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Experiments and Numerical Simulation of N-decane/Ethanol Bi-Component Droplet Evaporation

The evaporation characteristics of n-decane-based bi-component or multi-component droplets have been veiled for application in advanced combustion. This paper proposes to experimentally investigate the evaporation of n-decane/ethanol bi-component droplets settled in the convective hot air, and numer...

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Autores principales: Zhang, Zhenzhong, Huang, Xuefeng, Xu, Jiangrong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10004747/
https://www.ncbi.nlm.nih.gov/pubmed/36903632
http://dx.doi.org/10.3390/molecules28052391
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author Zhang, Zhenzhong
Huang, Xuefeng
Xu, Jiangrong
author_facet Zhang, Zhenzhong
Huang, Xuefeng
Xu, Jiangrong
author_sort Zhang, Zhenzhong
collection PubMed
description The evaporation characteristics of n-decane-based bi-component or multi-component droplets have been veiled for application in advanced combustion. This paper proposes to experimentally investigate the evaporation of n-decane/ethanol bi-component droplets settled in the convective hot air, and numerically simulate the key parameters affecting the evaporation charactersitics. It was found that the evaporation behavior was interactively affected by the mass fraction of ethanol and the ambient temperature. For mono-component n-decane droplets, the evaporation process included the transient heating (non-isothermal) and steady evaporation (isothermal) stages. In the isothermal stage, the evaporation rate followed d(2)-law. The evaporation rate constant linearly increased as the ambient temperature enhanced (573~873 K). For n-decane/ethanol bi-component droplets, at low mass fractions (≤0.2), the isothermal evaporation processes were steady due to the good miscibility between n-decane and ethanol, like mono-component n-decane, whereas at high mass fractions (≥0.4), the evaporation process experienced ultrashort heating and fluctuating evaporation stages. During the fluctuating evaporation, the bubbles formed inside the bi-component droplets and expanded, resulting in the occurrence of the microspray (secondary atomization) and the microexplosion. The evaporation rate constant of bi-component droplets increased as the ambient temperature enhanced, and showed a “V-shaped” trend with the increase of the mass fraction, and the evaporation rate constant was the smallest at 0.4. The evaporation rate constants based on the numerical simulation by using the multiphase flow model and Lee model showed reasonable agreement with the experimental ones, suggesting a potential of application in practical engineering.
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spelling pubmed-100047472023-03-11 Experiments and Numerical Simulation of N-decane/Ethanol Bi-Component Droplet Evaporation Zhang, Zhenzhong Huang, Xuefeng Xu, Jiangrong Molecules Article The evaporation characteristics of n-decane-based bi-component or multi-component droplets have been veiled for application in advanced combustion. This paper proposes to experimentally investigate the evaporation of n-decane/ethanol bi-component droplets settled in the convective hot air, and numerically simulate the key parameters affecting the evaporation charactersitics. It was found that the evaporation behavior was interactively affected by the mass fraction of ethanol and the ambient temperature. For mono-component n-decane droplets, the evaporation process included the transient heating (non-isothermal) and steady evaporation (isothermal) stages. In the isothermal stage, the evaporation rate followed d(2)-law. The evaporation rate constant linearly increased as the ambient temperature enhanced (573~873 K). For n-decane/ethanol bi-component droplets, at low mass fractions (≤0.2), the isothermal evaporation processes were steady due to the good miscibility between n-decane and ethanol, like mono-component n-decane, whereas at high mass fractions (≥0.4), the evaporation process experienced ultrashort heating and fluctuating evaporation stages. During the fluctuating evaporation, the bubbles formed inside the bi-component droplets and expanded, resulting in the occurrence of the microspray (secondary atomization) and the microexplosion. The evaporation rate constant of bi-component droplets increased as the ambient temperature enhanced, and showed a “V-shaped” trend with the increase of the mass fraction, and the evaporation rate constant was the smallest at 0.4. The evaporation rate constants based on the numerical simulation by using the multiphase flow model and Lee model showed reasonable agreement with the experimental ones, suggesting a potential of application in practical engineering. MDPI 2023-03-05 /pmc/articles/PMC10004747/ /pubmed/36903632 http://dx.doi.org/10.3390/molecules28052391 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Zhang, Zhenzhong
Huang, Xuefeng
Xu, Jiangrong
Experiments and Numerical Simulation of N-decane/Ethanol Bi-Component Droplet Evaporation
title Experiments and Numerical Simulation of N-decane/Ethanol Bi-Component Droplet Evaporation
title_full Experiments and Numerical Simulation of N-decane/Ethanol Bi-Component Droplet Evaporation
title_fullStr Experiments and Numerical Simulation of N-decane/Ethanol Bi-Component Droplet Evaporation
title_full_unstemmed Experiments and Numerical Simulation of N-decane/Ethanol Bi-Component Droplet Evaporation
title_short Experiments and Numerical Simulation of N-decane/Ethanol Bi-Component Droplet Evaporation
title_sort experiments and numerical simulation of n-decane/ethanol bi-component droplet evaporation
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10004747/
https://www.ncbi.nlm.nih.gov/pubmed/36903632
http://dx.doi.org/10.3390/molecules28052391
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