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Improved method for determining binary adsorption isotherms by using concentration pulse chromatography: adsorption of CO sub(2) and N sub(2) by silicalite at different pressures
Adsorption separation of carbon dioxide from nitrogen at different system total pressures with silicalite as the adsorbent was studied by using concentration pulse chromatography. Improving the methodology for determining binary adsorption isotherms by concentration pulse method (CPM) was also the g...
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Published in: | Adsorption : journal of the International Adsorption Society 2014-01, Vol.20 (1), p.189-199 |
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creator | Kennedy, Dean Tezel, FHandan |
description | Adsorption separation of carbon dioxide from nitrogen at different system total pressures with silicalite as the adsorbent was studied by using concentration pulse chromatography. Improving the methodology for determining binary adsorption isotherms by concentration pulse method (CPM) was also the goal of this study. Binary adsorption isotherms, x-y phase diagrams and separation factor plots have been determined at 26 degree C to look at the influence of pressure on the separation using concentration pulse chromatography. Available methods for determining binary adsorption isotherms using CPM have been reviewed and shown to be incapable of interpreting this particular binary system. An improved novel model has been proposed to interpret the data in this study. It has been referred to as the Kennedy-Tezel concentration pulse method (KT-CPM) and has been shown to be superior to other methods used in the literature. Results using this data were found to be consistent with the previous results in the literature. The binary isotherms for the CO sub(2)-N sub(2) system show a decrease in CO sub(2) selectivity as total system pressure increases. The optimal separation factor for silicalite was found to increase with decreasing system pressure and decreasing mole fraction of CO sub(2) in the feed mixture. |
doi_str_mv | 10.1007/s10450-013-9562-z |
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Improving the methodology for determining binary adsorption isotherms by concentration pulse method (CPM) was also the goal of this study. Binary adsorption isotherms, x-y phase diagrams and separation factor plots have been determined at 26 degree C to look at the influence of pressure on the separation using concentration pulse chromatography. Available methods for determining binary adsorption isotherms using CPM have been reviewed and shown to be incapable of interpreting this particular binary system. An improved novel model has been proposed to interpret the data in this study. It has been referred to as the Kennedy-Tezel concentration pulse method (KT-CPM) and has been shown to be superior to other methods used in the literature. Results using this data were found to be consistent with the previous results in the literature. The binary isotherms for the CO sub(2)-N sub(2) system show a decrease in CO sub(2) selectivity as total system pressure increases. 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Improving the methodology for determining binary adsorption isotherms by concentration pulse method (CPM) was also the goal of this study. Binary adsorption isotherms, x-y phase diagrams and separation factor plots have been determined at 26 degree C to look at the influence of pressure on the separation using concentration pulse chromatography. Available methods for determining binary adsorption isotherms using CPM have been reviewed and shown to be incapable of interpreting this particular binary system. An improved novel model has been proposed to interpret the data in this study. It has been referred to as the Kennedy-Tezel concentration pulse method (KT-CPM) and has been shown to be superior to other methods used in the literature. Results using this data were found to be consistent with the previous results in the literature. The binary isotherms for the CO sub(2)-N sub(2) system show a decrease in CO sub(2) selectivity as total system pressure increases. The optimal separation factor for silicalite was found to increase with decreasing system pressure and decreasing mole fraction of CO sub(2) in the feed mixture.</description><subject>Adsorption</subject><subject>Binary systems</subject><subject>Carbon dioxide</subject><subject>Chromatography</subject><subject>Isotherms</subject><subject>Mathematical models</subject><subject>Separation</subject><subject>Silicalite</subject><issn>0929-5607</issn><issn>1572-8757</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2014</creationdate><recordtype>article</recordtype><recordid>eNqVj7tOxDAQRS0EEsvjA-imXAqDHZOY0K5A0EBDv3LiycYosYPHRgqfxRcSEEi0NDO6mqNzNYydSXEhhdCXJMVVKbiQitdlVfD3PbaSpS74tS71PluJuqh5WQl9yI6IXoQQdaXVin08jFMMb2hhxNQHC12IYDFhHJ13fgeN8ybOYCyFOCUXPDgKqV_uBM0Mmb6gNvgWfYrmG5jyQAhtH8NoUthFM_XzzV9D6GDzBJSbdXEOxlt4_A2LkdzgWjO4hGASWNd1GBc3TBGJ8jJO2EFnlobTn33M1ne3z5t7vjzympHSdnTU4jAYjyHTVlZaVlIpodQ_0E-1qG6D</recordid><startdate>20140101</startdate><enddate>20140101</enddate><creator>Kennedy, Dean</creator><creator>Tezel, FHandan</creator><scope>7SR</scope><scope>7U5</scope><scope>8FD</scope><scope>JG9</scope><scope>L7M</scope></search><sort><creationdate>20140101</creationdate><title>Improved method for determining binary adsorption isotherms by using concentration pulse chromatography: adsorption of CO sub(2) and N sub(2) by silicalite at different pressures</title><author>Kennedy, Dean ; Tezel, FHandan</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-proquest_miscellaneous_16716133033</frbrgroupid><rsrctype>articles</rsrctype><prefilter>articles</prefilter><language>eng</language><creationdate>2014</creationdate><topic>Adsorption</topic><topic>Binary systems</topic><topic>Carbon dioxide</topic><topic>Chromatography</topic><topic>Isotherms</topic><topic>Mathematical models</topic><topic>Separation</topic><topic>Silicalite</topic><toplevel>peer_reviewed</toplevel><toplevel>online_resources</toplevel><creatorcontrib>Kennedy, Dean</creatorcontrib><creatorcontrib>Tezel, FHandan</creatorcontrib><collection>Engineered Materials Abstracts</collection><collection>Solid State and Superconductivity Abstracts</collection><collection>Technology Research Database</collection><collection>Materials Research Database</collection><collection>Advanced Technologies Database with Aerospace</collection><jtitle>Adsorption : journal of the International Adsorption Society</jtitle></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>Kennedy, Dean</au><au>Tezel, FHandan</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>Improved method for determining binary adsorption isotherms by using concentration pulse chromatography: adsorption of CO sub(2) and N sub(2) by silicalite at different pressures</atitle><jtitle>Adsorption : journal of the International Adsorption Society</jtitle><date>2014-01-01</date><risdate>2014</risdate><volume>20</volume><issue>1</issue><spage>189</spage><epage>199</epage><pages>189-199</pages><issn>0929-5607</issn><eissn>1572-8757</eissn><abstract>Adsorption separation of carbon dioxide from nitrogen at different system total pressures with silicalite as the adsorbent was studied by using concentration pulse chromatography. Improving the methodology for determining binary adsorption isotherms by concentration pulse method (CPM) was also the goal of this study. Binary adsorption isotherms, x-y phase diagrams and separation factor plots have been determined at 26 degree C to look at the influence of pressure on the separation using concentration pulse chromatography. Available methods for determining binary adsorption isotherms using CPM have been reviewed and shown to be incapable of interpreting this particular binary system. An improved novel model has been proposed to interpret the data in this study. It has been referred to as the Kennedy-Tezel concentration pulse method (KT-CPM) and has been shown to be superior to other methods used in the literature. Results using this data were found to be consistent with the previous results in the literature. The binary isotherms for the CO sub(2)-N sub(2) system show a decrease in CO sub(2) selectivity as total system pressure increases. 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subjects | Adsorption Binary systems Carbon dioxide Chromatography Isotherms Mathematical models Separation Silicalite |
title | Improved method for determining binary adsorption isotherms by using concentration pulse chromatography: adsorption of CO sub(2) and N sub(2) by silicalite at different pressures |
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