Clothing air gaps in various postures in firefighters’ work

Author:

Psikuta AgnesORCID,Sherif Fawzy,Mert Emel,Mandal Sumit,Annaheim Simon

Abstract

AbstractBoth the physical properties of the fabric materials used in clothing and the effective design of the clothing, primarily in terms of the air gap thickness, restrict the transmission of the thermal energy from the heat source to the firefighter’s body. The air gap distribution over the body in real deployment conditions of firefighters will vary, and is likely to be different from the air gap distribution in standardised manikin tests in standing upright posture. In this study, we investigated differences in the distribution of air layers in firefighters' clothing in three postures reflecting realistic on-duty exposure conditions (crawling, hose-holding, and standing upright used in laboratory tests) using 3D body scanning technology. The body posture induced substantial changes in the air gap thickness on the upper body (chest and back) and lower body. These changes were reflected in both the thermal and evaporative resistance of the ensemble, and consequently, in their potential thermal performance in the field. Therefore, it is recommended to consider body postures during the evaluation of clothing protective performance. Secondly, the knowledge of local clothing properties in real-life exposure provides a true protection mapping and gives design inputs to improve the local protective properties of firefighters' clothing.

Funder

Schweizerischer Nationalfonds zur Förderung der Wissenschaftlichen Forschung

Empa - Swiss Federal Laboratories for Materials Science and Technology

Publisher

Springer Science and Business Media LLC

Subject

Health, Toxicology and Mutagenesis,Atmospheric Science,Ecology

Reference31 articles.

1. ASTMF1291–16 (2016) Standard test method for measuring the thermal insulation of clothing using a heated manikin. ASTM International

2. ASTMF2370–16 (2016) Standard test method for measuring the evaporative resistance of clothing using a sweating manikin. ASTM International

3. Behnke W, Geshury A, Barker R (1992) Thermo-Man and Thermo-Leg: large scale test methods for evaluating thermal protective performance. In: McBriarty J, Henry N (eds) Performance of protective clothing, vol ASTM STP 1133. ASTM USA, p 458

4. Crown E, Ackerman M, Dale D, Rigakis K (1993) Thermal protective performance and instrumented mannequin evaluation of multi-layer garment systems. Paper presented at the Proceedings of Aerospace Medical Panel Symposium: The Support of Air Operations under Extreme Hot and Cold Conditions, pp. 14.1 - 14.8, Nealy Sur Seine, France

5. Crown E, Ackerman M, Dale D, Tan Y (1998) Design and evaluation of thermal protective flight suits Part 2: instrumented mannequin evaluation. Cloth Text Res 16(2):79–87

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