Thermal entry effects in turbulent pipe flows

Well-resolved simulations of passive-scalar turbulent pipe flow in the thermal entry region are presented. We quantify thermal entry lengths of several quantities, such as the Nusselt number $\\mathrm{Nu}$ and temperature variance, and show that they depend strongly on $\\mathrm{Re}_b$ and $\\mathrm{Pr}$ and that no single thermal entry length exists: higher-order statistics require much longer distances to reach their fully developed asymptote. To analyse the underlying mechanisms, we present a $\\mathrm{Nu}$-decomposition, the heat transfer counterpart of the Fukagata-Iwamoto-Kasagi (FIK) identity (Fukagata et al., 2002, Physics of Fluids) applicable in thermally developing flow.

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Publication Details

Journal
KITopen
Published
2026-09-08
DOI
https://doi.org/10.5445/ir/1000196885
Primary Topic
Fluid Dynamics and Turbulent Flows
Type
article
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article

Thermal entry effects in turbulent pipe flows

Bettina Frohnapfel, Jonathan Neuhauser, Davide Gatti
KITopen
Fluid Dynamics and Turbulent Flows
article

Thermal entry effects in turbulent pipe flows

Bettina Frohnapfel, Jonathan Neuhauser, Davide Gatti
article en

Abstract

Well-resolved simulations of passive-scalar turbulent pipe flow in the thermal entry region are presented. We quantify thermal entry lengths of several quantities, such as the Nusselt number $\mathrm{Nu}$ and temperature variance, and show that they depend strongly on $\mathrm{Re}_b$ and $\mathrm{Pr}$ and that no single thermal entry length exists: higher-order statistics require much longer distances to reach their fully developed asymptote. To analyse the underlying mechanisms, we present a $\mathrm{Nu}$-decomposition, the heat transfer counterpart of the Fukagata-Iwamoto-Kasagi (FIK) identity (Fukagata et al., 2002, Physics of Fluids) applicable in thermally developing flow.

KITopen
Openalex Percentile: Top 13%
Fluid Dynamics and Turbulent Flows
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