Impact of Solar Mounting Systems on the Thermal Design of Commercial Roofs

被引:0
作者
Molleti, Sudhakar [1 ]
Carrigan, Logan [1 ]
Van Reenen, David [1 ]
机构
[1] CNR, 1200 Montreal Rd, Ottawa, ON K1A 0R6, Canada
关键词
WIND LOADS; RESISTANCE;
D O I
10.1061/JAEIED.AEENG-1410
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
Commercial rooftops provide extensive areas representing the desired platform for installing photovoltaic (PV) systems. The combination of roofing assembly and PV system is called photovoltaic roofing assembly (PVRA). Currently, there is a shortage of information about building codes on PV system and roofing assembly integration. The National Research Council of Canada (NRC) developed an industry consortium project to generate codifiable research data on the wind and thermal performances of photovoltaic roofing assemblies. This paper examines the thermal bridging of the PV mounting attachments and its impact on the overall thermal resistance of the roofing assembly. Seven different types of PV mounting fixed attachments were tested in this study. Thermal bridging evaluation of PV mounts was done on the component level as individual mounts were installed through a section of a roofing assembly. The roofing assemblies were designed for a prescriptive thermal resistance of RSI 5.46 m(2) K W-1 (R-31 h ft(2) degrees F BTU-1) as per current standard and requirements for Climate zones 4-6. The thermal bridging experiments were conducted on a 1.2 m by 1.2 m guarded hot box at a mean temperature of 24 degrees C. The measured data indicated a decrease in the effective thermal resistance of the PVRA, ranging from 3.3% to 50.0%, compared to the opaque roofing assembly devoid of any thermal bridging. Furthermore, it was found that among fastener-designed PV mounting attachments, the greater the number of fasteners, the more significant the decrease in effective thermal resistance. From the experimental data, chi factors (chi) were developed to support the calculation of point thermal bridging effects on the thermal performance of low-sloped roofing assemblies. Toward codification, efforts are underway to potentially implement these chi factors in the energy codes that could enhance the thermal design of both retrofit and new roof constructions installed with photovoltaic systems. Crown Copyright (c) 2022 Published by American Society of Civil Engineers.
引用
收藏
页数:9
相关论文
共 25 条
[1]  
[Anonymous], 2021, ASTM C518 17
[2]  
ASHRAE (The American Society of Heating Refrigerating and Air-Conditioning Engineers), 2019, ANSIIASHRAEIES 901 2
[3]  
ASTM, 2019, STANDARD TEST METHOD
[4]   The role of corner vortices in dictating peak wind loads on tilted flat solar panels mounted on large, flat roofs [J].
Banks, David .
JOURNAL OF WIND ENGINEERING AND INDUSTRIAL AERODYNAMICS, 2013, 123 :192-201
[5]  
Birol F., 2010, World Energy Outlook 2010
[6]  
Burch D., 1987, HEAT TRANSFER ANAL M
[7]  
Fishburn D., 2016, SOLAR PANELS COULD R
[8]  
ICC (International Code Council), 2018, INT ENERGY CONSERVAT
[9]  
ISO (International Organization for Standardization), 2017, 69462017 ISO
[10]  
ISO (International Organization for Standardization), 2017, 146832017 ISO