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  4. Thermocouple Thermal Inertia Effects on Impingement Heat Transfer Experiments Using the Transient Liquid Crystal Technique
 
research article

Thermocouple Thermal Inertia Effects on Impingement Heat Transfer Experiments Using the Transient Liquid Crystal Technique

Terzis, Alexandros  
•
von Wolfersdorf, Jens
•
Weigand, Bernhard  
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2012
Measurement Science and Technology

The transient liquid crystal technique is widely used for impingement heat transfer experiments. Additionally, due to the difficulty of producing pure temperature steps in the flow, many authors assumed the fluid temperature evolution as a series of step changes using Duhamel’s superposition theorem. However, for small impingement configurations where the jets are fed from the same plenum chamber, and hence flow velocities are relatively small, thermal inertia of commercial thermocouples causes a delay, lagging from the real plenum temperature history. This paper investigates thermal inertia characteristics of thermocouples and their effect on the calculation of impingement heat transfer coefficient. Several thermocouples with exposed junction and different wire diameter were considered over a range of plenum flow conditions typically found in impingement heat transfer experiments. The effect of thermocouple time constant on the evaluation of the heat transfer rate was investigated in a narrow channel consisting of five inline impingement jets. The results indicated a significant effect of thermocouple response on the stagnation point region heat transfer, while lower local heat transfer rates are negligibly affected as liquid crystal signals appear later in time and the driving gas temperature history has a smaller influence on the evaluated data.

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Type
research article
DOI
10.1088/0957-0233/23/11/115303
Web of Science ID

WOS:000310531400020

Author(s)
Terzis, Alexandros  
von Wolfersdorf, Jens
Weigand, Bernhard  
Ott, Peter  
Date Issued

2012

Publisher

IOP Publishing

Published in
Measurement Science and Technology
Volume

23

Start page

115303 (pages 1

End page
Subjects

LTT

•

GTT

•

Measurement Technique

•

Heat Transfer

•

Experimental

•

Flow Measurement

•

thermocouple

•

time constant

•

liquid crystals

•

impingement cooling

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
GTT  
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/86189
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