Correlations for aerodynamic force coefficients of non-spherical particles in compressible flows

Fuente: arXiv
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Autores principales: Gorges, Christian, Chéron, Victor, Chopra, Anjali, Denner, Fabian, van Wachem, Berend
Formato: Preprint
Publicado: 2024
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author Gorges, Christian
Chéron, Victor
Chopra, Anjali
Denner, Fabian
van Wachem, Berend
author_facet Gorges, Christian
Chéron, Victor
Chopra, Anjali
Denner, Fabian
van Wachem, Berend
contents This study presents particle-resolved direct numerical simulations using three-dimensional body-fitted hexahedral meshes to investigate the aerodynamic force and torque coefficients of non-spherical particles in compressible flows. The simulations focus on three particle shapes: a prolate spheroid, an oblate spheroid, and a rod-like particle, across a range of Mach numbers (0.3 to 2.0), angles of attack (0 degrees to 90 degrees), and particle Reynolds numbers (100 to 300). Results indicate that the particle shape significantly impacts the aerodynamic forces on a particle in a compressible flow, with oblate spheroids exhibiting the highest drag, lift, and torque values. Correlations for these aerodynamic coefficients of the particles in a compressible flow are developed and validated. These correlations advance multiphase flow modeling by improving the accuracy of point-particle simulations for non-spherical particles in compressible flows.
format Preprint
id arxiv_https___arxiv_org_abs_2408_13884
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Correlations for aerodynamic force coefficients of non-spherical particles in compressible flows
Gorges, Christian
Chéron, Victor
Chopra, Anjali
Denner, Fabian
van Wachem, Berend
Fluid Dynamics
This study presents particle-resolved direct numerical simulations using three-dimensional body-fitted hexahedral meshes to investigate the aerodynamic force and torque coefficients of non-spherical particles in compressible flows. The simulations focus on three particle shapes: a prolate spheroid, an oblate spheroid, and a rod-like particle, across a range of Mach numbers (0.3 to 2.0), angles of attack (0 degrees to 90 degrees), and particle Reynolds numbers (100 to 300). Results indicate that the particle shape significantly impacts the aerodynamic forces on a particle in a compressible flow, with oblate spheroids exhibiting the highest drag, lift, and torque values. Correlations for these aerodynamic coefficients of the particles in a compressible flow are developed and validated. These correlations advance multiphase flow modeling by improving the accuracy of point-particle simulations for non-spherical particles in compressible flows.
title Correlations for aerodynamic force coefficients of non-spherical particles in compressible flows
topic Fluid Dynamics
url https://arxiv.org/abs/2408.13884