Experimental Study on Solar Energy Added Kang Heating System

Article Preview

Abstract:

In this paper, the author use solar energy with capillary network systems as the added heating measure of kang . The influence of the system on the surface temperature of Kang and the indoor temperature was researched by experiment. The tested data shows that the average temperature of the head、medium and tail of traditional Kang in a normal room are 65.7°C、43.28°C and 39.82°C. The difference of temperature on Kang surface is higher than 20°C. The average temperatures of the head、middle and tail of the Kang using this system are 51.34°C、38.26°C and 33.79°C. Comparing the two groups of data, we can get the conclusion that the distribution of temperature in the new system Kang is more balance than traditional Kang, which improves the surface comfort of Kang. The average indoor temperature with solar energy auxiliary Kang is 18.5 °C, which is 6.3°C higher than ordinary room. Due to the small thermal inertia of capillary network, the indoor temperature rises quickly when the system is running. It can make quality improvement of indoor thermal environment realtime at will, which greatly improves the thermal comfort of the Kang surface and indoor temperature.

You might also be interested in these eBooks

Info:

Periodical:

Pages:

41-47

Citation:

Online since:

February 2014

Export:

Price:

Permissions CCC:

Permissions PLS:

Сopyright:

© 2014 Trans Tech Publications Ltd. All Rights Reserved

Share:

Citation:

[1] Feng Jing. Jing Wang. Xu Zhang. Cold area solar heated Kang heating system[J]. Building technology at low temperature. 2006, (3): 113-114.

Google Scholar

[2] Xing Sheng. Guohui Feng. Effective phase change heat storage the fire wall in optimization design method of the combination of research[D]. Shenyang. Shenyang architecture university. (2011).

Google Scholar

[3] Qian Wang. Guohui Feng. Gang Li. Cold area solar heated Kang heating system design and performance study[D]. Shenyang. Shenyang architecture university. (2012).

Google Scholar

[4] Lingxiao Hu. Haiming Fu. Solar water heating system in the phase change heat storage simulation and design[D]. Shanghai. Donghua university. (2010).

Google Scholar

[5] Xiaopeng Tong. Introduction to capillary net radiation heating refrigeration system applications.

Google Scholar

[6] Yueqi Xin. High-rise residential kitchen exhaust flue system research [D]. Shanghai: Tongji University (2005). In Chinese.

Google Scholar

[7] Xixing Wang. High-rise residential kitchen concentrated exhaust flue gas system design method[J]. Shanxi building university. 2011. 37(15): 111-112.

Google Scholar

[8] Agricultural industry standard of the People's Republic of China: civilian fire resistance performance test methods. NY/T58-2009[S]. (2009).

Google Scholar