References
- Abellera, C., & Short, C. (2011). The costs of CCS and other low-carbon technologies. Global CCS Institute, 2.
- Ashworth, P., Boughen, N., Mayhew, M., & Millar, F. (2010). From research to action: Now we have to move on CCS communication. International Journal of Greenhouse Gas Control, 4(2), 426-433. https://doi.org/10.1016/j.ijggc.2009.10.012
-
Davison, J. (2007). Performance and costs of power plants with capture and storage of
$CO_2$ . Energy, 32(7), 1163-1176.. https://doi.org/10.1016/j.energy.2006.07.039 - Feron, P. H. (2010). Exploring the potential for improvement of the energy performance of coal fired power plants with post-combustion capture of carbon dioxide. International Journal of Greenhouse Gas Control, 4(2), 152-160. https://doi.org/10.1016/j.ijggc.2009.10.018
- Finkenrath, M., Smith, J., & Volk, D. (2012). CCS Retrofit: Analysis of the globally installed coal-fired power plant fleet.
-
Goto, K., Yogo, K., & Higashii, T. (2013). A review of efficiency penalty in a coal-fired power plant with post-combustion
$CO_2$ capture. Applied Energy, 111, 710-720. https://doi.org/10.1016/j.apenergy.2013.05.020 -
Harkin, T., Hoadley, A., & Hooper, B. (2010). Reducing the energy penalty of
$CO_2$ capture and compression using pinch analysis. Journal of Cleaner Production, 18(9), 857-866. https://doi.org/10.1016/j.jclepro.2010.02.011 - Khalilpour, R., Abbas, A., Lai, Z., & Pinnau, I. (2012). Modeling and parametric analysis of hollow fiber membrane system for carbon capture from multicomponent flue gas. AIChE Journal, 58(5), 1550-1561. https://doi.org/10.1002/aic.12699
-
Kim, Y., Lim, S. R., & Park, J. M. (2012). effects of Cu (II) ion as an additive on
$NH_3$ loss and$CO_2$ absorption in ammonia-based$CO_2$ capture processes. Chemical engineering journal. - Ramasubramanian, K., Verweij, H., & Ho, W. W. (2012). Membrane processes for carbon capture from coal-fired power plant flue gas: A modeling and cost study. Journal of membrane science, 421, 299-310.
- Rasmussen, P. G. (2012). The economic impacts of technical change in carbon capture (Doctoral dissertation, University of Massachusetts Amherst).
- Scholes, C. A., Chen, G. Q., Stevens, G. W., & Kentish, S. E. (2010). Plasticization of ultra-thin polysulfone membranes by carbon dioxide. Journal of Membrane Science, 346(1), 208-214. https://doi.org/10.1016/j.memsci.2009.09.036
- Scholes, C. A., Kentish, S. E., & Stevens, G. W. (2010). The effects of minor components on the gas separation performance of polymeric membranes for carbon capture. Membrane Gas Separation, 201-226.
-
Xua, G., Yangb, Y., Lic, S., Liud, W., & Wue, Y. Analysis and Optimization of
$CO_2$ Capture in a China's Existing Coal-fired Power Plant. -
Yu, C. H., Huang, C. H., & Tan, C. S. (2012). A review of
$CO_2$ capture by absorption and adsorption. Aerosol Air Qual. Res, 12(5), 745-769.. https://doi.org/10.4209/aaqr.2012.05.0132 -
Zhao, M., Minett, A. I., & Harris, A. T. (2013). A review of techno-economic models for the retrofitting of conventional pulverised-coal power plants for post-combustion capture (PCC) of
$CO_2$ . Energy & Environmental Science, 6(1), 25-40. https://doi.org/10.1039/C2EE22890D -
Zheng, L. (Ed.). (2011). Oxy-fuel combustion for power generation and carbon dioxide (
$CO_2$ ) capture. Elsevier.