Investigations on power requirements for industrial compression strategies for Carbon Capture and Sequestration

The main purpose of this study is to identify the optimum multistage compression strategies for minimising the compression and intercooler power requirements for pure CO2 stream. An analytical model based on thermodynamics principles is developed and applied to determine the power requirements for v...

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Published in:Journal of Physics: Conference Series
Main Author: Daud N.K.; Nasuha N.; Martynov S.; Mahgerefteh H.
Format: Conference paper
Language:English
Published: Institute of Physics Publishing 2019
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85077797358&doi=10.1088%2f1742-6596%2f1349%2f1%2f012010&partnerID=40&md5=a72dd73cd7a40a8a1ed696eb56b87886
id 2-s2.0-85077797358
spelling 2-s2.0-85077797358
Daud N.K.; Nasuha N.; Martynov S.; Mahgerefteh H.
Investigations on power requirements for industrial compression strategies for Carbon Capture and Sequestration
2019
Journal of Physics: Conference Series
1349
1
10.1088/1742-6596/1349/1/012010
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85077797358&doi=10.1088%2f1742-6596%2f1349%2f1%2f012010&partnerID=40&md5=a72dd73cd7a40a8a1ed696eb56b87886
The main purpose of this study is to identify the optimum multistage compression strategies for minimising the compression and intercooler power requirements for pure CO2 stream. An analytical model based on thermodynamics principles is developed and applied to determine the power requirements for various compression strategies for pure CO2 stream. The compression options examined include conventional multistage integrally geared centrifugal compressors (option A), supersonic shockwave compressors (option B) and multistage compression combined with subcritical (option C) and supercritical liquefaction (option D) and pumping. In the case of determining the power demand for inter-stage cooling and liquefaction, a thermodynamic model based on Carnot refrigeration cycle is applied. From the previous study by [1], the power demand for inter-stage cooling duty was assumed to have been neglected. However, based on the present study, the inter-stage cooling duty is predicted to be significantly higher and contributes approximately 30% of the total power requirement for compression options A, C and D, while reaches 58% when applied to option B. It is also found that compression option C can offer higher efficiency than other compression strategies, while supercritical liquefaction efficiency is only marginally higher than that in the compression option A. © Published under licence by IOP Publishing Ltd.
Institute of Physics Publishing
17426588
English
Conference paper
All Open Access; Gold Open Access
author Daud N.K.; Nasuha N.; Martynov S.; Mahgerefteh H.
spellingShingle Daud N.K.; Nasuha N.; Martynov S.; Mahgerefteh H.
Investigations on power requirements for industrial compression strategies for Carbon Capture and Sequestration
author_facet Daud N.K.; Nasuha N.; Martynov S.; Mahgerefteh H.
author_sort Daud N.K.; Nasuha N.; Martynov S.; Mahgerefteh H.
title Investigations on power requirements for industrial compression strategies for Carbon Capture and Sequestration
title_short Investigations on power requirements for industrial compression strategies for Carbon Capture and Sequestration
title_full Investigations on power requirements for industrial compression strategies for Carbon Capture and Sequestration
title_fullStr Investigations on power requirements for industrial compression strategies for Carbon Capture and Sequestration
title_full_unstemmed Investigations on power requirements for industrial compression strategies for Carbon Capture and Sequestration
title_sort Investigations on power requirements for industrial compression strategies for Carbon Capture and Sequestration
publishDate 2019
container_title Journal of Physics: Conference Series
container_volume 1349
container_issue 1
doi_str_mv 10.1088/1742-6596/1349/1/012010
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85077797358&doi=10.1088%2f1742-6596%2f1349%2f1%2f012010&partnerID=40&md5=a72dd73cd7a40a8a1ed696eb56b87886
description The main purpose of this study is to identify the optimum multistage compression strategies for minimising the compression and intercooler power requirements for pure CO2 stream. An analytical model based on thermodynamics principles is developed and applied to determine the power requirements for various compression strategies for pure CO2 stream. The compression options examined include conventional multistage integrally geared centrifugal compressors (option A), supersonic shockwave compressors (option B) and multistage compression combined with subcritical (option C) and supercritical liquefaction (option D) and pumping. In the case of determining the power demand for inter-stage cooling and liquefaction, a thermodynamic model based on Carnot refrigeration cycle is applied. From the previous study by [1], the power demand for inter-stage cooling duty was assumed to have been neglected. However, based on the present study, the inter-stage cooling duty is predicted to be significantly higher and contributes approximately 30% of the total power requirement for compression options A, C and D, while reaches 58% when applied to option B. It is also found that compression option C can offer higher efficiency than other compression strategies, while supercritical liquefaction efficiency is only marginally higher than that in the compression option A. © Published under licence by IOP Publishing Ltd.
publisher Institute of Physics Publishing
issn 17426588
language English
format Conference paper
accesstype All Open Access; Gold Open Access
record_format scopus
collection Scopus
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