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Enhancement of CO2 separation performance using a vortex tube: Analysis of design parameters and operating conditions

Authors
Hyun, Su WoongKim, Gun WooKim, Young-ShikKim, Hyun-SeokShin, Dong Ho
Issue Date
Oct-2025
Publisher
TAYLOR & FRANCIS INC
Keywords
Vortex tube; carbon dioxide capture; parametric study; separation efficiency
Citation
Separation Science and Technology, v.60, no.15, pp 2191 - 2210
Pages
20
Indexed
SCIE
SCOPUS
Journal Title
Separation Science and Technology
Volume
60
Number
15
Start Page
2191
End Page
2210
URI
https://scholarworks.dongguk.edu/handle/sw.dongguk/61579
DOI
10.1080/01496395.2025.2559299
ISSN
0149-6395
1520-5754
Abstract
The development of efficient CO2 capture technologies is crucial to counteracting the effects of carbon emissions on climate change. This study explores vital design parameters and operating conditions aimed at improving CO2 separation performance in a vortex tube. The geometric parameters considered for the vortex tube include the diameter ratio and tube length, and the impact of these parameters on CO2 separation efficiency was thoroughly assessed. The diameter ratio ranged from 0.4 to 2.0, while the tube lengths varied from 100 mm to 500 mm. Furthermore, a recycling method was applied by reintroducing cold outlet gas into the vortex tube inlet, which resulted in an increased CO2 concentration. The findings indicate that a diameter ratio of 0.4 yielded the highest CO2 separation efficiency, with an optimal tube length of 100 mm. Introducing additional cycles proved to be an effective strategy to enhance separation performance, elevating the CO2 concentration at the cold outlet to 64.6%. However, implementing more than four cycles led to pressure losses, necessitating a balanced approach. This study evaluates how design and operating conditions affect CO2 separation in a vortex tube, offering guidelines for optimal efficiency.
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