Study on Thermal Characteristics of a Novel Glass Curtain Wall System

  • FENG Chaoqing ,
  • CHEN Xin’ge ,
  • WANG Rui ,
  • XU Zhao ,
  • ZHANG Lizhuang ,
  • YAN Suying
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  • 1. College of Energy and Power Engineering, Inner Mongolia University of Technology, Hohhot 010051, China
    2. China National Institute of Standardization, Beijing 100191, China

网络出版日期: 2023-12-04

基金资助

This research was supported by the National Natural Science Foundation of China (51766013, 51766012), the Inner Mongolia Natural Science Foundation of China (2020LH05014, 2019MS05025), the Inner Mongolia Science and Technology Major Project in 2019.

版权

Science Press, Institute of Engineering Thermophysics, CAS and Springer-Verlag GmbH Germany, part of Springer Nature 2022

Study on Thermal Characteristics of a Novel Glass Curtain Wall System

  • FENG Chaoqing ,
  • CHEN Xin’ge ,
  • WANG Rui ,
  • XU Zhao ,
  • ZHANG Lizhuang ,
  • YAN Suying
Expand
  • 1. College of Energy and Power Engineering, Inner Mongolia University of Technology, Hohhot 010051, China
    2. China National Institute of Standardization, Beijing 100191, China

Online published: 2023-12-04

Supported by

This research was supported by the National Natural Science Foundation of China (51766013, 51766012), the Inner Mongolia Natural Science Foundation of China (2020LH05014, 2019MS05025), the Inner Mongolia Science and Technology Major Project in 2019.

Copyright

Science Press, Institute of Engineering Thermophysics, CAS and Springer-Verlag GmbH Germany, part of Springer Nature 2022

摘要

为了解决建筑集成光伏/热系统(BIPV/T)中室内照明与光伏电池发电二者争光的矛盾,提出了一种基于微小透射聚光器的玻璃幕墙系统。这种玻璃幕墙的空气进水温度、室内外温度、辐射强度等运行参数对玻璃幕墙的换热特性有显著影响。采用SoildWorks软件建立三维模型,通过计算流体动力学(CFD)方法对新型玻璃幕墙系统的热特性进行数值计算,并且在冬季工作条件下开展了实际天气下的热特性实验验证。结果表明,该新型玻璃幕墙系统的热效率模拟结果与实验结果吻合较好。采用正交法设计模拟条件,对室内墙体表面获得热量的影响因素进行了显著性分析。随着底部热流密度和空气流速的增加,内壁表面吸热增大。当风速为0.1 m/s时,底面热流由500 W/m2上升到2500 W/m2,内墙热流强度由10.31 W/m2上升到-29.12 W/m2。在典型工况下,新型玻璃幕墙系统比普通玻璃幕墙可降低室内热负荷47.5%。

本文引用格式

FENG Chaoqing , CHEN Xin’ge , WANG Rui , XU Zhao , ZHANG Lizhuang , YAN Suying . Study on Thermal Characteristics of a Novel Glass Curtain Wall System[J]. 热科学学报, 2022 , 31(6) : 1959 -1969 . DOI: 10.1007/s11630-022-1653-2

Abstract

In order to solve the conflict between indoor lighting and PV cells in building-integrated photovoltaic/thermal (BIPV/T) systems, a glass curtain wall system based on a tiny transmissive concentrator is proposed. This glass curtain wall has a direct influence on the heat transfer between indoor and outdoor, and the operating parameters of air and water inlet temperature, indoor and outdoor temperature, and radiation intensity have a significant influence on the heat transfer characteristics of the glass curtain wall. The 3D model is established by SoildWorks software, and the thermal characteristics of the new glass curtain wall system are simulated through computational fluid dynamics (CFD) method. Thermal performance was tested under actual weather for the winter working conditions. The CFD simulation results are verified by the test results under actual weather. The results show that thermal efficiency simulation results are in good agreement with the experimental results of the new glass curtain wall system. The simulation conditions were designed by using the orthogonal method, and the significance analysis of the influencing factors of the indoor wall surface heat gain was carried out. With the increase of the bottom heat flux and the air velocity, the heat absorption of the inner wall surface increases. When the wind speed is 0.1 m/s, the heat flow on the bottom surface rises from 500 W/m2 to 2500 W/m2, and the heat flow intensity on the interior wall changes from 10.31 W/m2 to –29.12 W/m2. Under typical working conditions, the new glass curtain wall system can reduce the indoor heat load by 47.5% than ordinary glass curtain wall.

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