TY - JOUR
T1 - Thermal and flow properties of microchannels with vortex generators, flexible surfaces, and micro-baffles
AU - Havasi, Farzad
AU - Hosseini, Seyyed Hossein
AU - Song, Mengjie
N1 - Publisher Copyright:
© 2025 Elsevier Ltd
PY - 2025/10/1
Y1 - 2025/10/1
N2 - The impact of combining micro-baffles, vortex generators, and elastic walls on the thermal performance of microchannels commonly utilized in many sectors has not been investigated in the literature. Using the Arbitrary Lagrangian-Eulerian method, this study extensively examines the effects of integrating elastic walls, vortex generators, and the distribution of micro-baffles inside microchannels on flow dynamics and heat transfer. Results show that the arrangement of the micro-baffle with adjustable heights improves the thermal performance ratio (TPR) compared to the micro-baffles with similar heights. Each pair of elastic micro-baffles in a microchannel with a flexible upper wall interacts with the others, amplifying the displacement of the micro-baffle tip, which oscillates indefinitely without reaching a stable state. However, they achieve nearly constant conditions in the microchannels that contain only micro-baffles. Ultimately, the suggested synergetic design enhances TPR and the time and spatial average of the Nu number by 19 % and 8.03 %, respectively.
AB - The impact of combining micro-baffles, vortex generators, and elastic walls on the thermal performance of microchannels commonly utilized in many sectors has not been investigated in the literature. Using the Arbitrary Lagrangian-Eulerian method, this study extensively examines the effects of integrating elastic walls, vortex generators, and the distribution of micro-baffles inside microchannels on flow dynamics and heat transfer. Results show that the arrangement of the micro-baffle with adjustable heights improves the thermal performance ratio (TPR) compared to the micro-baffles with similar heights. Each pair of elastic micro-baffles in a microchannel with a flexible upper wall interacts with the others, amplifying the displacement of the micro-baffle tip, which oscillates indefinitely without reaching a stable state. However, they achieve nearly constant conditions in the microchannels that contain only micro-baffles. Ultimately, the suggested synergetic design enhances TPR and the time and spatial average of the Nu number by 19 % and 8.03 %, respectively.
KW - CFD
KW - Enhanced Heat Transfer
KW - Fluid-Structure Interaction
KW - Micro-baffle
KW - Microchannel
UR - https://www.scopus.com/pages/publications/105006650578
U2 - 10.1016/j.ces.2025.121932
DO - 10.1016/j.ces.2025.121932
M3 - Article
AN - SCOPUS:105006650578
SN - 0009-2509
VL - 316
JO - Chemical Engineering Science
JF - Chemical Engineering Science
M1 - 121932
ER -