G. S. Golubev, S. E. Sokolov, T. N. Rokhmanka, D. S. Bakhtin, I. L. Borisov, A. V. Volkov
{"title":"基于PTMSP和超交联聚苯乙烯的膜用于水介质中气体分离和热蒸发去除挥发性有机化合物","authors":"G. S. Golubev, S. E. Sokolov, T. N. Rokhmanka, D. S. Bakhtin, I. L. Borisov, A. V. Volkov","doi":"10.1134/S2517751622060038","DOIUrl":null,"url":null,"abstract":"<p>In order to increase the efficiency of membranes in the processes of gas separation and thermopervaporative isolation of volatile organic compounds from aqueous media, mixed-matrix membranes based on polytrimethylsilylpropine (PTMSP) with an amount of hypercrosslinked polystyrene (HCPS) particles up to 50 wt % have been obtained and experimentally studied for the first time. The industrial sorbent Purolite Macronet™ MN200 was chosen as HCPS due to its high sorption capacity for volatile organic compounds. It has been found that HCPS particles are nonuniformly distributed over the membrane volume and the membranes show a distinct asymmetry when the HCPS content in PTMSP is more than 30 wt %. In the cross section, the membranes represent composite membranes with a thin selective layer (PTMSP) and a porous support (HCPS). It has been established that the permeability coefficients for light gases increase with an increase in the MN200 concentration in the membrane material from 0 to 20 wt %. The introduction of HCPS in an amount of more than 20 wt % in PTMSP leads to an increase in permeability coefficients by 4–7 times, with the selectivity decreasing. The properties of PTMSP membranes with different HCPS fillings were studied during the thermopervaporative separation of benzene–water, toluene–water, and <i>o</i>-xylene–water binary solutions and a multicomponent BTX–water mixture. It has been found that the permeate flux and the separation factor increase with an increase in the HCPS content in PTMSP for all the studied solutions. The maximum values of the separation factor (>900) for all processed solutions were obtained for PTMSP membranes with a HCPS content of 30 wt %.</p>","PeriodicalId":700,"journal":{"name":"Membranes and Membrane Technologies","volume":"4 6","pages":"404 - 413"},"PeriodicalIF":2.0000,"publicationDate":"2022-12-26","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Membranes Based on PTMSP and Hypercrosslinked Polystyrene for Gas Separation and Thermopervaporative Removal of Volatile Organic Compounds from Aqueous Media\",\"authors\":\"G. S. Golubev, S. E. Sokolov, T. N. Rokhmanka, D. S. Bakhtin, I. L. Borisov, A. V. Volkov\",\"doi\":\"10.1134/S2517751622060038\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p>In order to increase the efficiency of membranes in the processes of gas separation and thermopervaporative isolation of volatile organic compounds from aqueous media, mixed-matrix membranes based on polytrimethylsilylpropine (PTMSP) with an amount of hypercrosslinked polystyrene (HCPS) particles up to 50 wt % have been obtained and experimentally studied for the first time. The industrial sorbent Purolite Macronet™ MN200 was chosen as HCPS due to its high sorption capacity for volatile organic compounds. It has been found that HCPS particles are nonuniformly distributed over the membrane volume and the membranes show a distinct asymmetry when the HCPS content in PTMSP is more than 30 wt %. In the cross section, the membranes represent composite membranes with a thin selective layer (PTMSP) and a porous support (HCPS). It has been established that the permeability coefficients for light gases increase with an increase in the MN200 concentration in the membrane material from 0 to 20 wt %. The introduction of HCPS in an amount of more than 20 wt % in PTMSP leads to an increase in permeability coefficients by 4–7 times, with the selectivity decreasing. The properties of PTMSP membranes with different HCPS fillings were studied during the thermopervaporative separation of benzene–water, toluene–water, and <i>o</i>-xylene–water binary solutions and a multicomponent BTX–water mixture. It has been found that the permeate flux and the separation factor increase with an increase in the HCPS content in PTMSP for all the studied solutions. 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Membranes Based on PTMSP and Hypercrosslinked Polystyrene for Gas Separation and Thermopervaporative Removal of Volatile Organic Compounds from Aqueous Media
In order to increase the efficiency of membranes in the processes of gas separation and thermopervaporative isolation of volatile organic compounds from aqueous media, mixed-matrix membranes based on polytrimethylsilylpropine (PTMSP) with an amount of hypercrosslinked polystyrene (HCPS) particles up to 50 wt % have been obtained and experimentally studied for the first time. The industrial sorbent Purolite Macronet™ MN200 was chosen as HCPS due to its high sorption capacity for volatile organic compounds. It has been found that HCPS particles are nonuniformly distributed over the membrane volume and the membranes show a distinct asymmetry when the HCPS content in PTMSP is more than 30 wt %. In the cross section, the membranes represent composite membranes with a thin selective layer (PTMSP) and a porous support (HCPS). It has been established that the permeability coefficients for light gases increase with an increase in the MN200 concentration in the membrane material from 0 to 20 wt %. The introduction of HCPS in an amount of more than 20 wt % in PTMSP leads to an increase in permeability coefficients by 4–7 times, with the selectivity decreasing. The properties of PTMSP membranes with different HCPS fillings were studied during the thermopervaporative separation of benzene–water, toluene–water, and o-xylene–water binary solutions and a multicomponent BTX–water mixture. It has been found that the permeate flux and the separation factor increase with an increase in the HCPS content in PTMSP for all the studied solutions. The maximum values of the separation factor (>900) for all processed solutions were obtained for PTMSP membranes with a HCPS content of 30 wt %.
期刊介绍:
The journal Membranes and Membrane Technologies publishes original research articles and reviews devoted to scientific research and technological advancements in the field of membranes and membrane technologies, including the following main topics:novel membrane materials and creation of highly efficient polymeric and inorganic membranes;hybrid membranes, nanocomposites, and nanostructured membranes;aqueous and nonaqueous filtration processes (micro-, ultra-, and nanofiltration; reverse osmosis);gas separation;electromembrane processes and fuel cells;membrane pervaporation and membrane distillation;membrane catalysis and membrane reactors;water desalination and wastewater treatment;hybrid membrane processes;membrane sensors;membrane extraction and membrane emulsification;mathematical simulation of porous structures and membrane separation processes;membrane characterization;membrane technologies in industry (energy, mineral extraction, pharmaceutics and medicine, chemistry and petroleum chemistry, food industry, and others);membranes and protection of environment (“green chemistry”).The journal has been published in Russian already for several years, English translations of the content used to be integrated in the journal Petroleum Chemistry. This journal is a split off with additional topics.