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作者:

Yu, Nan (Yu, Nan.) | Chen, Chao (Chen, Chao.) (学者:陈超) | Lin, Jie (Lin, Jie.) | Han, Fengtao (Han, Fengtao.) | Zou, Ping (Zou, Ping.) | He, Yipeng (He, Yipeng.) | Hu, Qingling (Hu, Qingling.)

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摘要:

Prefabricated concrete (PC) components need to be maintained after pouring to guarantee that concrete can harden well in a certain period. Currently, steam maintaining is one of the commonly adopted methods for this purpose. However, it is a bit costly and consumes a large amount of fossil energy. Based on the characteristics of maintaining process of PC components and the thermal characteristics of GH series phase change materials (PCMs) developed by our team, this paper presents an integrated design principle of passive solar energy and phase change heat experiments. Further, the selecting principle of PCMs on the inner surface of the main sun-facing wall of curing buildings wasput forward. The application results of Hebei province, China showed that, the 50mm-thick GH-37 PCM (temperature range of phase transformation: 37.4-43.5 and phase change enthalpy: 227.5kJ/kg) was suitable for the main sun-facing wall. Compared with GH-33 PCM, GH-37 PCM allowed the inner surface temperature of the main sun-facing wall to increase by 3.4 on average at night, the upper surface temperature of PC components to increase by 1.4, and the heat storage and release rate of PCM wall to increase by 62%. This research suggests a new method for renewable energy utilization and low-carbon based environmental protection in PC component curing process. © 2021, Chemical Industry Press Co., Ltd. All right reserved.

关键词:

Atmospheric temperature Curing Energy utilization Facings Heat storage Passive solar buildings Phase change materials Precast concrete Solar energy Surface properties Walls (structural partitions)

作者机构:

  • [ 1 ] [Yu, Nan]Key Laboratory of Green Built Environment and Energy Efficient Technology, Beijing University of Technology, Beijing; 100124, China
  • [ 2 ] [Yu, Nan]College of Architectural Engineering, North China Institute of Science and Technology, Langfang; 065201, China
  • [ 3 ] [Chen, Chao]Key Laboratory of Green Built Environment and Energy Efficient Technology, Beijing University of Technology, Beijing; 100124, China
  • [ 4 ] [Lin, Jie]Key Laboratory of Green Built Environment and Energy Efficient Technology, Beijing University of Technology, Beijing; 100124, China
  • [ 5 ] [Han, Fengtao]Key Laboratory of Green Built Environment and Energy Efficient Technology, Beijing University of Technology, Beijing; 100124, China
  • [ 6 ] [Zou, Ping]Institude of Agricultural Mechanization, Xinjiang Academy of Agricultural Sciences, Urumqi; 830091, China
  • [ 7 ] [He, Yipeng]Key Laboratory of Green Built Environment and Energy Efficient Technology, Beijing University of Technology, Beijing; 100124, China
  • [ 8 ] [Hu, Qingling]Key Laboratory of Green Built Environment and Energy Efficient Technology, Beijing University of Technology, Beijing; 100124, China

通讯作者信息:

  • 陈超

    [chen, chao]key laboratory of green built environment and energy efficient technology, beijing university of technology, beijing; 100124, china

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来源 :

Chemical Industry and Engineering Progress

ISSN: 1000-6613

年份: 2021

期: 1

卷: 40

页码: 297-304

被引次数:

WoS核心集被引频次: 0

SCOPUS被引频次: 4

ESI高被引论文在榜: 0 展开所有

万方被引频次:

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