Download Calcium and Chemical Looping Technology for Power Generation by Paul Fennell, Ben Anthony PDF

By Paul Fennell, Ben Anthony

Calcium and Chemical Looping expertise for energy iteration and Carbon Dioxide (CO2) Capture experiences the elemental rules, platforms, oxygen vendors, and carbon dioxide companies suitable to chemical looping and combustion.

Chapters assessment the marketplace improvement, economics, and deployment of those platforms, additionally offering particular details at the number of fabrics and approaches that would aid to form the way forward for CO2 capture prepared energy plants.

  • Reviews the basic rules, platforms, oxygen vendors, and carbon dioxide companies correct to calcium and chemical looping
  • Provides a lucid rationalization of complicated strategies and advancements in calcium and chemical looping, excessive strain structures, and substitute CO2 carriers
  • Presents details out there improvement, economics, and deployment of those systems

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Extra info for Calcium and Chemical Looping Technology for Power Generation and Carbon Dioxide

Sample text

Romeo, L. M. (2007). Cost structure of a postcombustion CO2 capture system using CaO. Environmental Science & Technology, 41, 5523e5527. 34 Calcium and Chemical Looping Technology for Power Generation and CO2 Capture Abanades, J. , Fernandez, J. , Grasa, G. , & Martínez, I. (2010). New CO2 capture process for hydrogen production combining Ca and Cu chemical loops. Environmental Science & Technology, 44(17), 6901e6904. Abanades, J. , Rubin, E. , & Anthony, E. J. (2004). Sorbent costs and performance in CO2 capture systems.

Abanades, J. C. (2010). Effect of sorbent hydration on the average activity of CaO in a Ca-looping system. Chemical Engineering Journal, 163, 324e330. , Grasa, G. , & Abanades, J. C. (2012). Post-combustion calcium looping process with a highly stable sorbent activity by recarbonation. Energy & Environmental Science, 5, 7353e7359. , & Veawab, A. (2007). Integration of CO2 capture unit using single- and blended-amines into supercritical coal-fired power plants: implications for emission and energy management.

Energy, 32, 10e24. , & Romeo, L. M. (2013). Design and analysis of heat exchanger networks for integrated Ca-looping systems. Applied Energy, 111, 690e700. , & Romeo, L. M. (2014). A systematic approach for high temperature looping cycles integration. Fuel, 127, 4e12. , & Kanniche, M. (2011). Screening of flowsheet modifications for an efficient monoethanolamine (MEA) based post-combustion CO2 capture. International Journal of Greenhouse Gas Control, 5(4), 727e740. , & Romeo, L. M. (2010). Integration of carbonate CO2 capture cycle and coal-fired power plants.

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