TY - JOUR
T1 - Numerical Study of Heat Transfer Enhancement of Roll-to-Roll Microchannel Heat Exchangers
AU - Wang, Heng
AU - Balasubramaniam, Lakshmi
AU - Marshall, Samuel D.
AU - Jin, Xin
AU - Arayanarakool, Rerngchai
AU - Lee, Poh Seng
AU - Chen, Peter C.Y.
N1 - Publisher Copyright:
Copyright © 2018 by ASME.
PY - 2018/6/1
Y1 - 2018/6/1
N2 - The heat transfer performance of two roll-to-roll microchannel heat exchangers with square cross section and side length ranging from 0.2mm to 0.5mm were investigated via numerical studies. In order to assess the heat transfer enhancement, equivalent straight channel heat exchangers were also researched numerically as comparisons. For the roll-to-roll devices, numerical studies demonstrated that there were two reasons for heat transfer enhancement. First, when the average Dean number of the fluid was greater than approximately 10, Dean vortices started to form within the roll-to-roll microchannels, enhancing the convective heat transfer between channels. Second, the compact rollto- roll structure of the heat exchangers increased the area of heat transfer compared with straight microchannel equivalents, and thus promoted the conductive heat transfer. Numerical simulations noted both higher Nusselt numbers and higher thermal performance factors (TPF) for roll-to-roll microchannel heat exchangers compared with equivalent straight channels and were employed to optimize both the microchannel cross section dimensions and the wall thickness between channels. In addition, the swirling strength and the heat transfer area were also calculated to characterize the convective and conductive heat transfer, respectively, allowing for a comparison between two rollto- roll microchannel heat exchanger designs.
AB - The heat transfer performance of two roll-to-roll microchannel heat exchangers with square cross section and side length ranging from 0.2mm to 0.5mm were investigated via numerical studies. In order to assess the heat transfer enhancement, equivalent straight channel heat exchangers were also researched numerically as comparisons. For the roll-to-roll devices, numerical studies demonstrated that there were two reasons for heat transfer enhancement. First, when the average Dean number of the fluid was greater than approximately 10, Dean vortices started to form within the roll-to-roll microchannels, enhancing the convective heat transfer between channels. Second, the compact rollto- roll structure of the heat exchangers increased the area of heat transfer compared with straight microchannel equivalents, and thus promoted the conductive heat transfer. Numerical simulations noted both higher Nusselt numbers and higher thermal performance factors (TPF) for roll-to-roll microchannel heat exchangers compared with equivalent straight channels and were employed to optimize both the microchannel cross section dimensions and the wall thickness between channels. In addition, the swirling strength and the heat transfer area were also calculated to characterize the convective and conductive heat transfer, respectively, allowing for a comparison between two rollto- roll microchannel heat exchanger designs.
KW - Roll-to-roll microchannel heat exchangers
KW - conductive heat transfer
KW - convective heat transfer
KW - dean vortices
UR - http://www.scopus.com/inward/record.url?scp=85044545028&partnerID=8YFLogxK
U2 - 10.1115/1.4038910
DO - 10.1115/1.4038910
M3 - Article
AN - SCOPUS:85044545028
SN - 0022-1481
VL - 140
JO - Journal of Heat Transfer
JF - Journal of Heat Transfer
IS - 6
M1 - 061801
ER -