Computational method in database-assisted design for wind engineering with varying performance objectives

IF 1.3 4区 工程技术 Q3 CONSTRUCTION & BUILDING TECHNOLOGY Wind and Structures Pub Date : 2021-05-01 DOI:10.12989/WAS.2021.32.5.439
A. Merhi, C. Letchford
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引用次数: 2

Abstract

The concept of Performance objective assessment is extended to wind engineering. This approach applies using the Database-Assisted Design technique, relying on the aerodynamic database provided by the National Institute of Standards and Technology (NIST). A structural model of a low-rise building is analyzed to obtain influence coefficients for internal forces and displacements. Combining these coefficients with time histories of pressure coefficients on the envelope produces time histories of load effects on the structure, for example knee and ridge bending moments, and eave lateral drift. The peak values of such effects are represented by an extreme-value Type I Distribution, which allows the estimation of the gust wind speed leading to the mean hourly extreme loading that cause specific performance objective compromises. Firstly a fully correlated wind field over large tributary areas is assumed and then relaxed to utilize the denser pressure tap data available but with considerably more computational effort. The performance objectives are determined in accordance with the limit state load combinations given in the ASCE 7-16 provisions, particularly the Load and Resistance Factor Design (LRFD) method. The procedure is then repeated for several wind directions and different dominant opening scenarios to determine the cases that produce performance objective criteria. Comparisons with two approaches in ASCE 7 are made.
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具有不同性能目标的风力工程数据库辅助设计的计算方法
性能目标评估的概念扩展到风电工程。该方法采用数据库辅助设计技术,依赖于美国国家标准与技术研究所(NIST)提供的空气动力学数据库。对一个低层建筑的结构模型进行了分析,得到了内力和位移的影响系数。将这些系数与包络上的压力系数的时间历程相结合,可以产生结构上的荷载效应的时间历程,例如膝盖和屋脊弯矩,以及屋檐横向偏移。这种影响的峰值由I型分布的极值表示,该分布允许估计导致特定性能目标折衷的平均小时极端载荷的阵风风速。首先,假设大型支流区域上的风场完全相关,然后放松以利用可用的更密集的测压口数据,但需要相当多的计算工作量。性能目标是根据ASCE 7-16规定中给出的极限状态荷载组合确定的,特别是荷载和阻力系数设计(LRFD)方法。然后,对几个风向和不同的主要开口场景重复该程序,以确定产生性能目标标准的情况。与ASCE 7中的两种方法进行了比较。
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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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