Modelling the particle trajectory and melting behaviour of non-spherical ice crystal particles

Existing ice crystal icing codes commonly neglect non-spherical particle rotation behaviour. This leads to uncertainties in modelling ice crystal icing as ice crystals are typically non-spherical. This paper develops a two-dimensional framework to model the particle trajectory and melting behaviour...

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Main Authors: Yang, X, McGilvray, M, Gillespie, DRH
Format: Journal article
Language:English
Published: Elsevier 2022
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author Yang, X
McGilvray, M
Gillespie, DRH
author_facet Yang, X
McGilvray, M
Gillespie, DRH
author_sort Yang, X
collection OXFORD
description Existing ice crystal icing codes commonly neglect non-spherical particle rotation behaviour. This leads to uncertainties in modelling ice crystal icing as ice crystals are typically non-spherical. This paper develops a two-dimensional framework to model the particle trajectory and melting behaviour of rotating non-spherical ice crystal particles. Non-spherical particle translational and rotational motions are resolved using a framework of unit complex numbers. The effect of rotation on particle heat and mass transfer is implemented using a sub-model dependent on both rotational and translational particle Reynolds numbers. A test case of flow through a swan neck duct is presented. The model is validated through comparison to the discrete phase model in ANSYS Fluent and experimental water droplet impingement test data. Comparison of the developed framework with other simplified particle tracking methods (without modelling the non-spherical particle rotation) is first conducted. These results show large differences in the trajectory, velocity and melt ratio of individual particles and in overall particle impingement behaviours, especially for high aspect ratio particles. Particle rotation can indirectly affect single particle’s melting behaviour through its effect on particle trajectory and velocity. Both aspect ratio and porosity are seen to enhance particle melting behaviour and affect particle impingement behaviour. The numerical uncertainties in the DNS-based correlations of the particle forces and torques employed are also discussed, as well as the performance of the developed framework for the case of a flow past a test article.
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spelling oxford-uuid:f9c912e8-9de2-4655-a542-2bf261d2e8e92023-01-06T08:58:06ZModelling the particle trajectory and melting behaviour of non-spherical ice crystal particlesJournal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:f9c912e8-9de2-4655-a542-2bf261d2e8e9EnglishSymplectic ElementsElsevier2022Yang, XMcGilvray, MGillespie, DRHExisting ice crystal icing codes commonly neglect non-spherical particle rotation behaviour. This leads to uncertainties in modelling ice crystal icing as ice crystals are typically non-spherical. This paper develops a two-dimensional framework to model the particle trajectory and melting behaviour of rotating non-spherical ice crystal particles. Non-spherical particle translational and rotational motions are resolved using a framework of unit complex numbers. The effect of rotation on particle heat and mass transfer is implemented using a sub-model dependent on both rotational and translational particle Reynolds numbers. A test case of flow through a swan neck duct is presented. The model is validated through comparison to the discrete phase model in ANSYS Fluent and experimental water droplet impingement test data. Comparison of the developed framework with other simplified particle tracking methods (without modelling the non-spherical particle rotation) is first conducted. These results show large differences in the trajectory, velocity and melt ratio of individual particles and in overall particle impingement behaviours, especially for high aspect ratio particles. Particle rotation can indirectly affect single particle’s melting behaviour through its effect on particle trajectory and velocity. Both aspect ratio and porosity are seen to enhance particle melting behaviour and affect particle impingement behaviour. The numerical uncertainties in the DNS-based correlations of the particle forces and torques employed are also discussed, as well as the performance of the developed framework for the case of a flow past a test article.
spellingShingle Yang, X
McGilvray, M
Gillespie, DRH
Modelling the particle trajectory and melting behaviour of non-spherical ice crystal particles
title Modelling the particle trajectory and melting behaviour of non-spherical ice crystal particles
title_full Modelling the particle trajectory and melting behaviour of non-spherical ice crystal particles
title_fullStr Modelling the particle trajectory and melting behaviour of non-spherical ice crystal particles
title_full_unstemmed Modelling the particle trajectory and melting behaviour of non-spherical ice crystal particles
title_short Modelling the particle trajectory and melting behaviour of non-spherical ice crystal particles
title_sort modelling the particle trajectory and melting behaviour of non spherical ice crystal particles
work_keys_str_mv AT yangx modellingtheparticletrajectoryandmeltingbehaviourofnonsphericalicecrystalparticles
AT mcgilvraym modellingtheparticletrajectoryandmeltingbehaviourofnonsphericalicecrystalparticles
AT gillespiedrh modellingtheparticletrajectoryandmeltingbehaviourofnonsphericalicecrystalparticles