Numerical investigation of the effects of heterogeneous air gaps during high heat exposure for application in firefighter clothing

被引:13
|
作者
Deng, Meng [1 ]
Psikuta, Agnes [2 ]
Wang, Yunyi [1 ,3 ]
Annaheim, Simon [2 ]
Rossi, Rene M. [2 ]
机构
[1] Donghua Univ, Coll Fash & Design, Shanghai 200051, Peoples R China
[2] Empa, Swiss Fed Labs Mat Sci & Technol, Lab Biomimet Membranes & Text, CH-9014 St Gallen, Switzerland
[3] Donghua Univ, Key Lab Clothing Design & Technol, Minist Educ, Shanghai 200051, Peoples R China
关键词
Thermal protective clothing; Heterogeneous air gap; Heat transfer; Natural convection; Radiation; GARMENT DESIGN; CONTACT AREA; BODY; THICKNESS; MICROCLIMATES; SIMULATION; SYSTEM; FIT;
D O I
10.1016/j.ijheatmasstransfer.2021.121813
中图分类号
O414.1 [热力学];
学科分类号
摘要
For accurate prediction of thermal protective performance of firefighter clothing, a realistic assumption about the heterogeneous distribution of air gaps underneath the clothing is necessary. In this study, a numerical model of heat transfer through realistic heterogeneous air gaps under flash fire exposure was developed. First, the models of heat transfer and fluid motion were validated with data from scientific literature. The verified model was further developed and then used in a subsequent parametric study to quantify effects of heterogeneous air gap distributions. The results revealed that the difference in terms of heat transfer and skin burn injuries between heterogeneous air gaps with contact folds and equivalent homogeneous air gaps was greater than that between heterogeneous air gaps with non-contact folds and equivalent homogeneous air gaps. Fold aspect ratios showed a more prominent impact on heat transfer and skin burn times in the case of contact folds compared to non-contact folds. Exposure times to skin burn were continuously prolonged with increasing air gap thickness from 6.4 to 19.1 mm for homogeneous air gaps and heterogeneous air gaps with non-contact folds, while for heterogeneous air gaps with contact folds, there was an optimum air gap thickness around 12.7-15.9 mm. (c) 2021 The Authors. Published by Elsevier Ltd. This is an open access article under the CC BY license ( http://creativecommons.org/licenses/by/4.0/ )
引用
收藏
页数:12
相关论文
共 50 条
  • [21] NUMERICAL INVESTIGATION FOR AIR CAVITY FORMATION DURING THE HIGH SPEED WATER ENTRY OF WEDGES
    Wang, Jingbo
    Faltinsen, Odd M.
    PROCEEDINGS OF THE ASME 29TH INTERNATIONAL CONFERENCE ON OCEAN, OFFSHORE AND ARCTIC ENGINEERING, 2010, VOL 4, 2010, : 135 - 145
  • [22] Numerical investigation on the startup performance of high-temperature heat pipes for heat pipe cooled reactor application
    Yu-Chuan Guo
    Zi-Lin Su
    Ze-Guang Li
    Kan Wang
    Nuclear Science and Techniques, 2021, 32
  • [23] Numerical investigation on the startup performance of high-temperature heat pipes for heat pipe cooled reactor application
    Guo, Yu-Chuan
    Su, Zi-Lin
    Li, Ze-Guang
    Wang, Kan
    NUCLEAR SCIENCE AND TECHNIQUES, 2021, 32 (10)
  • [24] Numerical investigation on the startup performance of high-temperature heat pipes for heat pipe cooled reactor application
    Yu-Chuan Guo
    Zi-Lin Su
    Ze-Guang Li
    Kan Wang
    NuclearScienceandTechniques, 2021, 32 (10) : 16 - 28
  • [25] Numerical simulation of heat and moisture transfer in protective clothing under high pressure steam exposure: Effect of fabric properties and steam conditions
    Lu, Xinyi
    Meng, Jing
    Chen, Guilin
    Lu, Yehu
    INTERNATIONAL JOURNAL OF THERMAL SCIENCES, 2023, 194
  • [26] Experimental investigation and industrial application of a cascade air-source high temperature heat pump
    Wu, Di
    Jiang, Jiatong
    Hu, Bin
    Wang, R. Z.
    Sun, Yan
    RENEWABLE ENERGY, 2024, 232
  • [27] Numerical investigation of suction and blowing effects on fluid flow and heat transfer characteristics of solar air heater
    Nishidh N.B.
    Deepakkumar R.
    Materials Today: Proceedings, 2023, 72 : 2846 - 2853
  • [28] Experimental and Numerical Investigation of Heat Exchange between Underexpanded High-Enthalpy Air Jets and Cylindrical Models
    A. N. Gordeev
    A. F. Kolesnikov
    V. I. Sakharov
    Fluid Dynamics, 2018, 53 : 702 - 710
  • [29] Experimental Investigation and Numerical Simulation for High Temperature Air Source Heat Pump with New Mixed-Refrigerant
    Yang, Jun
    Ding, Guozhong
    Zhang, Xiaoyan
    Shu Shuiming
    Tan, Junyi
    ENGINEERING AND MANUFACTURING TECHNOLOGIES, 2014, 541-542 : 752 - +
  • [30] Experimental and Numerical Investigation of Heat Exchange between Underexpanded High-Enthalpy Air Jets and Cylindrical Models
    Gordeev, A. N.
    Kolesnikov, A. F.
    Sakharov, V. I.
    FLUID DYNAMICS, 2018, 53 (05) : 702 - 710