Technoeconomic Assessment of an Advanced Aqueous Ammonia-Based Postcombustion Capture Process Integrated with a 650-MW Coal-Fired Power Station

Using a rigorous, rate-based model and a validated economic model, we investigated the technoeconomic performance of an aqueous NH3-based CO2 capture process integrated with a 650-MW coal-fired power station. First, the baseline NH3 process was explored with the process design of simultaneous captur...

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Main Authors: Li, K., Yu, H., Yan, S., Feron, P., Wardhaugh, L., Tade, Moses
Format: Journal Article
Published: American Chemical Society 2016
Online Access:http://hdl.handle.net/20.500.11937/28340
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author Li, K.
Yu, H.
Yan, S.
Feron, P.
Wardhaugh, L.
Tade, Moses
author_facet Li, K.
Yu, H.
Yan, S.
Feron, P.
Wardhaugh, L.
Tade, Moses
author_sort Li, K.
building Curtin Institutional Repository
collection Online Access
description Using a rigorous, rate-based model and a validated economic model, we investigated the technoeconomic performance of an aqueous NH3-based CO2 capture process integrated with a 650-MW coal-fired power station. First, the baseline NH3 process was explored with the process design of simultaneous capture of CO2 and SO2 to replace the conventional FGD unit. This reduced capital investment of the power station by US425/kW (a 13.1% reduction). Integration of this NH3 baseline process with the power station takes the CO2-avoided cost advantage over the MEA process (US67.3/tonne vs US86.4/tonne). We then investigated process modifications of a two-stage absorption, rich-split configuration and interheating stripping to further advance the NH3 process. The modified process reduced energy consumption by 31.7 MW/h (20.2% reduction) and capital costs by US55.4 million (6.7% reduction). As a result, the CO2-avoided cost fell to 53.2/tonne: a savings of 14.1 and 21.9/tonne CO2 compared with the NH3 baseline and advanced MEA process, respectively. The analysis of energy breakdown and cost distribution indicates that the technoeconomic performance of the NH3 process still has great potential to be improved.
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spelling curtin-20.500.11937-283402017-09-13T15:21:25Z Technoeconomic Assessment of an Advanced Aqueous Ammonia-Based Postcombustion Capture Process Integrated with a 650-MW Coal-Fired Power Station Li, K. Yu, H. Yan, S. Feron, P. Wardhaugh, L. Tade, Moses Using a rigorous, rate-based model and a validated economic model, we investigated the technoeconomic performance of an aqueous NH3-based CO2 capture process integrated with a 650-MW coal-fired power station. First, the baseline NH3 process was explored with the process design of simultaneous capture of CO2 and SO2 to replace the conventional FGD unit. This reduced capital investment of the power station by US425/kW (a 13.1% reduction). Integration of this NH3 baseline process with the power station takes the CO2-avoided cost advantage over the MEA process (US67.3/tonne vs US86.4/tonne). We then investigated process modifications of a two-stage absorption, rich-split configuration and interheating stripping to further advance the NH3 process. The modified process reduced energy consumption by 31.7 MW/h (20.2% reduction) and capital costs by US55.4 million (6.7% reduction). As a result, the CO2-avoided cost fell to 53.2/tonne: a savings of 14.1 and 21.9/tonne CO2 compared with the NH3 baseline and advanced MEA process, respectively. The analysis of energy breakdown and cost distribution indicates that the technoeconomic performance of the NH3 process still has great potential to be improved. 2016 Journal Article http://hdl.handle.net/20.500.11937/28340 10.1021/acs.est.6b02737 American Chemical Society restricted
spellingShingle Li, K.
Yu, H.
Yan, S.
Feron, P.
Wardhaugh, L.
Tade, Moses
Technoeconomic Assessment of an Advanced Aqueous Ammonia-Based Postcombustion Capture Process Integrated with a 650-MW Coal-Fired Power Station
title Technoeconomic Assessment of an Advanced Aqueous Ammonia-Based Postcombustion Capture Process Integrated with a 650-MW Coal-Fired Power Station
title_full Technoeconomic Assessment of an Advanced Aqueous Ammonia-Based Postcombustion Capture Process Integrated with a 650-MW Coal-Fired Power Station
title_fullStr Technoeconomic Assessment of an Advanced Aqueous Ammonia-Based Postcombustion Capture Process Integrated with a 650-MW Coal-Fired Power Station
title_full_unstemmed Technoeconomic Assessment of an Advanced Aqueous Ammonia-Based Postcombustion Capture Process Integrated with a 650-MW Coal-Fired Power Station
title_short Technoeconomic Assessment of an Advanced Aqueous Ammonia-Based Postcombustion Capture Process Integrated with a 650-MW Coal-Fired Power Station
title_sort technoeconomic assessment of an advanced aqueous ammonia-based postcombustion capture process integrated with a 650-mw coal-fired power station
url http://hdl.handle.net/20.500.11937/28340