利用有限元原理对固定顶储罐进行分析,研究活荷载对风荷载的应力消除程度

Nawfal Hsaine, F. Franklin
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引用次数: 0

摘要

近年来的研究主要集中在环境荷载对包括仓储设施在内的大型结构的影响上。特别是针对冲击储罐场的强烈阵风条件1,本文为寻找可行的解决方案以防止或减少此类事件发生造成的灾难性故障设定了起点。因此,本研究旨在探索活荷载和雪荷载在减少和缓解风致临界应力和其他结构响应方面的可探测潜力,这些响应是在圆顶屋顶储罐结构的特定区域产生的。本文以一个典型的中型10000立方米容量、圆柱形壁、自承式圆顶燃料储罐为实际模型,在不同的环境和运行负荷条件下进行了研究。利用有限元原理对储罐结构部件进行了数值模拟,并利用计算流体力学(CFD)对风场进行了模拟。为了全面涵盖调查方面,选择了四种模型来理想化上述储罐:低和高宽高比,每个模型都有浅和深的圆顶度。此外,在结构分析中选择了四种不同的荷载情况:满罐和空罐情况,每一种情况都只有风荷载,或者风、雪和活荷载的组合。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Analyzing fixed roof storage tanks using FE principles to investigate the stress relief degree caused by live loads against wind loads
Recent studies have focused on impact of environmental loads on large scale structures including storage facilities. In particular reference to severe gust wind conditions that impinge on storage tanks farms1, present paper sets the starting point for discovering feasible solutions to prevent or reduce the catastrophic failure due to occurrence of such events. Therefore, this work searches through the detectable potentialities of live and snow loads in reducing and relieving the severity of wind-induced critical stresses and other structural responses that generated at particular regions within domed roof storage tank structure. As practical model, a typical mid-sized 10000 cubic metres capacity, cylindrical walls, self-supporting dome roof fuel storage tank is studied in this article with different environmental and operational loading conditions. A numerical technique utilizing Finite Element (FE) principles has been implemented to model the structural components of the storage tank and Computational Fluid Dynamics (CFD) is used to model the wind field. To cover the investigation aspects comprehensively, four models were selected to idealize the aforementioned storage tank: low and high aspect ratios, each with shallow and deep dome roof degrees. Moreover, four different load cases were selected for use in the structural analysis: full and empty tank cases, each with wind load only, or with combined wind, snow and live loads.
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