Performance simulation and optimization of new radiant floor heating based on micro heat pipe array

被引:0
作者
Heran Jing
Zhenhua Quan
Ruixue Dong
Limin Hao
Yunhan Liu
Yaohua Zhao
机构
[1] Beijing University of Technology,Beijing Key Laboratory of Green Built Environment and Energy Efficient Technology
来源
Building Simulation | 2022年 / 15卷
关键词
radiant floor heating; micro heat pipe array; numerical simulation; heat transfer;
D O I
暂无
中图分类号
学科分类号
摘要
This paper proposes two new radiant floor heating structures based on micro heat pipe array (MHPA), namely cement-tile floor and keel-wood floor. The numerical models for these different floor structures are established and verified by experiments. The temperature distribution and heat transfer process of each part are comprehensively obtained, and the structure is optimized. The results show that the cement-tile floor has the better heat transfer performance of the two. When under the same inlet water temperature and flow rate, the keel-wood floor’s surface temperature distribution is about 2 °C lower than that of the cement-tile floor. The inlet water temperature of cement-tile floor is about 10 °C lower than that of keel-wood structure when the floor surface temperature is the same. During a longitudinal heat transfer above MHPA, the floor surface temperature decreases by 0.5 °C for every 10 mm filling layer increase. In order to reduce the non-uniformity of the floor’s surface temperature and improve the thermal comfort of the heated room, the optimal structure for a floor is given, with the maximum surface temperature difference reduced by 3.35 °C. We used research focusing on new radiant floor heating, with advantages including high efficiency heat transfer, low water supply temperature, simple waterway structure, low resistance and leakage risk, to provide theory and data to support the application of an effective radiant floor heating based on MHPA.
引用
收藏
页码:1295 / 1308
页数:13
相关论文
共 64 条
  • [1] Dong RX(2018)Experimental study on the performance of radiant floor heating system based on micro heat pipe arrays Building Science 2018 32-36
  • [2] Quan ZH(2010)Transient simulation of a storage floor with a heating/cooling parallel pipe system Building Simulation 3 105-115
  • [3] Zhao YH(2019)A model predictive control strategy to optimize the performance of radiant floor heating and cooling systems in office buildings Applied Energy 245 65-77
  • [4] Flores Larsen S(2013)A numerical investigation of fluid flow and heat transfer inside a room for floor heating and wall heating systems Energy and Buildings 67 471-478
  • [5] Filippín C(2003)Development of the under-floor heating system using oscillating capillary tube heat pipe Journal of the Japan Association for Heat Pipes 21 49-65
  • [6] Lesino G(2014)Development of high performance bubble jet loop heat pipe for hot water floor heating system Journal of the Korea Society for Power System Engineering 18 23-28
  • [7] Joe J(2021)Study on thermal performance of a PCM enhanced hydronic radiant floor heating system Energy 225 120245-216
  • [8] Karava P(2014)Analytical solution for heat transfer in a multilayer floor of a radiant floor system Building Simulation 7 207-726
  • [9] Karabay H(2021)Inclined U-shaped flat microheat pipe array configuration for cooling and heating lithium-ion battery modules in electric vehicles Energy 235 121433-452
  • [10] Arıcı M(2016)Experimental study of a multi-energy complementary heating system based on a solar-groundwater heat pump unit Applied Thermal Engineering 109 718-574