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Predicting entropy generation rates in transitional boundary layers based on intermittency

Abstract:
Prediction of thermodynamic loss in transitional boundary layers is typically based on time averaged data only. This approach effectively ignores the intermittent nature of the transition region. In this work laminar and turbulent conditionally-sampled boundary layer data for zero pressure gradient and accelerating transitional boundary layers have been analyzed to calculate the entropy generation rate in the transition region. By weighting the non-dimensional dissipation coefficient for the laminar conditioned data and turbulent conditioned data with the intermittency factor, the entropy generation rate in the transition region can be determined and compared to the time averaged data and correlations for laminar and turbulent flow. It is demonstrated that this method provides an atcurale and detailed picture of the entropy generation rate during transition in contrast with simple time averaging. The data used in this paper have been taken from conditionally- sampled boundary layer measurements available in the literature for favorable pressure gradient flows. Based on these measurements a semi-empirical technique is developed to predict the entropy generation rate in a transitional boundary layer with promising results. Copyright © 2006 by ASME.

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Publisher copy:
10.1115/GT2006-91027

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Journal:
Proceedings of the ASME Turbo Expo More from this journal
Volume:
6 PART B
Pages:
1485-1492
Publication date:
2006-01-01
DOI:


Pubs id:
pubs:369510
UUID:
uuid:d05d5cf5-3955-4965-af44-4095ebda44c6
Local pid:
pubs:369510
Source identifiers:
369510
Deposit date:
2013-11-16
ARK identifier:

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