4.5 Article

Numerical study of hydrogen production by the sorption-enhanced steam methane reforming process with online CO2 capture as operated in fluidized bed reactors

Related references

Note: Only part of the references are listed.
Article Green & Sustainable Science & Technology

The effect of greenhouse gas policy on the design and scheduling of biodiesel plants with multiple feedstocks

Rene D. Elms et al.

CLEAN TECHNOLOGIES AND ENVIRONMENTAL POLICY (2010)

Article Green & Sustainable Science & Technology

Hydrogen production from pyrolysis oil using the steam-iron process: a process design study

Mariken Bleeker et al.

CLEAN TECHNOLOGIES AND ENVIRONMENTAL POLICY (2010)

Article Green & Sustainable Science & Technology

Using biomass as an energy source with low CO2 emissions

Rodrigo Rivera-Tinoco et al.

CLEAN TECHNOLOGIES AND ENVIRONMENTAL POLICY (2010)

Article Green & Sustainable Science & Technology

Reforming natural gas for CO2 pre-combustion capture in combined cycle power plant

Jean-Marc Amann et al.

CLEAN TECHNOLOGIES AND ENVIRONMENTAL POLICY (2009)

Article Engineering, Chemical

Determination of intrinsic rate constants of the CaO-CO2 reaction

Ping Sun et al.

CHEMICAL ENGINEERING SCIENCE (2008)

Article Engineering, Chemical

Sorption-enhanced hydrogen production: A review

Douglas P. Harrison

INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH (2008)

Article Engineering, Chemical

Practical validation of the two-fluid model applied to dense gas-solid flows in fluidized beds

Havard Lindborg et al.

CHEMICAL ENGINEERING SCIENCE (2007)

Article Engineering, Chemical

Modeling of sorption-enhanced steam reforming in a dual fluidized bubbling bed reactor

Kim Johnsen et al.

INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH (2006)

Article Engineering, Chemical

Sorption-enhanced steam reforming of methane in a fluidized bed reactor with dolomite as CO2-acceptor

K Johnsen et al.

CHEMICAL ENGINEERING SCIENCE (2006)

Article Engineering, Chemical

Novel circulating fluidized-bed membrane reformer using carbon dioxide sequestration

P Prasad et al.

INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH (2004)

Article Engineering, Chemical

Improved long-term conversion of limestone-derived sorbents for in situ capture of CO2 in a fluidized bed combustor

RW Hughes et al.

INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH (2004)

Article Engineering, Chemical

Capture of CO2 from combustion gases in a fluidized bed of CaO

JC Abanades et al.

AICHE JOURNAL (2004)

Article Engineering, Chemical

Sorbent cost and performance in CO2 capture systems

JC Abanades et al.

INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH (2004)