TY - GEN
T1 - PLIF measurement of the time-resolved temperature field distribution around the fins of a thermoacoustic heat exchanger in oscillatory flow
AU - Shi, Lei
AU - Yu, Zhibin
AU - Jaworski, Artur J.
PY - 2009/7
Y1 - 2009/7
N2 - In thermoacoustic devices, two heat exchangers ("hot" and "cold") impose a temperature gradient within the " regenerator" or "stack", where the thermoacoustic effect takes place. Unfortunately, heat transfer characteristics of the heat exchangers in an acoustically induced oscillatory flow are not very well understood. Most handbook data are for heat exchangers in steady flow, few relevant experiments and calculations have been done for heat exchangers in oscillating flow. This paper investigates the temperature field around fins of a pair of model heat exchangers in the oscillatory flow, using acetone-based Planar Laser Induced Fluorescence (PLIF). The hot and cold heat exchanger fins are kept at constant temperatures by virtue of resistive heating and water cooling, respectively. The temperature field distributions for the whole acoustic cycle have been achieved. The time-dependent local convection heat transfer coefficients are also estimated from the temperature gradients in the thermal boundary layer.
AB - In thermoacoustic devices, two heat exchangers ("hot" and "cold") impose a temperature gradient within the " regenerator" or "stack", where the thermoacoustic effect takes place. Unfortunately, heat transfer characteristics of the heat exchangers in an acoustically induced oscillatory flow are not very well understood. Most handbook data are for heat exchangers in steady flow, few relevant experiments and calculations have been done for heat exchangers in oscillating flow. This paper investigates the temperature field around fins of a pair of model heat exchangers in the oscillatory flow, using acetone-based Planar Laser Induced Fluorescence (PLIF). The hot and cold heat exchanger fins are kept at constant temperatures by virtue of resistive heating and water cooling, respectively. The temperature field distributions for the whole acoustic cycle have been achieved. The time-dependent local convection heat transfer coefficients are also estimated from the temperature gradients in the thermal boundary layer.
UR - http://www.scopus.com/inward/record.url?scp=84871445291&partnerID=8YFLogxK
M3 - Conference contribution
AN - SCOPUS:84871445291
SN - 9781615677368
T3 - 16th International Congress on Sound and Vibration 2009, ICSV 2009
SP - 1861
EP - 1868
BT - 16th International Congress on Sound and Vibration 2009, ICSV 2009
T2 - 16th International Congress on Sound and Vibration 2009, ICSV 2009
Y2 - 5 July 2009 through 9 July 2009
ER -