Dynamic thermal performance and energy-saving potential analysis of a modular pipe-embedded building envelope integrated with thermal diffusive materials

被引:6
作者
Yang, Yang [1 ,3 ]
Chen, Sarula [2 ,3 ]
机构
[1] Hefei Univ Technol, Coll Architecture & Art, Hefei 230601, Peoples R China
[2] Anhui Jianzhu Univ, Coll Architecture & Urban Planning, Hefei 230601, Peoples R China
[3] State Key Lab Green Bldg Western China, Xian 710055, Peoples R China
基金
中国国家自然科学基金; 安徽省自然科学基金;
关键词
building energy efficiency; pipe-embedded building envelope; thermal diffusive material; thermal characteristics; numerical simulation; HEAT-TRANSFER; WATER; VALIDATION; FACADE; WALL;
D O I
10.1007/s12273-023-1039-8
中图分类号
O414.1 [热力学];
学科分类号
摘要
In the context of racing to carbon neutrality, the pipe-embedded building system makes the opaque envelopes gradually regarded as the multi-functional element, which also provides an opportunity for thermal insulation solutions to transform from high to zero-carbon attributes. Based on the re-examination of the heat transfer process of conventional pipe-embedded radiant (CPR) walls, the modular pipe-embedded radiant (MPR) wall integrated with thermal diffusive materials is proposed to enhance the heat transfer capacity of CPR walls in the direction parallel to the wall surface, thereby forming a more stable and continuous invisible thermal barrier layer inside the opaque envelopes. A comprehensive thermal and energy-saving analysis study regarding the influence mechanism of several key factors of MPR walls, e.g., the inclination angle of the filler cavity (theta-value), geometry size of the filler cavity (a:b-value) and thermal conductivity of the filler (lambda f-value), is conducted based on a validated numerical model. Results show that the dynamic thermal behaviors of MPR walls can be significantly improved due to that the radial thermal resistance in the filler cavity of MPR walls can be reduced by 50%, while the maximum extra exterior surface heat loss caused by the optimization measures is only 2.1%. Besides, a better technical effect can be achieved by setting the major axis of the filler cavity towards the room side, where the interior surface heat load/total injected heat first decreases/increases and then increases/decreases with the increase of the theta-value. In particular, the MPR wall with theta L = 60 degrees can obtain the best performance when other conditions remain the same. Moreover, the performance indicators of MPR walls can be further improved with the increase of the cavity size (a:b-value), while showing a trend of rapid improvement in the lambda f-value range of 2-5 lambda C and slow improvement increase in the lambda f-value range of 5-12 lambda C. In addition, the improvement effect brought by optimizing the theta-value is more obvious as the a:b-value or lambda f-value increases.
引用
收藏
页码:2285 / 2305
页数:21
相关论文
共 24 条
  • [11] Incorporation of phase change materials into building envelope for thermal comfort and energy saving: A comprehensive analysis
    Al-Yasiri, Qudama
    Szabo, Marta
    JOURNAL OF BUILDING ENGINEERING, 2021, 36
  • [12] Thermal performance and energy saving using phase change materials (PCM) integrated in building walls
    Anter, Ayman G.
    Sultan, Ahmed A.
    Hegazi, A. A.
    El Bouz, M. A.
    JOURNAL OF ENERGY STORAGE, 2023, 67
  • [13] Quantitative evaluation of thermal performance and energy saving potential of the building integrated with PCM in a subarctic climate
    Kenzhekhanov, Sultan
    Memon, Shazim Ali
    Adilkhanova, Indira
    ENERGY, 2020, 192
  • [14] Study on the construction of the database of energy-saving building wall's thermal performance in Hangzhou
    Wu, Fang
    Zhu, Jiang
    2011 2ND INTERNATIONAL CONFERENCE ON ADVANCES IN ENERGY ENGINEERING (ICAEE), 2012, 14 : 943 - 948
  • [15] Comprehensive analysis of thermal performance and low-grade energy charging efficiency of pipe-embedded building envelopes enhanced with single-level tree-shaped fin structures
    Yang, Yang
    Chen, Sarula
    Li, Shuying
    Xiao, Xiuyi
    Chen, Tianhang
    RENEWABLE ENERGY, 2024, 237
  • [16] New method of equivalent energy consumption for evaluating thermal performance of energy-saving materials in passive buildings
    Xu, Bin
    Xie, Xing
    Pei, Gang
    APPLIED THERMAL ENGINEERING, 2023, 230
  • [17] Refined building thermal climate zoning scheme in regions with mountainous terrain for accurate building energy-saving potential estimation
    Zhang, Tianyu
    Li, Mingcai
    Wang, Yong
    Zhou, Jie
    Li, Yonghua
    Zhang, Fen
    Cao, Jingfu
    Chen, Xianyan
    He, Bao-Jie
    ENERGY AND BUILDINGS, 2024, 313
  • [18] Thermal performance of a double-layer pipe-embedded phase change wall system in wood structures coupled with solar energy
    Yang, Kun
    Liu, Mingxuan
    Yan, Ping
    Du, Na
    Chen, Yuzhu
    Cao, Lixiao
    Huo, Ziyu
    ENERGY, 2024, 313
  • [19] Field test on the thermal performance of double-layer pipe-embedded wall heating system with shallow geothermal energy and air source heat pump
    Zhao, Yaxin
    Wang, Huan
    Li, Xianting
    APPLIED ENERGY, 2025, 377
  • [20] Quasi-dynamic energy performance analysis of building integrated photovoltaic thermal double skin facade for middle eastern climate case
    Shakouri, Mahdi
    Ghadamian, Hossein
    Noorpoor, Alireza
    APPLIED THERMAL ENGINEERING, 2020, 179