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Heat transfer modeling within the microclimate between 3D human body and clothing: effects of ventilation openings and fire intensity

Miao Tian (College of Fashion and Design, Donghua University, Shanghai, China) (Key Laboratory of Clothing Design and Technology, Donghua University, Ministry of Education, Shanghai, China)
Jun Li (College of Fashion and Design, Donghua University, Shanghai, China) (Key Laboratory of Clothing Design and Technology, Donghua University, Ministry of Education, Shanghai, China)

International Journal of Clothing Science and Technology

ISSN: 0955-6222

Article publication date: 30 November 2020

Issue publication date: 1 July 2021

301

Abstract

Purpose

The purpose of this study is to determine the effect of ventilation openings and fire intensity on heat transfer and fluid flow within the microclimate between 3D human body and clothing.

Design/methodology/approach

On account of interaction effects of fire and ventilation openings on heat transfer process, a 3D transient computational fluid dynamics model considering the real shape of human body and clothing was developed. The model was validated by comparing heat flux history and distribution with experimental results. Heat transfer modes and fluid flow were investigated under three levels of fire intensity for the microclimate with ventilation openings and closures.

Findings

Temperature distribution on skin surface with open microclimate was heavily depended on the heat transfer through ventilation openings. Higher temperature for the clothing with confined microclimate was affected by the position and direction of flames injection. The presence of openings contributed to the greater velocity at forearms, shanks and around neck, which enhanced the convective heat transfer within microclimate. Thermal radiation was the dominant heat transfer mode within the microclimate for garment with closures. On the contrary, convective heat transfer within microclimate for clothing with openings cannot be neglected.

Practical implications

The findings provided fundamental supports for the ease and pattern design of the improved thermal protective systems, so as to realize the optimal thermal insulation of the microclimate on the garment level in the future.

Originality/value

The outcomes broaden the insights of results obtained from the mesoscale models. Different high skin temperature distribution and heat transfer modes caused by thermal environment and clothing structure provide basis for advanced thermal protective clothing design.

Keywords

Acknowledgements

The authors would like to acknowledge the financial support from the National Nature Science Foundation (Grant No. 51576038), Chenguang Program supported by Shanghai Education Development Foundation and Shanghai Municipal Education Commission (Grant No. 18CG76), the Fundamental Research Funds for the Central Universities (Grant No. 2232020G-08) and Shanghai Summit Discipline in Design (Grant No. DA19202).

Citation

Tian, M. and Li, J. (2021), "Heat transfer modeling within the microclimate between 3D human body and clothing: effects of ventilation openings and fire intensity", International Journal of Clothing Science and Technology, Vol. 33 No. 4, pp. 542-561. https://doi.org/10.1108/IJCST-12-2019-0191

Publisher

:

Emerald Publishing Limited

Copyright © 2020, Emerald Publishing Limited

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