Literature DB >> 7758443

Transfer of radiative heat through clothing ensembles.

W A Lotens1, A M Pieters.   

Abstract

A mathematical model was designed to calculate the temperature and dry heat transfer in the various layers of a clothing ensemble, and the total heat loss of a human who is irradiated for a certain fraction of his or her area. The clothing ensemble that is irradiated by an external heat source is considered to be composed of underclothing, trapped air, and outer fabric. The model was experimentally tested with heat balance methods, using subjects, varying the activity, wind, and radiation characteristics of the outer garment of two-layer ensembles. In two experiments the subjects could only give off dry heat because they were wrapped in plastic foil. The model appeared to be correct within about 1 degree C (rms error) and 10 Wm-2 (rms error). In a third experiment, sweat evaporation was also taken into account, showing that the resulting physiological heat load of 10 to 30% of the intercepted additional radiation is compensated by additional sweating. The resulting heat strain was rather mild. It is concluded that the mathematical model is a valid tool for the investigation of heat transfer through two-layer ensembles in radiant environments.

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Year:  1995        PMID: 7758443     DOI: 10.1080/00140139508925178

Source DB:  PubMed          Journal:  Ergonomics        ISSN: 0014-0139            Impact factor:   2.778


  2 in total

1.  Assessment of radiant temperature in a closed incubator.

Authors:  Pauline Décima; Erwan Stéphan-Blanchard; Amandine Pelletier; Laurent Ghyselen; Stéphane Delanaud; Loïc Dégrugilliers; Frédéric Telliez; Véronique Bach; Jean-Pierre Libert
Journal:  Eur J Appl Physiol       Date:  2011-12-10       Impact factor: 3.078

2.  Heat and water vapour transfer of protective clothing systems in a cold environment, measured with a newly developed sweating thermal manikin.

Authors:  Takako Fukazawa; Gung Lee; Takeshi Matsuoka; Kiyotsugu Kano; Yutaka Tochihara
Journal:  Eur J Appl Physiol       Date:  2004-09       Impact factor: 3.078

  2 in total

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