Large Eddy Simulations of Flow over Additively Manufactured Surfaces: Impact of Roughness and Skewness on Turbulent Heat Transfer

Fuente: arXiv
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Autori principali: Garg, Himani, Sahut, Guillaume, Tuneskog, Erika, Nogenmyr, Karl-Johan, Fureby, Christer
Natura: Preprint
Pubblicazione: 2024
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author Garg, Himani
Sahut, Guillaume
Tuneskog, Erika
Nogenmyr, Karl-Johan
Fureby, Christer
author_facet Garg, Himani
Sahut, Guillaume
Tuneskog, Erika
Nogenmyr, Karl-Johan
Fureby, Christer
contents Additive manufacturing creates surfaces with random roughness, impacting heat transfer and pressure loss differently than traditional sand-grain roughness. We conducted high-fidelity heat transfer simulations over three-dimensional additive manufactured surfaces with varying roughness heights and skewness. Based on an additive manufactured Inconel 939 sample from Siemens Energy AB, we created six surfaces with different normalized roughness heights, $R_a/D = 0.001, 0.006, 0.012, 0.015, 0.020,$ and $0.028$, and a fixed skewness, ${s_k} = 0.424$. Each surface was also flipped to obtain negatively skewed counterparts (${s_k} = -0.424)$. Simulations were conducted at a constant Reynolds number of 8000 and with temperature treated as a passive scalar. We analyzed temperature, velocity profiles and heat fluxes to understand the impact of roughness height and skewness on heat and momentum transfer. The inner-scaled mean temperature profiles are of larger magnitude than the mean velocity profiles both inside and outside the roughness layer. This means the temperature wall roughness function differs from the momentum wall roughness function. Surfaces with positive and negative skewness yielded different estimates of equivalent sand-grain roughness for the same $R_a/D$ values, suggesting a strong influence of slope and skewness on the relationship between roughness function and equivalent sand-grain roughness. Analysis of the heat and momentum transfer mechanisms indicated an increased effective Prandtl number within the rough surface in which the momentum diffusivity is larger than the corresponding thermal diffusivity due to the combined effects of turbulence and dispersion. Results consistently indicated improved heat transfer with increasing roughness height and positively skewed surfaces performing better beyond a certain roughness threshold than negatively skewed ones.
format Preprint
id arxiv_https___arxiv_org_abs_2406_05430
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Large Eddy Simulations of Flow over Additively Manufactured Surfaces: Impact of Roughness and Skewness on Turbulent Heat Transfer
Garg, Himani
Sahut, Guillaume
Tuneskog, Erika
Nogenmyr, Karl-Johan
Fureby, Christer
Fluid Dynamics
Additive manufacturing creates surfaces with random roughness, impacting heat transfer and pressure loss differently than traditional sand-grain roughness. We conducted high-fidelity heat transfer simulations over three-dimensional additive manufactured surfaces with varying roughness heights and skewness. Based on an additive manufactured Inconel 939 sample from Siemens Energy AB, we created six surfaces with different normalized roughness heights, $R_a/D = 0.001, 0.006, 0.012, 0.015, 0.020,$ and $0.028$, and a fixed skewness, ${s_k} = 0.424$. Each surface was also flipped to obtain negatively skewed counterparts (${s_k} = -0.424)$. Simulations were conducted at a constant Reynolds number of 8000 and with temperature treated as a passive scalar. We analyzed temperature, velocity profiles and heat fluxes to understand the impact of roughness height and skewness on heat and momentum transfer. The inner-scaled mean temperature profiles are of larger magnitude than the mean velocity profiles both inside and outside the roughness layer. This means the temperature wall roughness function differs from the momentum wall roughness function. Surfaces with positive and negative skewness yielded different estimates of equivalent sand-grain roughness for the same $R_a/D$ values, suggesting a strong influence of slope and skewness on the relationship between roughness function and equivalent sand-grain roughness. Analysis of the heat and momentum transfer mechanisms indicated an increased effective Prandtl number within the rough surface in which the momentum diffusivity is larger than the corresponding thermal diffusivity due to the combined effects of turbulence and dispersion. Results consistently indicated improved heat transfer with increasing roughness height and positively skewed surfaces performing better beyond a certain roughness threshold than negatively skewed ones.
title Large Eddy Simulations of Flow over Additively Manufactured Surfaces: Impact of Roughness and Skewness on Turbulent Heat Transfer
topic Fluid Dynamics
url https://arxiv.org/abs/2406.05430