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PMID: 41374919 Published · epublish English Journal Article

CFD-Based Evaluation of Stirred Tank Designs for High-Viscosity Copolymer Aramid Dope Mixing.

Polymers ·Vol. 17 ·No. 23 ·2025-12-04

Yeo DH, Yoon HS, Yu SH, Sim JH

Abstract

High-viscosity aramid copolymer solutions are widely used in fiber manufacturing and advanced composite applications, but their elevated viscosity poses significant challenges for mixing and agitation processes. This study employs computational fluid dynamics (CFD) simulations to enhance the mixing performance of such systems. Flow behavior around the impeller was analyzed within a cylindrical stirred tank while varying the number of baffles (0, 2, 4, and 6) and comparing two different impeller designs (A and B). Simulation results showed that installing a sufficient number of baffles-particularly four-effectively suppressed swirling flows commonly observed in high-viscosity fluids, thereby significantly improving mixing efficiency. Additionally, impeller geometry played a critical role in performance: the axial-flow impeller promoted faster homogenization and broader circulation compared with the radial-flow design. Through this CFD-based analysis, this study elucidates the key mechanisms governing mixing in high-viscosity fluids and provides practical design and operational guidelines for industrial stirred tank systems. These findings complement existing empirical guidelines focused on low-viscosity fluids and contribute to improving the efficiency and reliability of high-viscosity polymer processing.

Keywords
baffle effect computational fluid dynamics (CFD) copolymer aramid dope mixing performance stirred tank design
作者与单位
共 4 位作者,点击展开单位 / ORCID
Yeo Dong-Hyun
Korea Dyeing & Finishing Technology Institute (DYETEC Institute), Daegu 41706, Republic of Korea.
Yoon Hyun-Sung
Korea Dyeing & Finishing Technology Institute (DYETEC Institute), Daegu 41706, Republic of Korea.
Yu Seong-Hun ORCID
Korea Dyeing & Finishing Technology Institute (DYETEC Institute), Daegu 41706, Republic of Korea.
Sim Jee-Hyun
Korea Dyeing & Finishing Technology Institute (DYETEC Institute), Daegu 41706, Republic of Korea.
Article Info
Journal
Polymers
Abbr.
Polymers (Basel)
ISSN
2073-4360
Published
2025-12-04
电子出版
2025-00-04
Language
English
Country/Region
Switzerland
NLM ID
101545357
基金资助
Ministry of Trade, Industry and Energy · P0022335
Ministry of Trade, Industry and Energy · 20015646
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