A Novel Model for Calculating Human-Body Angle Factor in Radiant Heat Transfer: Balancing Computation Accuracy and Speed

被引:4
作者
Chen, Yuyan [1 ]
He, Yingdong [1 ]
Li, Nianping [1 ]
机构
[1] Hunan Univ, Coll Civil Engn, Changsha 410081, Peoples R China
基金
中国国家自然科学基金;
关键词
radiation parameter; radiant heat transfer; angle factor; human body model; THERMAL COMFORT; ENERGY-CONSUMPTION; RADIATION; OPTIMIZATION; SYSTEM; ROOM; ENVIRONMENT; SURFACES; FIELD; COLD;
D O I
10.3390/buildings14020366
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
With the growing interest in radiant heating and cooling systems, driven by their improved efficiency and enhanced thermal comfort compared to air systems, there is an increasing need to develop a more accessible method for designers to understand the implications of radiation heat exchange between the human body and radiant panels. To address this, a novel angle factor calculation model, named the HNU Angle Factor Model, was developed, taking into account the spatial arrangement and geometric relationship between the human body and radiant panels. The angle factors obtained using the HNU Angle Factor Model exhibited good agreement with the results obtained with Fanger diagrams and the contour integral method, with average relative differences of 8.1% and 10.0% for 140 cases, respectively. Furthermore, placing a radiant panel on the floor while maintaining its fixed size can contribute to the creation of an even and efficient thermal environment for individuals in both seated and standing positions. By implementing the HNU Angle Factor Model in practical engineering applications, more effective utilization of radiant systems can be achieved, as it provides an evaluation of the heat transfer between the human body and radiant panels.
引用
收藏
页数:25
相关论文
共 47 条
[1]  
[Anonymous], 1998, ISO 7726 ERGONOMICS
[2]   Modeling the comfort effects of short-wave solar radiation indoors [J].
Arens, Edward ;
Hoyt, Tyler ;
Zhou, Xin ;
Huang, Li ;
Zhang, Hui ;
Schiavon, Stefano .
BUILDING AND ENVIRONMENT, 2015, 88 :3-9
[3]   Evaluation of thermal comfort using combined CFD and experimentation study in a test room equipped with a cooling ceiling [J].
Catalina, Tiberiu ;
Virgone, Joseph ;
Kuznik, Frederic .
BUILDING AND ENVIRONMENT, 2009, 44 (08) :1740-1750
[4]  
Chinese Government National, Physical Monitoring Bulletin
[5]   Energy saving potential in radiant cooling system by utilizing air-conditioning condensate: A strategy for green building rating [J].
Dhamodharan, Palanisamy ;
Ayalur, Bakthavatsalam Kannappan ;
Judefelix, J. ;
Prabakaran, Rajendran ;
Kim, Sung Chul .
APPLIED THERMAL ENGINEERING, 2024, 236
[6]   Ceramics and healthy heating and cooling systems: thermal ceramic panels in buildings. Conditions of comfort and energy demand versus convective systems [J].
Echarri Iribarren, V. ;
Galiano Garrigos, A. L. ;
Gonzalez Aviles, A. B. .
INFORMES DE LA CONSTRUCCION, 2016, 68 (544)
[7]  
Fanger P.O., 1970, ASHRAE Trans, V76, P338
[8]   Steady thermal comfort by radiant heat transfer: The impact of the heater position [J].
Ghaddar, Nesreen ;
Salam, Mohamad ;
Ghali, Kamel .
HEAT TRANSFER ENGINEERING, 2006, 27 (07) :29-40
[9]   Simulation and measurement of air temperatures and mean radiant temperatures in a radiantly heated indoor space [J].
Guo, Hongshan ;
Ferrara, Maria ;
Coleman, James ;
Loyola, Mauricio ;
Meggers, Forrest .
ENERGY, 2020, 193 :131-141
[10]   The impacts of the thermal radiation field on thermal comfort, energy consumption and control-A critical overview [J].
Halawa, Edward ;
van Hoof, Joost ;
Soebarto, Veronica .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2014, 37 :907-918