膜法烟气水回收技术研究进展
Research Progress of Membrane Flue Gas Water Recovery Technology
DOI: 10.12677/SD.2022.124129, PDF,   
作者: 刘鹏飞:北京清新环境技术股份有限公司;赵晋宇, 张建宇, 沈洪发, 鞠久东:国家电投集团内蒙古白音华煤电有限公司坑口发电分公司,内蒙古 锡林郭勒盟
关键词: 烟气水回收膜法TMCFlue Gas Water Recovery Membrane TMC
摘要: 从电厂排放的烟气中回收水及潜热是人们关注的焦点,其中膜法回收是研究的热点,膜法烟气水回收技术有:膜分离法、膜冷凝法以及TMC法等方法,膜分离法应用较少,膜冷凝法具有材料耐腐蚀的优点,TMC法能同时回收烟气中的水及热量,具有工业化前景,但仍需开发高导热性的高分子材料及大孔的陶瓷膜组件。
Abstract: The recovery of water and latent heat from flue gas discharged from power plant is the focus of people’s attention, among which membrane recovery is the research hotspot. Membrane water recovery technologies include membrane separation method, membrane condensation method and TMC method. Membrane condensation method has the advantages of corrosion resistance of materials, membrane separation method is not widely used, and TMC method can recover water and heat from flue gas at the same time, which has the prospect of industrialization, however, it is still necessary to develop high thermal conductivity polymer materials and macropore size ceramic membrane module.
文章引用:刘鹏飞, 赵晋宇, 张建宇, 沈洪发, 鞠久东. 膜法烟气水回收技术研究进展[J]. 可持续发展, 2022, 12(4): 1155-1160. https://doi.org/10.12677/SD.2022.124129

参考文献

[1] Tan, H.Z., Cao, R.J., Wang, S.S., et al. (2021) Proposal and Techno-Economic Analysis of a Novel System for Waste Heat Recovery and Water Saving in Coal-Fired Power Plants: A Case Study. Journal of Cleaner Production, 281, Article ID: 124372. [Google Scholar] [CrossRef
[2] Xiong, Y.Y., Tan, H.Z., Wang, Y.B., et al. (2017) Pilot-Scale Study on Water and Latent Heat Recovery from Flue Gas Using Fluorine Plastic Heat Exchangers. Journal of Cleaner Production, 161, 1416-1422. [Google Scholar] [CrossRef
[3] 采有林, 张开元, 贾双燕, 赵培. 一种湿法脱硫零耗水系统[P]. 中国专利, 201520207265. 2015-04-08.
[4] Brunetti, A., Macedonio, F., Barbieri, G. and Drioli, E. (2019) Membrane Condenser as Emerging Technology for Water Recovery and Gas Pre-Treatment: Current Status and Per-spectives. BMC Chemical Engineering, 1, Article No. 19. [Google Scholar] [CrossRef
[5] 杜文韬, 陈海平, 周亚男, 等. 烟气脱水SPEEK/PES复合膜的表征及吸附性能[J]. 热力发电, 2014, 43(3): 83-86.
[6] Chen, H.P., Zhou, Y.N., Su, X., et al. (2018) Experimental Study of Water Recovery from Flue Gas Using Hollow Micro-Nano Porous Ceramic Composite Membranes. Journal of Industrial and Engineering Chemistry, 57, 349-355. [Google Scholar] [CrossRef
[7] Cheng, C., Zhang, H. and Chen, H.P. (2020) Experimental Study on Water Recovery from Flue Gas Using Macroporous Ceramic Membrane. Materials, 13, Article No. 804. [Google Scholar] [CrossRef] [PubMed]
[8] Cheng, C., Fu, H.M., Wu, J., et al. (2020) Study on the Preparation and Properties of Talcum-Fly Ash Based Ceramic Membrane Supports. Membranes, 10, Article No. 207. [Google Scholar] [CrossRef] [PubMed]
[9] Liang, D.H., Huang, J.G., Zhang, Y.T., et al. (2021) Influence of Dextrin Content and Sintering Temperature on the Properties of Coal Fly Ash-Based Tubular Ceramic Membrane for Flue Gas Moisture Recovery. Journal of the European Ceramic Society, 41, 5696-5710. [Google Scholar] [CrossRef
[10] Bolto, B., Hoang, M. and Xie, Z.L. (2012) A Review of Water Recovery by Vapour Permeation through Membranes. Water Research, 46, 259-266. [Google Scholar] [CrossRef] [PubMed]
[11] Metz, S.J., Van de Ven, W.J.C., Potreck, J., et al. (2005) Transport of Water Vapor and Inert Gas Mixtures through Highly Selective and Highly Permeable Polymer Membranes. Journal of Membrane Science, 251, 29-41. [Google Scholar] [CrossRef
[12] Frappa, M., Brunetti, A., Drioli, E., et al. (2020) Membrane Condenser for Particulate Abatement from Waste-Gaseous Streams. Journal of Membrane Science and Research, 6, 81-89.
[13] Macedonio, F., Brunetti, A., Barbieri, G., et al. (2013) Membrane Condenser as a New Technology for Water Recovery from Humidified “Waste” Gaseous Streams. Industrial & Engineering Chemistry Research, 52, 1160-1167. [Google Scholar] [CrossRef
[14] Macedonio, F., Cersosimo, M., Brunetti, A., et al. (2014) Water Recovery from Humidified Waste Gas Streams: Quality Control Using Membrane Condenser Technology. Chemical Engineering and Processing: Process Intensification, 86, 196-203. [Google Scholar] [CrossRef
[15] Macedonio, F., Brunetti, A., Barbieri, G., et al. (2017) Membrane Condenser Configurations for Water Recovery from Waste Gases. Separation and Purification Technology, 181, 60-68. [Google Scholar] [CrossRef
[16] Li, Z.H., Mi, D.B., Zhang, H., et al. (2021) Experimental Study on Synergistic Capture of Fine Particles and Waste Heat from Flue Gas Using Membrane Condenser. Energy, 217, Article ID: 119392. [Google Scholar] [CrossRef
[17] Brunetti, A., Macedonio, F., Cui, Z.L., et al. (2020) Membrane Condenser as Efficient Pre-Treatment Unit for the Abatement of Particulate Contained in Waste Gaseous Streams. Journal of Environmental Chemical Engineering, 8, Article ID: 104353. [Google Scholar] [CrossRef
[18] Drioli, E. and Macedonio, F. (2019) Membrane-Assisted Con-denser. Clean Technologies, 1, 2-8. [Google Scholar] [CrossRef
[19] 许全坤, 汪洋. 基于膜分离方法的烟气水分回收技术研究现状及展望[J]. 华电技术, 2013, 35(5): 25-28.
[20] Cao, J.Y., Pan, J., Cui, Z.L., et al. (2019) Improving Efficiency of PVDF Membranes for Recovering Water from Humidified Gas Streams through Membrane Condenser. Chemical Engineering Science, 210, Article ID: 115234. [Google Scholar] [CrossRef
[21] Wang, D.X. (2012) Transport Membrane Condenser for Water and Energy Recovery from Power Plant Flue Gas. Gas Technology Institute, Des Plaines, IL. [Google Scholar] [CrossRef
[22] Cannon Boiler Works, Inc. (2021) Ultramizer.
[23] Fisher, L.R. and Israelachvili, J.N. (1979) Direct Experimental Verification of the Kelvin Equation for Capillary Condensation. Nature, 277, 548-549. [Google Scholar] [CrossRef
[24] Kim, J.F. and Drioli, E. (2021) Transport Membrane Con-denser Heat Exchangers to Break the Water-Energy Nexus—A Critical Review. Membranes, 11, Article No. 12. [Google Scholar] [CrossRef] [PubMed]
[25] Wang, D.X., Bao, A.N., Kunc, W., et al. (2012) Coal Power Plant Flue Gas Waste Heat and Water Recovery. Applied Energy, 91, 341-348. [Google Scholar] [CrossRef
[26] Cychosz, K.A., Guillet-Nicolas, R., García-Martínez, J., et al. (2017) Recent Advances in the Textural Characterization of Hierarchically Structured Nanoporous Materials. Chemical Society Reviews, 46, 389-414. [Google Scholar] [CrossRef
[27] Yang, B.R. and Chen, H.P. (2019) Heat and Water Recovery from Flue Gas: Application of Micro-Porous Ceramic Membrane Tube Bundles in Gas-Fired Power Plant. Chemical Engineering and Processing—Process Intensification, 137, 116-127. [Google Scholar] [CrossRef
[28] Li, Z.H., Zhang, H., Chen, H.P., et al. (2020) Water Vapor Capture Using Microporous Ceramic Membrane. Desalination, 482, Article ID: 114405. [Google Scholar] [CrossRef
[29] Xiao, L.H., Yang, M.L., Yuan, W.Z., et al. (2021) Macroporous Ceramic Membrane Condenser for Water and Heat Recovery from Flue Gas. Applied Thermal Engineering, 186, Article ID: 116512. [Google Scholar] [CrossRef
[30] Cheng, C., Liang, D.H., Zhang, Y.T., et al. (2021) Pilot-Scale Study on Flue Gas Moisture Recovery in a Coal-Fired Power Plant. Separation and Purification Technology, 254, Article ID: 117254. [Google Scholar] [CrossRef
[31] Ji, C., Li, L. and Qi, H. (2021) Improving Heat Transfer and Water Recovery Performance in High-Moisture Flue Gas Condensation Using Silicon Carbide Membranes. International Journal of Energy Research, 45, 10974-10988. [Google Scholar] [CrossRef