Selective hydrogen combustion as an effective approach for intensified chemical production via the chemical looping strategy

被引:30
作者
Dudek, Ryan B. [1 ]
Li, Fanxing [1 ]
机构
[1] North Carolina State Univ, Dept Chem Biomol Engn, 911 Partners Way, Raleigh, NC 27606 USA
基金
美国国家科学基金会;
关键词
Process intensification; Chemical looping; Selective hydrogen combustion; Oxidative dehydrogenation; Light olefins; ETHANE OXIDATIVE DEHYDROGENATION; MOLYBDENUM OXIDE CATALYSTS; METHANE PARTIAL OXIDATION; PROMOTED MAGNESIA CATALYST; PEROVSKITE-TYPE OXIDES; SHELL REDOX CATALYSTS; O MIXED OXIDES; LIGHT ALKANES; ETHYLENE PRODUCTION; PROCESS SIMULATIONS;
D O I
10.1016/j.fuproc.2021.106827
中图分类号
O69 [应用化学];
学科分类号
081704 ;
摘要
Demand continues to grow rapidly for commodity chemicals, such as light olefins, at a time when the chemicals sector must strive to reduce its energy consumption and greenhouse gas emissions. Process intensification provides a framework for producing the same chemical products with higher efficiency and lower emissions. In recent years, chemical looping has received increasing attention as a strategy for intensified chemical production. For example, the chemical looping oxidative dehydrogenation (CL-ODH) of ethane to ethylene offers the potential for near order-of-magnitude reductions in process energy usage and CO2 emissions in comparison to conventional ethane steam cracking, while chemical looping dehydroaromatization (CL-DHA) of methane offers a pathway for aromatics production at higher yields. In these examples, the CL processes rely on selective hydrogen combustion (SHC) to remove the co-produced H2 gas as water, providing several benefits, including yield increase, autothermal operation, and simplified downstream separation. As a yield-enhancing strategy, SHC is not new. However, the design of redox catalysts for SHC in a chemical looping context has only recently begun to be explored. In this perspective, we summarize previous research on SHC in chemical production schemes, and we attempt to outline priority areas of research in the years to come.
引用
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页数:20
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共 206 条
[1]   Progress in Chemical-Looping Combustion and Reforming technologies [J].
Adanez, Juan ;
Abad, Alberto ;
Garcia-Labiano, Francisco ;
Gayan, Pilar ;
de Diego, Luis F. .
PROGRESS IN ENERGY AND COMBUSTION SCIENCE, 2012, 38 (02) :215-282
[2]  
Agaskar P.A., 1996, US Patent, Patent No. [5,527,979, 5527979]
[3]   VOx/c-Al2O3 catalyst for oxidative dehydrogenation of ethane to ethylene: Desorption kinetics and catalytic activity [J].
Al-Ghamdi, S. ;
Volpe, M. ;
Hossain, M. M. ;
de Lasa, H. .
APPLIED CATALYSIS A-GENERAL, 2013, 450 :120-130
[4]   Propylene production via propane oxidative dehydrogenation over VOx/γ- Al2O3 catalyst [J].
Al-Ghamdi, Sameer A. ;
de lasa, Hugo I. .
FUEL, 2014, 128 :120-140
[5]   New Trends in Olefin Production [J].
Amghizar, Ismael ;
Vandewalle, Laurien A. ;
Van Geem, Kevin M. ;
Marin, Guy B. .
ENGINEERING, 2017, 3 (02) :171-178
[6]   Expert credibility in climate change [J].
Anderegg, William R. L. ;
Prall, James W. ;
Harold, Jacob ;
Schneider, Stephen H. .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2010, 107 (27) :12107-12109
[7]   High catalytic activity at low temperature in oxidative dehydrogenation of propane with Cr-Al pillared clay [J].
Andrea De Leon, Maria ;
De Los Santos, Carolina ;
Latronica, Luis ;
Maria Cesio, Ana ;
Volzone, Cristina ;
Castiglioni, Jorge ;
Sergio, Marta .
CHEMICAL ENGINEERING JOURNAL, 2014, 241 :336-343
[8]  
[Anonymous], 2017, Climate Science Special Report: Fourth National Climate Assessment, VI.
[9]  
[Anonymous], 2001, Report of the Committee on the Science of Climate Change. Climate Change Science: An Analysis of Some Key Questions, DOI DOI 10.17226/10139
[10]   Ethane oxidative dehydrogenation pathways on vanadium oxide catalysts [J].
Argyle, MD ;
Chen, KD ;
Bell, AT ;
Iglesia, E .
JOURNAL OF PHYSICAL CHEMISTRY B, 2002, 106 (21) :5421-5427