Evaporative cooling: effective latent heat of evaporation in relation to evaporation distance from the skin

被引:97
作者
Havenith, George [1 ]
Broede, Peter [2 ]
den Hartog, Emiel
Kuklane, Kalev [3 ]
Holmer, Ingvar [3 ]
Rossi, Rene M. [4 ]
Richards, Mark [4 ]
Farnworth, Brian [5 ]
Wang, Xiaoxin [6 ]
机构
[1] Univ Loughborough, Loughborough Design Sch, Environm Ergon Res Ctr, Loughborough LE11 3TU, Leics, England
[2] Leibniz Res Ctr Working Environm & Human Factors, Dortmund, Germany
[3] Lund Univ, Lund, Sweden
[4] EMPA Mat Sci & Technol, St Gallen, Switzerland
[5] BF Scientific, Kelowna, BC, Canada
[6] Oxford Brookes Univ, Oxford OX3 0BP, England
关键词
sweat; latent heat of evaporation; protective clothing; wicking; indirect calorimetry; MOISTURE TRANSPORT; CONDENSATION; ABSORPTION; SWEAT; MEN;
D O I
10.1152/japplphysiol.01271.2012
中图分类号
Q4 [生理学];
学科分类号
071003 ;
摘要
Havenith G, Brode P, den Hartog E, Kuklane K, Holmer I, Rossi RM, Richards M, Farnworth B, Wang X. Evaporative cooling: effective latent heat of evaporation in relation to evaporation distance from the skin. J Appl Physiol 114: 778-785, 2013. First published January 17, 2013; doi: 10.1152/japplphysiol. 01271.2012.-Calculation of evaporative heat loss is essential to heat balance calculations. Despite recognition that the value for latent heat of evaporation, used in these calculations, may not always reflect the real cooling benefit to the body, only limited quantitative data on this is available, which has found little use in recent literature. In this experiment a thermal manikin, (MTNW, Seattle, WA) was used to determine the effective cooling power of moisture evaporation. The manikin measures both heat loss and mass loss independently, allowing a direct calculation of an effective latent heat of evaporation (lambda(eff)). The location of the evaporation was varied: from the skin or from the underwear or from the outerwear. Outerwear of different permeabilities was used, and different numbers of layers were used. Tests took place in 20 degrees C, 0.5 m/s at different humidities and were performed both dry and with a wet layer, allowing the breakdown of heat loss in dry and evaporative components. For evaporation from the skin, lambda(eff) is close to the theoretical value (2,430 J/g) but starts to drop when more clothing is worn, e.g., by 11% for underwear and permeable coverall. When evaporation is from the underwear, lambda(eff) reduction is 28% wearing a permeable outer. When evaporation is from the outermost layer only, the reduction exceeds 62% (no base layer), increasing toward 80% with more layers between skin and wet outerwear. In semi- and impermeable outerwear, the added effect of condensation in the clothing opposes this effect. A general formula for the calculation of lambda(eff) was developed.
引用
收藏
页码:778 / 785
页数:8
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