On the understanding of the mean radiant temperature within both the indoor and outdoor environment, a critical review

被引:127
作者
Guo, Hongshan [1 ,2 ]
Aviv, Dorit [1 ]
Loyola, Mauricio [1 ]
Teitelbaum, Eric [1 ]
Houchois, Nicholas [2 ]
Meggers, Forrest [1 ,2 ]
机构
[1] Princeton Univ, Sch Architecture, Princeton, NJ 08544 USA
[2] Princeton Univ, Andlinger Ctr Energy & Environm, Princeton, NJ 08544 USA
基金
美国国家科学基金会;
关键词
mean radiant temperature; Thermal comfort; Globe thermometer; Net radiometer; Human biometeorology; PROJECTED AREA FACTORS; THERMAL COMFORT; AIR-TEMPERATURE; SOLAR-RADIATION; GLOBE THERMOMETERS; URBAN PARK; MODEL; SYSTEM; FIELD; BODY;
D O I
10.1016/j.rser.2019.06.014
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Mean radiant temperature is central to our understanding of the radiant heat exchange between the human body and surrounding environment. This paper will present a review of the concept's evolution including its qualitative definition, methods of quantitative evaluation and corresponding challenges. In the process, this review suggests that more effort needs to be invested in addressing the geometric complexities of radiant heat transfer in research into MRT; the ASHRAE definition is broad and is liable to simplification, and research which uses the definition relies on a variety of simplifications, often without acknowledging the degree of geometric complexity which exists in reality. Existing means of obtaining an estimate of mean radiant temperature range from direct measurements using globe thermometers or net radiometers, to computational simulations, and are widely used for studies within indoor and outdoor environments. Previous literature studying the correlation between air temperature and MRT has found equivalence ratios, the relative importance of convection to radiation, ranging from 0.71 to 1.4, however, it is often assumed to be 1.0 in current research practices. We also identified a rapid increase in the usage of MRT in biometeorological studies during the last ten years on top of the increased usage in indoor environment sensing and modeling in light of recent developments in heating and cooling systems. Recent efforts to include the short-wave component in indoor MRT characterization have shown an increase in cooling capacity of radiant floors from 32 to 110 W/m(2); significantly decreasing peak energy demand.
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页数:15
相关论文
共 152 条
[41]   The adaptive model of thermal comfort and energy conservation in the built environment [J].
de Dear, R ;
Brager, GS .
INTERNATIONAL JOURNAL OF BIOMETEOROLOGY, 2001, 45 (02) :100-108
[42]  
DeGreef J.M., 1998, ASHRAE Trans., V104, P1090
[43]   Mapping of the Indoor Conditions by Infrared Thermography [J].
Dizeu, Frank Billy Djupkep ;
Maldague, Xavier ;
Bendada, Abdelhakim .
JOURNAL OF IMAGING, 2016, 2 (02)
[44]   Analysis of a new method of measurement and visualization of indoor conditions by infrared thermography [J].
Djupkep, F. B. D. ;
Maldague, X. ;
Bendada, A. ;
Bison, P. .
REVIEW OF SCIENTIFIC INSTRUMENTS, 2013, 84 (08)
[45]   A numerical study on the effects of design/operating parameters of the radiant panel in a radiation-based task air conditioning system on indoor thermal comfort and energy saving for a sleeping environment [J].
Du, Jing ;
Chan, Mingyin ;
Pan, Dongmei ;
Deng, Shiming .
ENERGY AND BUILDINGS, 2017, 151 :250-262
[46]  
Dufton AF, 1930, PHILOS MAG, V9, P858
[47]  
Fanger P. O., ASHRAE T, V73
[48]  
Fanger PO., 1970, THERMAL COMFORT
[49]  
FAQ-U.S. Energy Information Administration (EIA), MUCH EN IS CONS US R
[50]   Mock target IR thermography for indoor air temperature measurement [J].
Fokaides, Paris A. ;
Jurelionis, Andrius ;
Gagyte, Laura ;
Kalogirou, Soteris A. .
APPLIED ENERGY, 2016, 164 :676-685