IP Library Granted Patent US 11,623,199
Granted Patent B2
US 11,623,199 · App. 17/361,213 · Granted Apr 11, 2023

Solar thermochemical processing system and method

Inventors: Robert S. Wegeng (Richland, WA); Paul H. Humble (Kennewick, WA); Shankar Krishnan (Wilsonville, OR); Steven D. Leith (Albany, OR); Daniel R. Palo (Chisholm, MN); Robert A. Dagle (Richland, WA)
Assignee: Battelle Memorial Institute
B01J19/127C01B3/384C01B3/48C10G2/30C10K3/04F01K3/188F22B1/006F24S20/20H01M8/0612B01J2219/00006B01J2219/00159B01J2219/089B01J2219/0883C01B2203/0233C01B2203/0283C01B2203/0445C01B2203/061C01B2203/0855C01B2203/1288Y02E10/40Y02P20/129Y02P20/133Y10T29/49826Y10T137/8593
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Quick Facts
Patent No.
US 11,623,199
App. No.
17/361,213
Granted
Apr 11, 2023
Kind
B2
Abstract

A solar thermochemical processing system is disclosed. The system includes a first unit operation for receiving concentrated solar energy. Heat from the solar energy is used to drive the first unit operation. The first unit operation also receives a first set of reactants and produces a first set of products. A second unit operation receives the first set of products from the first unit operation and produces a second set of products. A third unit operation receives heat from the second unit operation to produce a portion of the first set of reactants.

Claims (9)

1. A method of providing a solar energy augment to the chemical energy content of a reactant stream, the method comprising: heating a solar reforming reactor from a solar concentrator, the reactor comprising reactor channels and product return flow channels separated by a middle plate, the middle plate providing both a wall of the reactor channels and wall of the product return flow channels; reacting the reactants in the presence of a catalyst in the reaction channels of the reactor to generate a product stream; and conveying the product stream from the reaction channels to the product return channels while maintaining thermal contact across the middle plate and between the product stream and the reactants in the reaction zone.

2. The method of claim 1 further comprising combusting the product stream in order to provide heat to a power system or for other unit operations requiring heat.

3. The method of claim 1 wherein the power system or the unit operations requiring heat is a combined cycle, fuel cell or power plant, or a factory or chemical process facility requiring heat for steam generation.

4. The method of claim 1 further comprising providing the reactants to a centerpoint of the reactor and conveying the reactants through the reaction channels to a perimeter of the reactor.

5. The method of claim 1 further comprising exchanging the heat from the product stream with the reactants prior to the reactants entering the reaction zone.

6. The method of claim 1 wherein the product stream output is in thermal contact with the reactant stream intake.

7. The method of claim 1 wherein the solar thermochemical augment is at least 20%, wherein the solar thermochemical augment is measured as the increase in Higher Heating Value in the reacting stream divided by the Higher Heating Value of the reactants, times 100%.

8. The method of claim 1 wherein the product stream comprises syngas.

9. The method of claim 1 wherein the product stream is generated at a solar-to-chemical energy conversion efficiency greater than about 60%, wherein the product stream includes syngas, and wherein the solar thermochemical augment is at least 20%, wherein the solar thermochemical augment is measured as the increase in Higher Heating Value in the reacting stream divided by the Higher Heating Value of the reactants, times 100%.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 28, 2023
From: WEGENG, ROBERT S.; HUMBLE, PAUL H.; KRISHNAN, SHANKAR; LEITH, STEVEN D.; PALO, DANIEL R.; DAGLE, ROBERT A.
To: BATTELLE MEMORIAL INSTITUTE, PACIFIC NORTHWEST NATIONAL LABORATORIES
Reel/Frame 064419/0044 →
Continuity (4)
Division 15950068 · Apr 10, 2018
Continuation 13559127 · Jul 26, 2012
Provisional Application 61511788 · Jul 26, 2011
Related Publication 20210322946A1 · Oct 21, 2021
Cited By (1)
US 12,383,882