Details
Original language | English |
---|---|
Title of host publication | Small-Scale Gas to Liquid Fuel Synthesis |
Pages | 51-84 |
Number of pages | 34 |
ISBN (electronic) | 9781466599390 |
Publication status | E-pub ahead of print - 1 Jul 2015 |
Abstract
The traditional way to produce synthesis gas is methane steam reforming (MSR) according to CH4+ H2O → 3H2+ CO. In following high- and low-temperature water gas shift steps according to CO + H2O → CO2+ H2, the desired H2/CO ratio of 2 can be established. In the autothermal reforming, the endothermic steam reforming (SR) is coupled with some methane partial oxidation according to CH4+ (1/2)O2→ CO + 2H2. However, also in the case of autothermal reforming, the H2/CO ratio is near 3 and has to be established.
ASJC Scopus subject areas
Cite this
- Standard
- Harvard
- Apa
- Vancouver
- BibTeX
- RIS
Small-Scale Gas to Liquid Fuel Synthesis. 2015. p. 51-84.
Research output: Chapter in book/report/conference proceeding › Contribution to book/anthology › Research › peer review
}
TY - CHAP
T1 - Oxygen transporting membranes in syngas production
AU - Caro, Jürgen
AU - Liang, Fangyi
PY - 2015/7/1
Y1 - 2015/7/1
N2 - The traditional way to produce synthesis gas is methane steam reforming (MSR) according to CH4+ H2O → 3H2+ CO. In following high- and low-temperature water gas shift steps according to CO + H2O → CO2+ H2, the desired H2/CO ratio of 2 can be established. In the autothermal reforming, the endothermic steam reforming (SR) is coupled with some methane partial oxidation according to CH4+ (1/2)O2→ CO + 2H2. However, also in the case of autothermal reforming, the H2/CO ratio is near 3 and has to be established.
AB - The traditional way to produce synthesis gas is methane steam reforming (MSR) according to CH4+ H2O → 3H2+ CO. In following high- and low-temperature water gas shift steps according to CO + H2O → CO2+ H2, the desired H2/CO ratio of 2 can be established. In the autothermal reforming, the endothermic steam reforming (SR) is coupled with some methane partial oxidation according to CH4+ (1/2)O2→ CO + 2H2. However, also in the case of autothermal reforming, the H2/CO ratio is near 3 and has to be established.
UR - http://www.scopus.com/inward/record.url?scp=85053992287&partnerID=8YFLogxK
U2 - 10.1201/b18075
DO - 10.1201/b18075
M3 - Contribution to book/anthology
AN - SCOPUS:85053992287
SN - 9781466599383
SP - 51
EP - 84
BT - Small-Scale Gas to Liquid Fuel Synthesis
ER -