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Computational Fluid Dynamics Based Optimal Design of Guiding Channel Geometry in U-Type Coolant Layer Manifold of Large-Scale Microchannel Fischer-Tropsch Reactor

Authors
Jung, IkhwanKshetrimayum, Krishnadash S.Park, SeonghoNa, JonggeolLee, YongkyuAn, JinjooPark, SeongeonLee, Chul-JinHan, Chonghun
Issue Date
Jan-2016
Publisher
AMER CHEMICAL SOC
Citation
INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, v.55, no.2, pp 505 - 515
Pages
11
Journal Title
INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH
Volume
55
Number
2
Start Page
505
End Page
515
URI
https://scholarworks.bwise.kr/cau/handle/2019.sw.cau/48807
DOI
10.1021/acs.iecr.5b03313
ISSN
0888-5885
1520-5045
Abstract
A microchannel Fischer-Tropsch reactor retaining high heat and mass transfer performance requires uniform flow distribution on the coolant side to induce isothermal condition for controllable and sustainable operation. The present work improved the flow performance of a large-scale layer of over 100 channels by introducing an extremely simple guiding fin in the inlet and outlet rectangular manifolds. Case studies with three-dimensional computational fluid dynamics (CFD) were carried out where the upper and bottom lengths of the guiding fin were the main geometric variables. Then the optimization work was conducted to estimate the performance of the optimal design. The robustness for the proposed geometry was tested with varying the flow rate, fluid type, and temperature. The result showed that the proposed design can retain uniform distribution over a wide operation range (500 <= Re-GF <= 10800).
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