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Enrico Pomarico

enrico.pomarico 5838140168 Pomarico Enrico enrico.pomarico@hesge.ch fr 1

Id

5838140168
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{"id":7683486,"role":"ME","display":false,"displayRole":true,"displayFinancialPartner":true,"displayAcademicPartner":true,"displayProfessionalPartner":true,"collaborator":"enrico.pomarico","project":{"translations":{"fr":{"id":19000,"title":"Transformation du plastique usag\u00e9 en source de hydrocarbures dans l'industrie chimique ","description":"Plastic waste is one of the biggest current environmental problems. Plastics products are produced from fossil hydrocarbons as C-supplier by energy-intensive high-temperature cracking. These plastics, which are CO2-intensive \r\nin production, are not recycled despite improved waste separation, which is advancing, but remains insufficient and costly. Thus, plastic waste will continue ending up in the environment or (as in Switzerland) in waste incineration \r\nplants and thus contribute to global warming, since all C atoms are oxidized to CO2. Most innovation approaches today aim at improving the energy balance of the cracker and not at replacing the feedstock.\r\nOur project aims to replace the supply of raw material gases from high-temperature cracking of hydrocarbons in a first step by breaking down plastic waste into its individual molecular parts by means of a soft and tunable hydrogen plasma (de-polymerization). In a second step, product gases will be separated and the resulting short-chain molecules (CH4, CxHy, i.e. alkanes, alkenes, others) returned as raw materials to the production process in chemical\r\nand pharmaceutical industry. While the first step represents the main innovation in this project the second step takes advantage of the existing knowledge of gas separation and cleaning already practiced in high-temperature \r\ncracking systems, which need however be adapted to the particular gas composition leaving the plasma dissociationprocess (first step).\r\nEnvironmental impact \r\n1. Plastic waste is no longer landfilled or released into the environment.\r\n2. Elimination of CO2 release from Incineration of plastic waste.\r\n3. The plasma process is also suitable for mixed plastic waste.\r\n4. C-cycle is closed, as product gases will be separated & purified for use in chemical and pharmaceutical industry. \r\nEnergy relevance \r\n5. Replacement of the high-temperature cracking process by the tunable soft hydrogen plasma process. \r\n6. Required hydrogen is produced from solar driven electrolysis at peak times in summer. Plastic waste can be \r\ncollected in the winter months, partially reducing the summer\/winter electricity storage problem.\r\n7. The plasma reactor for decomposition of the plastic waste with admixture of the solar generated (\"green\") \r\nhydrogen is run at peak times and thus also stabilizes the electric power grids. The plasma process can be started up and shut down quickly, since no large thermal masses have to be heated up (in contrast to thermal gasification at over 1000\u00b0C)."},"en":{"id":19001,"title":"Transformation du plastique usag\u00e9 en source de hydrocarbures dans l'industrie chimique ","description":"Plastic waste is one of the biggest current environmental problems. Plastics products are produced from fossil hydrocarbons as C-supplier by energy-intensive high-temperature cracking. These plastics, which are CO2-intensive \r\nin production, are not recycled despite improved waste separation, which is advancing, but remains insufficient and costly. Thus, plastic waste will continue ending up in the environment or (as in Switzerland) in waste incineration \r\nplants and thus contribute to global warming, since all C atoms are oxidized to CO2. Most innovation approaches today aim at improving the energy balance of the cracker and not at replacing the feedstock.\r\nOur project aims to replace the supply of raw material gases from high-temperature cracking of hydrocarbons in a first step by breaking down plastic waste into its individual molecular parts by means of a soft and tunable hydrogen plasma (de-polymerization). In a second step, product gases will be separated and the resulting short-chain molecules (CH4, CxHy, i.e. alkanes, alkenes, others) returned as raw materials to the production process in chemical\r\nand pharmaceutical industry. While the first step represents the main innovation in this project the second step takes advantage of the existing knowledge of gas separation and cleaning already practiced in high-temperature \r\ncracking systems, which need however be adapted to the particular gas composition leaving the plasma dissociationprocess (first step).\r\nEnvironmental impact \r\n1. 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The plasma process can be started up and shut down quickly, since no large thermal masses have to be heated up (in contrast to thermal gasification at over 1000\u00b0C)."},"de":{"id":19002,"title":"Transformation du plastique usag\u00e9 en source de hydrocarbures dans l'industrie chimique ","description":"Plastic waste is one of the biggest current environmental problems. Plastics products are produced from fossil hydrocarbons as C-supplier by energy-intensive high-temperature cracking. These plastics, which are CO2-intensive \r\nin production, are not recycled despite improved waste separation, which is advancing, but remains insufficient and costly. Thus, plastic waste will continue ending up in the environment or (as in Switzerland) in waste incineration \r\nplants and thus contribute to global warming, since all C atoms are oxidized to CO2. Most innovation approaches today aim at improving the energy balance of the cracker and not at replacing the feedstock.\r\nOur project aims to replace the supply of raw material gases from high-temperature cracking of hydrocarbons in a first step by breaking down plastic waste into its individual molecular parts by means of a soft and tunable hydrogen plasma (de-polymerization). In a second step, product gases will be separated and the resulting short-chain molecules (CH4, CxHy, i.e. alkanes, alkenes, others) returned as raw materials to the production process in chemical\r\nand pharmaceutical industry. While the first step represents the main innovation in this project the second step takes advantage of the existing knowledge of gas separation and cleaning already practiced in high-temperature \r\ncracking systems, which need however be adapted to the particular gas composition leaving the plasma dissociationprocess (first step).\r\nEnvironmental impact \r\n1. Plastic waste is no longer landfilled or released into the environment.\r\n2. Elimination of CO2 release from Incineration of plastic waste.\r\n3. The plasma process is also suitable for mixed plastic waste.\r\n4. C-cycle is closed, as product gases will be separated & purified for use in chemical and pharmaceutical industry. \r\nEnergy relevance \r\n5. Replacement of the high-temperature cracking process by the tunable soft hydrogen plasma process. \r\n6. Required hydrogen is produced from solar driven electrolysis at peak times in summer. Plastic waste can be \r\ncollected in the winter months, partially reducing the summer\/winter electricity storage problem.\r\n7. The plasma reactor for decomposition of the plastic waste with admixture of the solar generated (\"green\") \r\nhydrogen is run at peak times and thus also stabilizes the electric power grids. The plasma process can be started up and shut down quickly, since no large thermal masses have to be heated up (in contrast to thermal gasification at over 1000\u00b0C)."}},"id":114888,"acronym":"PlaCycle","mainTitle":"Transformation du plastique usag\u00e9 en source de hydrocarbures dans l'industrie chimique ","mainDescription":"Plastic waste is one of the biggest current environmental problems. Plastics products are produced from fossil hydrocarbons as C-supplier by energy-intensive high-temperature cracking. These plastics, which are CO2-intensive \r\nin production, are not recycled despite improved waste separation, which is advancing, but remains insufficient and costly. Thus, plastic waste will continue ending up in the environment or (as in Switzerland) in waste incineration \r\nplants and thus contribute to global warming, since all C atoms are oxidized to CO2. Most innovation approaches today aim at improving the energy balance of the cracker and not at replacing the feedstock.\r\nOur project aims to replace the supply of raw material gases from high-temperature cracking of hydrocarbons in a first step by breaking down plastic waste into its individual molecular parts by means of a soft and tunable hydrogen plasma (de-polymerization). In a second step, product gases will be separated and the resulting short-chain molecules (CH4, CxHy, i.e. alkanes, alkenes, others) returned as raw materials to the production process in chemical\r\nand pharmaceutical industry. While the first step represents the main innovation in this project the second step takes advantage of the existing knowledge of gas separation and cleaning already practiced in high-temperature \r\ncracking systems, which need however be adapted to the particular gas composition leaving the plasma dissociationprocess (first step).\r\nEnvironmental impact \r\n1. Plastic waste is no longer landfilled or released into the environment.\r\n2. Elimination of CO2 release from Incineration of plastic waste.\r\n3. The plasma process is also suitable for mixed plastic waste.\r\n4. C-cycle is closed, as product gases will be separated & purified for use in chemical and pharmaceutical industry. \r\nEnergy relevance \r\n5. Replacement of the high-temperature cracking process by the tunable soft hydrogen plasma process. \r\n6. Required hydrogen is produced from solar driven electrolysis at peak times in summer. Plastic waste can be \r\ncollected in the winter months, partially reducing the summer\/winter electricity storage problem.\r\n7. The plasma reactor for decomposition of the plastic waste with admixture of the solar generated (\"green\") \r\nhydrogen is run at peak times and thus also stabilizes the electric power grids. The plasma process can be started up and shut down quickly, since no large thermal masses have to be heated up (in contrast to thermal gasification at over 1000\u00b0C).","value":"220000.00","finished":true,"pilier":6,"url":null,"keywords":"Axe strat\u00e9gique autres, CO2, plastique","disciplines":[],"axes":[],"partners":[{"id":1815795,"name":"","confidential":false,"types":[{"id":3,"code":"RP"},{"id":4,"code":"CO"}],"institution":"VS - Institut Syst\u00e8mes industriels","class":"academique"},{"id":1815796,"name":"","confidential":false,"types":[{"id":4,"code":"CO"}],"institution":"VS - Institut Sciences du vivant","class":"academique"},{"id":1815797,"name":"","confidential":false,"types":[{"id":4,"code":"CO"}],"institution":"hepia inSTI","class":"academique"}],"collaborators":[{"id":7683475,"role":"RP","display":true,"displayRole":true,"displayFinancialPartner":true,"displayAcademicPartner":true,"displayProfessionalPartner":true,"collaborator":"christop.ellert","project":114888},{"id":7683476,"role":"CO","display":false,"displayRole":true,"displayFinancialPartner":true,"displayAcademicPartner":true,"displayProfessionalPartner":true,"collaborator":"simon.crelier","project":114888},{"id":7683477,"role":"ME","display":false,"displayRole":true,"displayFinancialPartner":true,"displayAcademicPartner":true,"displayProfessionalPartner":true,"collaborator":"david.berthouz","project":114888},{"id":7683478,"role":"ME","display":true,"displayRole":true,"displayFinancialPartner":true,"displayAcademicPartner":true,"displayProfessionalPartner":true,"collaborator":"david.martinet","project":114888},{"id":7683479,"role":"ME","display":false,"displayRole":true,"displayFinancialPartner":true,"displayAcademicPartner":true,"displayProfessionalPartner":true,"collaborator":"martina.zselysch","project":114888},{"id":7683480,"role":"ME","display":false,"displayRole":true,"displayFinancialPartner":true,"displayAcademicPartner":true,"displayProfessionalPartner":true,"collaborator":"jacques.richard","project":114888},{"id":7683481,"role":"ME","display":false,"displayRole":true,"displayFinancialPartner":true,"displayAcademicPartner":true,"displayProfessionalPartner":true,"collaborator":"marc.jobin","project":114888},{"id":7683482,"role":"ME","display":false,"displayRole":true,"displayFinancialPartner":true,"displayAcademicPartner":true,"displayProfessionalPartner":true,"collaborator":"mathieu.schopfer","project":114888},{"id":7683483,"role":"ME","display":false,"displayRole":true,"displayFinancialPartner":true,"displayAcademicPartner":true,"displayProfessionalPartner":true,"collaborator":"lucie.reymond","project":114888},{"id":7683484,"role":"ME","display":false,"displayRole":true,"displayFinancialPartner":true,"displayAcademicPartner":true,"displayProfessionalPartner":true,"collaborator":"fabrice.seppey","project":114888},{"id":7683485,"role":"ME","display":false,"displayRole":true,"displayFinancialPartner":true,"displayAcademicPartner":true,"displayProfessionalPartner":true,"collaborator":"pierrevi.broccard","project":114888},{"id":7683486,"role":"ME","display":false,"displayRole":true,"displayFinancialPartner":true,"displayAcademicPartner":true,"displayProfessionalPartner":true,"collaborator":"enrico.pomarico","project":114888},{"id":7683487,"role":"ME","display":false,"displayRole":true,"displayFinancialPartner":true,"displayAcademicPartner":true,"displayProfessionalPartner":true,"collaborator":"cedric.schmidt","project":114888},{"id":7683488,"role":"ME","display":false,"displayRole":true,"displayFinancialPartner":true,"displayAcademicPartner":true,"displayProfessionalPartner":true,"collaborator":"caryl.neuensch","project":114888},{"id":7683489,"role":"ME","display":false,"displayRole":true,"displayFinancialPartner":true,"displayAcademicPartner":true,"displayProfessionalPartner":true,"collaborator":"benoit.varone","project":114888},{"id":7683490,"role":"ME","display":false,"displayRole":true,"displayFinancialPartner":true,"displayAcademicPartner":true,"displayProfessionalPartner":true,"collaborator":"alessia.bruzzo","project":114888},{"id":7683491,"role":"ME","display":false,"displayRole":true,"displayFinancialPartner":true,"displayAcademicPartner":true,"displayProfessionalPartner":true,"collaborator":"romain.masserey","project":114888}],"dataHub":true,"startAt":"2022-01-15T00:00:00+01:00","endAt":"2024-03-31T00:00:00+01:00","fundingSource":"HES-SO Rectorat","publications":[],"projectUrl":null,"repo_name":null}}
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{"id":7682004,"role":"ME","display":false,"displayRole":true,"displayFinancialPartner":true,"displayAcademicPartner":true,"displayProfessionalPartner":true,"collaborator":"enrico.pomarico","project":{"translations":{"fr":{"id":24248,"title":"C3 2024 - 1\u00e8re ann\u00e9e - Closed Carbon Cycle for mixed plastic waste - Projet Phare","description":"Developing a closed carbon cycle for mixed plastic waste, comprising the following steps:\r\n1. Introduce a waste treatment process which is tolerant to mixed (unselected) plastic waste. [Ellert2024]\r\n2. Reduce and eventually eliminate incineration of plastic waste and thus CO2 emissions.\r\n3. Reduce or even eliminate waste deposits, which is in particular in the developing countries the major issue.\r\n4. Generate feed stock gas for the chemical and pharmaceutical industry.\r\n5. Replace and thus make obsolete the high temperature cracking process of crude oil in chemical industry, which is one of the major consumers of energy in the industrial sector in highly developed countries.\r\n6. Replace a major fraction of crude oil as feedstock for the chemical and pharmaceutical industry.\r\n7. Generate biodegradable plastics.\r\n"},"en":{"id":24249,"title":"C3 2024 - 1\u00e8re ann\u00e9e - Closed Carbon Cycle for mixed plastic waste - Projet Phare","description":"Developing a closed carbon cycle for mixed plastic waste, comprising the following steps:\r\n1. Introduce a waste treatment process which is tolerant to mixed (unselected) plastic waste. [Ellert2024]\r\n2. Reduce and eventually eliminate incineration of plastic waste and thus CO2 emissions.\r\n3. Reduce or even eliminate waste deposits, which is in particular in the developing countries the major issue.\r\n4. Generate feed stock gas for the chemical and pharmaceutical industry.\r\n5. 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Replace and thus make obsolete the high temperature cracking process of crude oil in chemical industry, which is one of the major consumers of energy in the industrial sector in highly developed countries.\r\n6. Replace a major fraction of crude oil as feedstock for the chemical and pharmaceutical industry.\r\n7. Generate biodegradable plastics.\r\n"}},"id":132990,"acronym":"C3 2024 - 1\u00e8re Ann\u00e9e ","mainTitle":"C3 2024 - 1\u00e8re ann\u00e9e - Closed Carbon Cycle for mixed plastic waste - Projet Phare","mainDescription":"Developing a closed carbon cycle for mixed plastic waste, comprising the following steps:\r\n1. Introduce a waste treatment process which is tolerant to mixed (unselected) plastic waste. [Ellert2024]\r\n2. Reduce and eventually eliminate incineration of plastic waste and thus CO2 emissions.\r\n3. Reduce or even eliminate waste deposits, which is in particular in the developing countries the major issue.\r\n4. 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{"id":2054,"languages":["fr","en","de"],"allLanguages":true,"skill":{"id":1360,"name":"Optical and Electron Microscopy"}}

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