Abstract:By the active phase change material (PCM) wall, the peakload shifting for electric network can be realized with energy saving and emission reduction. An active PCM wall with low quality water for double conditions of building cooling and heating was constructed by encapsulating PCM in casing pipes. The effects of PCM physical properties of phase change temperature, latent heat, thermal conductivity and arrangements of PCM layers on the surface temperature and heat flux of PCM wall were simulated. The results show that the peak phase change temperatures of PCMs are about 15.0 ℃ and 30.0 ℃ for building cooling and heating, respectively. The increasing of latent heat of PCM is beneficial to the reduction of surface temperature fluctuation and thickness of PCM wall, while the increasing of thermal conductivity of PCM can increase the surface heat flux of PCM wall. When PCMs are arranged with the interval layout of thermal storage PCM and cold storage PCM, the optimal comprehensive thermal performance of PCM wall for double conditions of building cooling and heating can be achieved.
胡自成, 杨晨, 郭兴龙, 葛凤华, 王松. 低质水套管式相变墙体的热性能模拟[J]. 江苏大学学报(自然科学版), 2023, 44(2): 242-248.
HU Zicheng, YANG Chen, GUO Xinglong, GE Fenghua, WANG Song. Simulation of thermal performance of low quality water casing phase change material wall[J]. Journal of Jiangsu University(Natural Science Eidtion)
, 2023, 44(2): 242-248.
China Building Energy Conservation Association. China building energy consumption annual report (2020)[J]. Journal of BEE, 2021,49(2):1-6. (in Chinese)
[2]
FARAJ K, KHALED M, FARAJ J, et al.A review on phase change materials for thermal energy storage in buildings: heating and hybrid applications[J]. Journal of Energy Storage, doi: 10.1016/j.est.2020.101913.
ZHANG Y, WU Z W, GE F H, et al.Thermal perfor-mance analysis of a double-layer phase change material wall in hot summer and cold winter area[J]. Journal of Jiangsu University(Natural Science Edition), 2019, 40(4):465-471.(in Chinese)
[4]
FARAJ K, KHALED M, FARAJ J, et al.Phase change material thermal energy storage systems for cooling applications in buildings: a review[J]. Renewable and Sustainable Energy Reviews,doi:10.1016/j.rser.2019.109579.
[5]
BLAND A, KHZOUZ M, STATHEROS T, et al.PCMs for residential building applications: a short review focused on disadvantages and proposals for future development[J]. Buildings, doi: 10.3390/buildings7030078.
[6]
RATHORE P K S, SHUKLA S K. Potential of macroencapsulated PCM for thermal energy storage in buildings: a comprehensive review[J]. Construction and Building Materials, 2019, 225: 723-744.
[7]
BARZIN R, CHEN J J J, YOUNG B R, et al. Application of PCM underfloor heating in combination with PCM wall boards for space heating using price based control system[J].Applied Energy,2015,148: 39-48.
[8]
ZHOU G B, HE J. Thermal performance of a radiant floor heating system with different heat storage materials and heating pipes[J]. Applied Energy,2015,138: 648-660.
[9]
LI H, LI J C, KONG X F, et al.A novel solar thermal system combining with active phase-change material heat storage wall (STS-APHSW): dynamic model, validation and thermal performance[J]. Energy, doi: 10.1016/j.energy.2020.117610.
[10]
KISHORE R A, BIANCHI M V A, BOOTEN C, et al.Enhancing building energy performance by effectively using phase change material and dynamic insulation in walls[J]. Applied Energy, doi: 10.1016/j.apenergy.2020.116306.
[11]
GOVINDASAMY D, PANWAR V. Effect of variation in thickness of phase change material on temperature across the composite building wall[J]. Materials Today: Proceedings,2021,45: 10221-10226.
[12]
SHEN D M, YU C R, WANG W F. Investigation on the thermal performance of the novel phase change materials wall with radioactive cooling[J]. Applied Thermal Engineering,
doi: 10.1016/j.applthermaleng.2020.115479.
[13]
FANG Y T, DING Y F, TANG Y F, et al.Thermal properties enhancement and application of a novel so-dium acetate trihydrate-formamide/expanded graphite shape-stabilized composite phase change material for electric radiant floor heating[J]. Applied Thermal Engineering, 2019,150: 1177-1185.