Oxygen transporting membranes in syngas production

Research output: Chapter in book/report/conference proceedingContribution to book/anthologyResearchpeer review

Authors

  • Jürgen Caro
  • Fangyi Liang
View graph of relations

Details

Original languageEnglish
Title of host publicationSmall-Scale Gas to Liquid Fuel Synthesis
Pages51-84
Number of pages34
ISBN (electronic)9781466599390
Publication statusE-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.

Cite this

Oxygen transporting membranes in syngas production. / Caro, Jürgen; Liang, Fangyi.
Small-Scale Gas to Liquid Fuel Synthesis. 2015. p. 51-84.

Research output: Chapter in book/report/conference proceedingContribution to book/anthologyResearchpeer review

Caro, J & Liang, F 2015, Oxygen transporting membranes in syngas production. in Small-Scale Gas to Liquid Fuel Synthesis. pp. 51-84. https://doi.org/10.1201/b18075
Caro, J., & Liang, F. (2015). Oxygen transporting membranes in syngas production. In Small-Scale Gas to Liquid Fuel Synthesis (pp. 51-84) Advance online publication. https://doi.org/10.1201/b18075
Caro J, Liang F. Oxygen transporting membranes in syngas production. In Small-Scale Gas to Liquid Fuel Synthesis. 2015. p. 51-84 Epub 2015 Jul 1. doi: 10.1201/b18075
Caro, Jürgen ; Liang, Fangyi. / Oxygen transporting membranes in syngas production. Small-Scale Gas to Liquid Fuel Synthesis. 2015. pp. 51-84
Download
@inbook{93790e18bb654ffeb5b5e188610c0d89,
title = "Oxygen transporting membranes in syngas production",
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.",
author = "J{\"u}rgen Caro and Fangyi Liang",
year = "2015",
month = jul,
day = "1",
doi = "10.1201/b18075",
language = "English",
isbn = "9781466599383",
pages = "51--84",
booktitle = "Small-Scale Gas to Liquid Fuel Synthesis",

}

Download

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 -