Techno-economic and Environmental Analysis of Hydrogen and Power Co-generation based on Co-gasification of Coal and Biomass / Solid Wastes with Carbon Capture

Development of energy efficient ways to convert biomass and wastes to energy is of paramount importance in modern society. The development and large scale deployment of energy and cost effective carbon capture and storage (CCS) technologies are equally important for transition to low carbon economy....

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Main Author: C.C. Cormos
Format: Article
Language:English
Published: AIDIC Servizi S.r.l. 2014-06-01
Series:Chemical Engineering Transactions
Online Access:https://www.cetjournal.it/index.php/cet/article/view/5718
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spelling doaj-1591fa27bcb24a9ba47ea3de9d5056f12021-02-21T21:01:08ZengAIDIC Servizi S.r.l.Chemical Engineering Transactions2283-92162014-06-013710.3303/CET1437024Techno-economic and Environmental Analysis of Hydrogen and Power Co-generation based on Co-gasification of Coal and Biomass / Solid Wastes with Carbon CaptureC.C. CormosDevelopment of energy efficient ways to convert biomass and wastes to energy is of paramount importance in modern society. The development and large scale deployment of energy and cost effective carbon capture and storage (CCS) technologies are equally important for transition to low carbon economy. This paper investigates the potential use of biomass (sawdust and agricultural wastes) and solid wastes (e.g. municipal wastes, meat and bone meal etc.) in a co-gasification process with coal to co-generate hydrogen and electricity with carbon capture. The paper underlines one of the main advantages of gasification technology, namely the possibility to process lower grade fuels (lower grade coals, biomass, solid wastes etc.), which are more widely available and cheaper than the high grade coals normally used in combustion-based power plants, this fact contributing to the improvement of energy security supply. Based on a proposed plant concept that generates 400 – 425 MW net electricity with a flexible output of 0– 200 MWth hydrogen and a carbon capture rate of at least 90 %, the paper presents in details coal and biomass / solid waste blending for optimizing plant performance, mass and energy integration aspects, hydrogen and power co-generation and overall energy efficiency. Energy vectors poly-generation capability of gasification plants and a critical comparison of coal and biomass co-gasification with correspondent co-combustion are also discussed. The key technical performance indicators are calculated for a number of case studies through process flow simulations. The mass and energy balances resulted from simulation are then used to assess the main techno-economic and environmental indicators of the evaluated cases, like plant energy efficiency, ancillary power consumption, carbon capture energy and cost penalty, specific CO2 emissions, capital costs, specific capital investment per kW, operation and maintenance (O&M) costs, cost of electricity, CO2 removal and avoidance costs, cash flow analysis.https://www.cetjournal.it/index.php/cet/article/view/5718
collection DOAJ
language English
format Article
sources DOAJ
author C.C. Cormos
spellingShingle C.C. Cormos
Techno-economic and Environmental Analysis of Hydrogen and Power Co-generation based on Co-gasification of Coal and Biomass / Solid Wastes with Carbon Capture
Chemical Engineering Transactions
author_facet C.C. Cormos
author_sort C.C. Cormos
title Techno-economic and Environmental Analysis of Hydrogen and Power Co-generation based on Co-gasification of Coal and Biomass / Solid Wastes with Carbon Capture
title_short Techno-economic and Environmental Analysis of Hydrogen and Power Co-generation based on Co-gasification of Coal and Biomass / Solid Wastes with Carbon Capture
title_full Techno-economic and Environmental Analysis of Hydrogen and Power Co-generation based on Co-gasification of Coal and Biomass / Solid Wastes with Carbon Capture
title_fullStr Techno-economic and Environmental Analysis of Hydrogen and Power Co-generation based on Co-gasification of Coal and Biomass / Solid Wastes with Carbon Capture
title_full_unstemmed Techno-economic and Environmental Analysis of Hydrogen and Power Co-generation based on Co-gasification of Coal and Biomass / Solid Wastes with Carbon Capture
title_sort techno-economic and environmental analysis of hydrogen and power co-generation based on co-gasification of coal and biomass / solid wastes with carbon capture
publisher AIDIC Servizi S.r.l.
series Chemical Engineering Transactions
issn 2283-9216
publishDate 2014-06-01
description Development of energy efficient ways to convert biomass and wastes to energy is of paramount importance in modern society. The development and large scale deployment of energy and cost effective carbon capture and storage (CCS) technologies are equally important for transition to low carbon economy. This paper investigates the potential use of biomass (sawdust and agricultural wastes) and solid wastes (e.g. municipal wastes, meat and bone meal etc.) in a co-gasification process with coal to co-generate hydrogen and electricity with carbon capture. The paper underlines one of the main advantages of gasification technology, namely the possibility to process lower grade fuels (lower grade coals, biomass, solid wastes etc.), which are more widely available and cheaper than the high grade coals normally used in combustion-based power plants, this fact contributing to the improvement of energy security supply. Based on a proposed plant concept that generates 400 – 425 MW net electricity with a flexible output of 0– 200 MWth hydrogen and a carbon capture rate of at least 90 %, the paper presents in details coal and biomass / solid waste blending for optimizing plant performance, mass and energy integration aspects, hydrogen and power co-generation and overall energy efficiency. Energy vectors poly-generation capability of gasification plants and a critical comparison of coal and biomass co-gasification with correspondent co-combustion are also discussed. The key technical performance indicators are calculated for a number of case studies through process flow simulations. The mass and energy balances resulted from simulation are then used to assess the main techno-economic and environmental indicators of the evaluated cases, like plant energy efficiency, ancillary power consumption, carbon capture energy and cost penalty, specific CO2 emissions, capital costs, specific capital investment per kW, operation and maintenance (O&M) costs, cost of electricity, CO2 removal and avoidance costs, cash flow analysis.
url https://www.cetjournal.it/index.php/cet/article/view/5718
work_keys_str_mv AT cccormos technoeconomicandenvironmentalanalysisofhydrogenandpowercogenerationbasedoncogasificationofcoalandbiomasssolidwasteswithcarboncapture
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