Evaluation of thermal protection performance of honeycomb sandwich structure fabric for fireproof clothing

被引:0
|
作者
Du F. [1 ]
Li X. [1 ,2 ,3 ]
Zhang S. [1 ]
机构
[1] College of Fashion and Design, Donghua University, Shanghai
[2] Institute of Design and Innovation, Tongji University, Shanghai
[3] Key Laboratory of Clothing Design and Technology, Ministry of Education, Donghua University, Shanghai
来源
关键词
Fireproof clothing; Honeycomb sandwich structure; Thermal protection performance; Thermal-wet comfort;
D O I
10.13475/j.fzxb.20180400506
中图分类号
学科分类号
摘要
In view of the heaviness and stuffiness of current fireproof clothing, a honeycomb sandwich structure with heat insulation, high temperature resistance, moisture absorption and ventilation was proposed to improve its performance of functional protection and heat and moisture comfort. By analyzing the inherent heat transfer mechanism of honeycomb sandwich structure, 7 different kinds of honeycomb sandwich structures were designed and fabricated. The current typical layers of fabrics were chosen as the experimental samples. Taking into account of the fabric weight and the sorts of honeycomb sandwich structure, 21 kinds of experimental schemes were designed. Thermal protection performance (TPP) tester was used to evaluate the thermal protection performance, and further the effect of side length, wall thickness and core thickness of honeycomb sandwich structure on thermal protection performance of fireproof clothing was investigated. Experimental results show that the honeycomb sandwich structure is light and can meet the requirements of thermal protection performance. The smaller the side length, the larger the wall thickness and the larger the core thickness, the larger the TPP value of the fabric and the better the thermal protection performance. Copyright No content may be reproduced or abridged without authorization.
引用
收藏
页码:133 / 138
页数:5
相关论文
共 15 条
  • [1] Cui L., Development status and trend of fire fighting and fire-fighting clothing at home and abroad, Tianjin Textile Science & Technology, 2, pp. 3-5, (2016)
  • [2] He H., Yu Z.C., Song G., The effect of moisture and air gap on the thermal protective performance of fabric assemblies used by wildland firefighters, Journal of The Textile Institute, 7, 8, pp. 1030-1036, (2016)
  • [3] Zhu F.L., Zhang W.Y., Evaluation of thermal performance of flame-resistant fabrics considering thermal wave influence in human skin model, Journal of Fire Sciences, 24, pp. 465-485, (2006)
  • [4] Qi Z., Zhang H., Huang D., Et al., Comprehensive evaluation of thermal and moisture comfortableness of fabric for firefighter protective clothing, Journal of Chinese Safety Science, 22, 4, pp. 132-138, (2012)
  • [5] McCarthy L.K., Marzo M.D., The application of phase change material in fire fighter protective clothing, Fire Technology, 48, pp. 841-864, (2012)
  • [6] Cui Z., Yuan X., Ma C., Evalution of the performance of firefighter protective clothing with the addition of phase change material, Technical Textiles, 7, pp. 10-13, (2014)
  • [7] Zhu F., Fan J., Feng Q., Et al., Application and feasibility analysis of phase change materials in fire-fighting suit, Journal of Textile Research, 35, 8, pp. 124-132, (2014)
  • [8] Li H., Zhang W., Flame retardancy and TPP value of fire-fighting wearable fabric, Journal of Textile Research, 29, 5, pp. 84-88, (2008)
  • [9] Qi Z., Huang D., He S., Et al., Thermal protective performance of aerogel embedded firefighter's protective clothing, Journal of Engineered Fibers & Fabrics, 8, 2, pp. 134-139, (2013)
  • [10] Zhang Z., Wang W., Zu G., Et al., Silica aerogel materials: preparation, properties, and applications in low-temperature thermal insulation, Journal of Aeronautical Materials, 35, 1, pp. 87-96, (2015)