure is positioned to receive the hydrocarbon feedstock from the hydrocarbon feedstock source through the waveguide.

12. The system of claim 10 , wherein the reaction tube structure has a lateral dimension that is parallel to the lateral portion and perpendicular to the coaxial portion, and the reaction tube structure is connected to a second end of the coaxial portion.

13. The system of claim 12 , wherein the reaction tube structure also comprises an end that is positioned to receive the hydrocarbon feedstock from the hydrocarbon feedstock source at a location that is distal from a location where the reaction tube structure is connected to a second end of the coaxial portion.

14. The system of claim 10 , wherein the product stream comprises a fuel product having 5-30 carbon atoms per molecule.

15. The system of claim 10 , wherein the coaxial portion comprises at least one plasma column positioned to have a longest dimension that is parallel to the primary axis and configured to generate the plasma and transmit the generated plasma into the reaction tube structure.

16. The system of claim 15 , wherein, the at least one plasma column is configured to form at least a part of the product stream during operation.

17. The system of claim 15 , wherein the reaction tube comprises a wide portion and a tapered portion, and the tapered portion is positioned to receive the plasma column.

18. The system of claim 10 , wherein the hydrocarbon feedstock source comprises a source of coal, bitumen, oil sands, tar sands, oil shale, petroleum resids, asphaltenes, pre-asphaltenes or other vitrinite or kerogen-containing materials.

19. A system for processing hydrocarbon materials, comprising:

a hydrocarbon feedstock source;

a process gas source, wherein the process gas source comprises one or more sources of gases selected from the group consisting of helium, argon, krypton, neon, xenon, methane, propane, butane, ethane, acetylene, propylene, butylene, ethylene, carbon monoxide, carbon dioxide, water vapor, hydrogen, and nitrogen;

a waveguide comprising:

a lateral portion comprising housing having a first end portion configured to be connected to a microwave generator, a closed opposite end portion, a primary axis extending from the first end portion to the second end portion, and a central portion having an opening, wherein the central portion has a depth that is smaller than a corresponding depth of the first end portion and the second end portion, and

a coaxial portion having a first end portion connected to the opening and a lateral dimension that is perpendicular to the primary axis; and

a reaction tube structure comprising an outer wall made of a dielectric material, wherein the reaction tube structure is configured so that when hydrocarbon feedstock from the feedstock source and process gas from the process gas source are fed into the reaction tube structure and microwaves are received in the waveguide, one or more surface waves are propagated in the reaction tube structure to form a plasma within the reaction tube structure and cause the feedstock and process gas to react and form into a product stream, and wherein the reaction tube structure has a lateral dimension that is parallel to the lateral portion and perpendicular to the coaxial portion, and the reaction tube structure is connected to a second end of the coaxial portion.

20. The system of claim 19 , wherein the reaction tube structure also comprises an end that is positioned to receive the hydrocarbon feedstock from the hydrocarbon feedstock source at a location that is distal from a location where the reaction tube structure is connected to a second end of the coaxial portion.

21. A system for processing hydrocarbon materials, comprising:

a hydrocarbon feedstock source;

a process gas source, wherein the process gas source comprises one or more sources of gases selected from the group consisting of helium, argon, krypton, neon, xenon, methane, propane, butane, ethane, acetylene, propylene, butylene, ethylene, carbon monoxide, carbon dioxide, water vapor, hydrogen, and nitrogen;

a waveguide comprising:

a lateral portion comprising housing having a first end portion configured to be connected to a microwave generator, a closed opposite end portion, a primary axis extending from the first end portion to the second end portion, and a central portion having an opening, wherein the central portion has a depth that is smaller than a corresponding depth of the first end portion and the second end portion, and

a coaxial portion having a first end portion connected to the opening and a lateral dimension that is perpendicular to the primary axis, wherein the coaxial portion comprises at least one plasma column positioned to have a longest dimension that is parallel to the primary axis and configured to generate the plasma and transmit the generated plasma into the reaction tube structure; and

a reaction tube structure comprising an outer wall made of a dielectric material, wherein the reaction tube structure is configured so that when hydrocarbon feedstock from the feedstock source and process gas from the process gas source are fed into the reaction tube structure and microwaves are received in the waveguide, one or more surface waves are propagated in the reaction tube structure to form a plasma within the reaction tube structure and cause the feedstock and process gas to react and form into a product stream.

22. The system of claim 21 , wherein the reaction tube comprises a wide portion and a tapered portion, and the tapered portion is positioned to receive the plasma column.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 20, 2014
From: SKOPTSOV, GEORGE L.; JOHNSON, ALAN A.
To: H QUEST PARTNERS, LP
Reel/Frame 033574/0894 →
Continuity (2)
Provisional Application 61867900 · Aug 20, 2013
Related Publication 20150053591A1 · Feb 26, 2015