矩形和l型低层建筑臀顶光伏板风荷载研究

IF 1.3 4区 工程技术 Q3 CONSTRUCTION & BUILDING TECHNOLOGY Wind and Structures Pub Date : 2022-05-12 DOI:10.3390/wind2020016
Y. Uematsu, Tetsuo Yambe, Atsushi Yamamoto
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引用次数: 4

摘要

日本的许多住宅都有倾角在20°到30°之间的臀部屋顶。近年来,由于环境保护的需要,屋顶光伏板在世界范围内得到了广泛的应用。日本光伏系统的设计通常基于日本工业标准(JIS) C 8955(2017)。然而,该标准没有提供安装在屋顶边缘附近(距离边缘0.3 m以内)的光伏板的风力系数,因为屋顶边缘的气流分离会对此类板产生较大的上升力。本文研究了矩形和l型低层建筑后屋面光伏板的风力系数。屋顶坡度设置为25°作为典型值。矩形面板几乎安装在整个屋顶上,包括边缘区域。由于光伏板的厚度和光伏板与屋顶的距离都只有几厘米,因此很难制作出与建筑物相同几何尺度的光伏系统风洞模型。利用非定常伯努利方程进行数值模拟,估算光伏板与屋顶之间的空间压力。在模拟中,我们使用了在湍流边界层中测量的裸顶风压系数时程。我们建议安装光伏板,在它们的短边之间有小的间隙。由于压力均衡,间隙不仅可以减少光伏板上的风荷载,还可以减少屋顶上的风荷载。从减小风荷载的角度讨论了最优空隙宽度。
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Wind Loading of Photovoltaic Panels Installed on Hip Roofs of Rectangular and L-Shaped Low-Rise Buildings
Many residential houses in Japan have hip roofs with pitches ranging from 20° to 30°. Recently, roof-mounted photovoltaic (PV) panels have become popular all over the world for environmental conservation. The design of PV systems in Japan is usually based on the Japanese Industrial Standard (JIS) C 8955 (2017). However, the standard does not provide wind force coefficients for PV panels installed near roof edges (up to 0.3 m from the edge) because flow separation at the roof edges causes large up-lift forces on such panels. In this paper, we investigated the wind force coefficients for designing PV panels installed on hip roofs of rectangular and L-shaped low-rise buildings. The roof pitch was set to 25° as a typical value. Rectangular panels were installed almost over the whole roof, including the edge zones. Because the thickness of PV panels and the distance between PV panels and the roof are both as small as several centimeters, it is difficult to make wind tunnel models of PV systems with the same geometric scale as that for buildings. We focused on a numerical simulation using the unsteady Bernoulli equation to estimate the pressures in the space between PV panels and the roof. In the simulation, we used the time histories of wind pressure coefficients on the bare roof, which were measured in a turbulent boundary layer. We propose installing PV panels with small gaps between them along their short sides. The gaps may reduce the wind loads not only on the PV panels but also on the roofing due to pressure equalization. We discuss the optimum gap width from the viewpoint of wind load reduction.
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来源期刊
Wind and Structures
Wind and Structures 工程技术-工程:土木
CiteScore
2.70
自引率
18.80%
发文量
0
审稿时长
>12 weeks
期刊介绍: The WIND AND STRUCTURES, An International Journal, aims at: - Major publication channel for research in the general area of wind and structural engineering, - Wider distribution at more affordable subscription rates; - Faster reviewing and publication for manuscripts submitted. The main theme of the Journal is the wind effects on structures. Areas covered by the journal include: Wind loads and structural response, Bluff-body aerodynamics, Computational method, Wind tunnel modeling, Local wind environment, Codes and regulations, Wind effects on large scale structures.
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