Experimental study on occupant’s thermal responses under the non-uniform conditions in vehicle cabin during the heating period

被引:0
作者
Wencan Zhang
Jiqing Chen
Fengchong Lan
机构
[1] South China University of Technology,School of Mechanical & Automotive Engineering
[2] Foshan University,School of Mechanical & Electrical Engineering
[3] South China University of Technology,Key Laboratory of Guangdong Province of Automotive Engineering
来源
Chinese Journal of Mechanical Engineering | 2014年 / 27卷
关键词
vehicle cabin; thermal environment; thermal comfort; skin temperature; non-uniform;
D O I
暂无
中图分类号
学科分类号
摘要
The existing investigations on thermal comfort mostly focus on the thermal environment conditions, especially of the air-flow field and the temperature distributions in vehicle cabin. Less attention appears to direct to the thermal comfort or thermal sensation of occupants, even to the relationship between thermal conditions and thermal sensation. In this paper, a series of experiments were designed and conducted for understanding the non-uniform conditions and the occupant’s thermal responses in vehicle cabin during the heating period. To accurately assess the transient temperature distribution in cabin in common daily condition, the air temperature at a number of positions is measured in a full size vehicle cabin under natural winter environment in South China by using a discrete thermocouples network. The occupant body is divided into nine segments, the skin temperature at each segment and the occupant’s local thermal sensation at the head, body, upper limb and lower limb are monitored continuously. The skin temperature is observed by using a discrete thermocouples network, and the local thermal sensation is evaluated by using a seven-point thermal comfort survey questionnaire proposed by American Society of Heating, Refrigerating and Air-Conditioning Engineers, Inc(ASHRAE) Standard. The relationship between the skin temperature and the thermal sensation is discussed and regressed by statistics method. The results show that the interior air temperature is highly non-uniform over the vehicle cabin. The locations where the occupants sit have a significant effect on the occupant’s thermal responses, including the skin temperature and the thermal sensation. The skin temperature and thermal sensation are quite different between body segments due to the effect of non-uniform conditions, clothing resistance, and the human thermal regulating system. A quantitative relationship between the thermal sensation and the skin temperature at each body segment of occupant in real life traffic is presented. The investigation result indicates that the skin temperature is a robust index to evaluate the thermal sensation. Applying the skin temperature to designing and controlling parameters of the heating, ventilation and air conditioning(HVAC) system may benefit the thermal comfort and reducing energy consumption.
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页码:331 / 339
页数:8
相关论文
共 34 条
  • [1] Lee S J(1998)Temperature field measurement of heated ventilation flow in a vehicle interior[J] International Journal of Vehicle Design 19 228-243
  • [2] Yoon J H(2008)3-D numerical and experimental analysis for airflow with a passenger compartment[J] International Journal of Automotive Technology 9 437-445
  • [3] Chien C H(2010)Transient numerical analysis of airflow and heat transfer in a vehicle cabin during heating period[J] International Journal of Vehicle Design 52 144-159
  • [4] Jang J Y(2009)Studies of air-flow and temperature fields inside a passenger compartment for improving thermal comfort and saving energy. Part I: Test/numerical model and validation[J] Applied Thermal Engineering 29 2022-2027
  • [5] Chen Y H(2009)Studies of air-flow and temperature fields inside a passenger compartment for improving thermal comfort and saving energy. Part II: Simulation results and discussion[J] Applied Thermal Engineering 29 2028-2036
  • [6] Sevilgen G(2011)Research on windshield glazing property effect on vehicle cabin temperature under solar radiation[J] Journal of Mechanical Engineering 47 119-125
  • [7] Kilic M(2008)Forty years of Fanger’s model of thermal comfort: comfort for all?[J] Indoor Air 18 182-201
  • [8] Zhang H J(2004)Thermal comfort in transitional spaces-basic concepts: literature review and trial measurement[J] Building and Environment 39 1187-1192
  • [9] Dai L(1984)Influence of skin temperature distribution on thermal sensation in a cool environment[J] European Journal of Applied Physiology and Occupational Physiology 53 225-230
  • [10] Xu G Q(1993)Thermal sensations resulting from sudden ambient temperature changes[J] Indoor Air 3 181-192