Methods and Systems for Syngas Production
The reverse water-gas shift (RWGS) reaction, which is used to convert H2 and CO2 into syngas (H2+CO) is performed using nonstoichiometric metal oxides. The RWGS reaction is performed in two separate steps, achieving both high conversion and high energy efficiency. The reaction may be performed in a single reactor or in multiple reactors arranged in series or parallel. This could be powered either by heat generated by distributed energy sources, concentrated solar thermal (CST) heat, heat from traditional energy generation sources, and/or waste electrical power.
1 . A method comprising:
a first reducing of a solid using a first feedstock and resulting in a first oxidizing of the first feedstock to a first product; and
a second oxidizing of the solid using a second feedstock and resulting in a second reducing of the second feedstock to a second product; wherein:
the first reducing and the second oxidizing are performed in a reactor.
2 . The method of claim 1 , further comprising:
repeating the first reducing and the second reducing; wherein:
the repeating is performed in the reactor.
3 . The method of claim 1 , further comprising:
a first purging of the reactor; and
a second purging of the reactor; wherein:
the first purging is performed after the first reducing, and
the second purging is performed after the second oxidizing.
4 . The method of claim 3 , wherein:
the purging comprises directing an inert gas into and out of the reactor.
5 . The method of claim 1 , further comprising:
a first routing of the first feedstock through a first packed bed;
a second routing of the first product through a second packed bed;
a third routing of the second feedstock through the second packed bed; and
a fourth routing of the second product through the first packed bed; wherein:
the first routing is performed prior to the first reducing,
the second routing is performed after the first reducing,
the third routing is performed prior to the second oxidizing, and
the fourth routing is performed after the second oxidizing.
6 . The method of claim 5 , wherein:
the first packed bed and the second packed bed comprise at least one of gravel, ceramic beads, or a heat transfer fluid.
7 . The method of claim 1 , further comprising:
receiving a heat from a heat source; wherein:
the receiving is performed during the first reducing.
8 . The method of claim 7 , wherein:
the heat source comprises a distributed energy resource.
9 . The method of claim 1 , wherein:
the first feedstock comprises H 2 ,
the first product comprises H 2 O,
the second feedstock comprises CO 2 , and
the second product comprises CO.
10 . The method of claim 9 , further comprising:
mixing the first feedstock and the second product to form a syngas.
11 . The method of claim 10 , wherein:
the second oxidizing is performed at a temperature in the range of about 500° C. to about 900° C.
12 . The method of claim 9 , wherein:
the CO 2 is in the second feedstock in the range of about 0 mol to about 4 mol.
13 . The method of claim 1 , wherein:
the first feedstock comprises N 2 , and
the first product comprises N 2 and O 2 .
14 . The method of claim 1 , wherein:
the second feedstock comprises water, and
the second product comprises H 2 .
15 . The method of claim 1 , wherein:
the first feedstock comprises methane,
the first product comprises CO 2 and H 2 O,
the second feedstock comprises CO 2 and H 2 O, and
the second product comprises at least one of CO or H 2 .
16 . The method of claim 1 , wherein:
the solid comprises an inorganic perovskite having a stoichiometry of ABO 3 , where A is a first cation and B is a second cation.
17 . The method of claim 16 wherein:
A includes at least one of yttrium, lanthanum, calcium, strontium, barium, or cerium.
18 . The method of claim 16 , wherein:
B includes at least one of titanium, chromium, manganese, iron, cobalt, or aluminum.
19 . The method of claim 1 , wherein the solid includes at least one of a ceria solution or ferrite oxide.
20 . The method of claim 19 , wherein:
the solid comprises CeZr.