A review of material development in the field of carbon capture and the application of membrane-based processes in power plants and energy-intensive industries

被引:0
作者
Xuezhong He
机构
[1] Norwegian University of Science and Technology,Department of Chemical Engineering
来源
Energy, Sustainability and Society | / 8卷
关键词
CO; capture; Membrane; Flue gas; Post-combustion; Natural gas; Biogas;
D O I
暂无
中图分类号
学科分类号
摘要
This review highlights recent developments and future perspectives on CO2 capture from power plants and energy-intensive industries to reduce CO2 emissions. Different types of membrane materials for CO2 capture were reviewed in terms of material performance, energy efficiency, and cost. With regard to gas separation membrane technology, only three types of membranes have been demonstrated at pilot scale. Therefore, this work paid particular attention to recent development of membrane materials such as fixed-site-carrier membranes and ultrathin nanocomposite membranes. The required high-performance membranes with CO2 permeance of 3 m3(STP)/(m2 h bar) and high CO2/N2 selectivity (> 40) were identified as the future direction of material development. Moreover, novel energy-efficient process development for CO2 capture in power plant and process industry are discussed; the MTR patented air sweeping process is considered one of the most energy-efficient processes for post-combustion CO2 capture. In the last part, CO2/CH4 selectivity of > 30 was pointed out to be the requirement of energy-efficient membrane system for CO2 removal from natural gas and biogas. Finally, significant improvements on membrane material performance, module, and process efficiency are still needed for membrane technology to be competitive in CO2 capture.
引用
收藏
相关论文
共 595 条
  • [61] Ghanem BS(2018) capture from natural gas fired power plants by using membrane technology J Membr Sci 554 275-120
  • [62] Msayib KJ(2013)Pilot demonstration-reporting on CO J Membr Sci 436 109-178
  • [63] Fritsch D(2012) capture from a cement plant using hollow Fiber process J Membr Sci 403–404 169-11
  • [64] Starannikova L(2012)Techno-economical evaluation of membrane based biogas upgrading system: a comparison between polymeric membrane and carbon membrane technology J Nanopart Res 14 1-4336
  • [65] Belov N(2004)CO J Polym Sci B Polym Phys 42 4326-224
  • [66] Sanfirova O(2013) separation with carbon membranes in high pressure and elevated temperature applications J Membr Sci 428 218-10
  • [67] Yampolskii Y(2010)CO J Membr Sci 359 2-807
  • [68] Shantarovich V(2016) separation with carbon membranes in high pressure and elevated temperature applications Science 353 804-734
  • [69] Budd PM(1983)Vehicle fuel from biogas with carbon membranes; a comparison between simulation predictions and actual field demonstration Separ Sci Technol 18 723-146
  • [70] Msayib KJ(2007)Tuning microcavities in thermally rearranged polymer membranes for CO2 capture J Membr Sci 296 139-234