{"id":38391,"date":"2024-03-26T16:40:38","date_gmt":"2024-03-26T16:40:38","guid":{"rendered":"https:\/\/www.alicat.com\/?post_type=article&#038;p=38391"},"modified":"2026-01-26T20:50:45","modified_gmt":"2026-01-26T20:50:45","slug":"literatur-zur-kohlenstoffabscheidung","status":"publish","type":"support","link":"https:\/\/www.alicat.com\/de\/support\/carbon-capture-literature\/","title":{"rendered":"Forschung zur Kohlenstoffabscheidung"},"content":{"rendered":"\n[et_pb_section fb_built=&#8221;1&#8243; _builder_version=&#8221;4.23.1&#8243; _module_preset=&#8221;default&#8221; global_colors_info=&#8221;{}&#8221; theme_builder_area=&#8221;post_content&#8221;][et_pb_row _builder_version=&#8221;4.23.1&#8243; _module_preset=&#8221;default&#8221; global_colors_info=&#8221;{}&#8221; theme_builder_area=&#8221;post_content&#8221;][et_pb_column type=&#8221;4_4&#8243; _builder_version=&#8221;4.23.1&#8243; _module_preset=&#8221;default&#8221; global_colors_info=&#8221;{}&#8221; theme_builder_area=&#8221;post_content&#8221;][et_pb_heading title=&#8221;Carbon capture research&#8221; _builder_version=&#8221;4.23.1&#8243; _module_preset=&#8221;default&#8221; global_colors_info=&#8221;{}&#8221; theme_builder_area=&#8221;post_content&#8221;][\/et_pb_heading][et_pb_text _builder_version=&#8221;4.23.1&#8243; _module_preset=&#8221;default&#8221; global_colors_info=&#8221;{}&#8221; theme_builder_area=&#8221;post_content&#8221;]<p>Alicat has been cited in over 1,000 peer-reviewed research papers. The following papers focus on carbon capture and emerging technologies in that field. <a href=\"https:\/\/www.alicat.com\/contact\/\">Contact us<\/a>\u00a0if you\u2019d like your research to be highlighted.<\/p>[\/et_pb_text][et_pb_accordion _builder_version=&#8221;4.23.1&#8243; _module_preset=&#8221;default&#8221; toggle_font=&#8221;|700|||||||&#8221; global_colors_info=&#8221;{}&#8221; theme_builder_area=&#8221;post_content&#8221;][et_pb_accordion_item title=&#8221;Supported ionic liquid membrane for selective CO2 capture&#8221; open=&#8221;on&#8221; _builder_version=&#8221;4.23.1&#8243; _module_preset=&#8221;default&#8221; global_colors_info=&#8221;{}&#8221; theme_builder_area=&#8221;post_content&#8221;]<h3>Abstract<\/h3>\n<p>In situ utilization of carbon dioxide (CO<sub>2<\/sub>) from the Mars atmosphere provides a critical element for on-surface crop production. The atmosphere management system for the MarsOasis\u00ae growth chamber provides CO<sub>2<\/sub>, recovers water and oxygen, and removes ethylene to maintain a hospitable atmosphere for the crops. A supported ionic liquid membrane (SILM) can selectively provide CO<sub>2<\/sub> while rejecting carbon monoxide (CO) back to the Mars atmosphere. The SILM comprises an ionic liquid infiltrated into the pores of a thin physical membrane support such as polyethersulfone or nylon. Ionic liquids are most promising for their negligible vapor pressure, low melting points (many remain liquid below 0\u00b0C), thermal stability up to 100\u00b0C or greater, and solubilities (especially for water and\/or acid gases) that depend upon the cation and anion that comprise the IL.<\/p>\n<p>The negligible vapor pressure means that fluid will not be lost from the membrane, a common problem with other liquid sorbents. The physical processes of sorption and solution-diffusion through the membrane are enhanced; in part, because the supported liquid membrane can be made much thinner than a purely physical membrane without blowing liquid out of the support or losing it to vaporization. Then, amine-, fluorine-, or nitrile-functionalized groups in the IL can further facilitate the highly selective transport since these compounds chemically interact with CO<sub>2<\/sub> to increase its uptake and rate of diffusion. In this paper we report experiments to characterize a SILM for selective CO<sub>2<\/sub> capture from surrogate atmospheres.<\/p>\n<h3>Reference<\/h3>\n<p style=\"text-align: left;\">Nabity, J., Tata, B., Armstrong, I., &amp; Escobar, C. (2021). Supported ionic liquid membrane for selective CO<sub>2<\/sub> capture. <em>International Conference of Environmental Systems.<\/em> Retrieved 2021, from https:\/\/www.researchgate.net\/profile\/Bharath-Tata-3\/publication\/354031489_Supported_Ionic_Liquid_Membrane_for_Selective_CO_2_Capture\/ links\/611fd0ad1e95fe241ae71254\/Supported-Ionic-Liquid-Membrane-for-Selective-CO-2-Capture.pdf.<\/p>[\/et_pb_accordion_item][et_pb_accordion_item title=&#8221;Heat transfer characteristics of CO2 condensation on common heat exchanger materials: method development and experimental results&#8221; _builder_version=&#8221;4.23.1&#8243; _module_preset=&#8221;default&#8221; global_colors_info=&#8221;{}&#8221; theme_builder_area=&#8221;post_content&#8221; open=&#8221;off&#8221;]<h3>Abstract<\/h3>\n<p>Understanding condensation of CO<sub>2<\/sub> is essential for e.g designing compact heat exchangers or processes involved in Carbon Capture and Storage. However, a consistent experimental campaign for condensation of CO<sub>2<\/sub> on common materials is lacking. In this work, we present an experimental method and an associated laboratory setup for measuring the heat transfer properties of CO<sub>2<\/sub> condensation on materials commonly used in heat exchangers for the liquefaction of CO<sub>2<\/sub>. We have investigated the heat transfer during CO<sub>2<\/sub> condensation on copper, aluminum, stainless steel (316) to reveal the heat transfer dependency on surface properties.<\/p>\n<p>The experiments are conducted at three saturation pressures, 10, 15, and 20 bar and at substrate subcooling between 0 and 5k. The results show that the heat transfer coefficients decrease with increasing surface subcooling. It was also found that increasing the saturation pressure increases the heat transfer coefficient. The results indicate that surface roughness and surface energy affect the condensation heat transfer coefficient, and an increased roughness results in reduced heat transfer coefficients. The highest heat transfer coefficient is found for condensation on copper, for which the lowest surface roughness has been measured.<\/p>\n<h3>Reference<\/h3>\n<p>Snustad, I., Ervik, \u00c5., Austegard, A., Brunsvold, A., He, J., &amp; Zhang, Z. (2021). Heat transfer characteristics of CO<sub>2<\/sub> condensation on common heat exchanger materials: Method development and experimental results. <em>Experimental Thermal and Fluid Science<\/em>, 129, 110440. https:\/\/doi.org\/10.1016\/j.expthermflusci.2021.110440<\/p>[\/et_pb_accordion_item][\/et_pb_accordion][\/et_pb_column][\/et_pb_row][\/et_pb_section]\n","protected":false},"featured_media":46458,"parent":0,"template":"","meta":{"_acf_changed":false,"_et_pb_use_builder":"on","_et_pb_old_content":"","_et_gb_content_width":"1920","content-type":"","_searchwp_excluded":""},"categories":[],"class_list":["post-38391","support","type-support","status-publish","has-post-thumbnail","hentry"],"acf":[],"yoast_head":"<!-- This site is optimized with the Yoast SEO Premium plugin v27.3 (Yoast SEO v27.3) - https:\/\/yoast.com\/product\/yoast-seo-premium-wordpress\/ -->\n<title>Carbon Capture Research - Alicat Scientific<\/title>\n<meta name=\"description\" content=\"Alicat has been cited in over 1,000 peer-reviewed research papers. 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