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首页> 外文期刊>Thin-Walled Structures >Buckling design of large circular steel silos subject to wind pressure
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Buckling design of large circular steel silos subject to wind pressure

机译:大型圆形钢筒仓在风压作用下的屈曲设计

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摘要

Large steel silos are typical kinds of thin-walled structure which are widely used for storing huge quantities of granular solids in industry and agriculture. In the present analyses, buckling design of large steel silo subject to wind pressure is demonstrated in accordance with Eurocode (EN1990, 1991, 1993) and the proposed combinational Load Case WE (wind and empty silo) and WF (wind and full silo). The finite element model is established by using the commercial general purpose computer package ANSYS. Five types of buckling analyses are carried out for the geometrically perfect and imperfect models with and without the consideration of the material plasticity, which are designated as LBA, CNA, GMNA, GNIA, and GMNIA in EN 1993 Part 1-6. The geometrical imperfections are known to have a large impact on the buckling behavior of steel silo structure, in which the magnitude and distribution of the weld depression during construction process is adopted to account for fabrication quality. The buckling behavior of a reference silo with a diameter of 40 m and an aspect ratio of 0.9 is first investigated, which shows that the buckling behaviors from Load Case WE and WF are much different. The material nonlinearity shows little influence on buckling resistance in Load Case WE, while the buckling resistance and buckling mode is much sensitive to weld imperfection. In Load Case WF, both material nonlinearity and geometrical nonlinearity effect is strong and detrimental to buckling behavior of steel silos, resulting in decrease of buckling resistance. The buckling deformation corresponding to the critical point in Load Case WE is governed by the circumferential compression which is generated in the windward region of the shells localized at the top part of silo wall. The buckling mode in Load Case WF takes the form of the well-known elephant-foot deformation at the bottom part of the shell wall, which is induced by the meridional compressive stress. It is also indicated from the parametric analyses that the buckling resistance of steel silo is closely correlative with the loading conditions involving the wind velocity, the patch load, and the geometrical parameters including the aspect ratio, the radius-to-thickness ratio, the type of wall thickness, and the wall openings.
机译:大型钢筒仓是典型的薄壁结构,广泛用于工业和农业中存储大量的颗粒状固体。在目前的分析中,根据欧洲规范(EN1990,1991,1993)以及拟议的荷载工况WE(风和空筒仓)和WF(风和全筒仓),证明了大型钢筒仓在风压作用下的屈曲设计。有限元模型是通过使用商用通用计算机软件包ANSYS建立的。在考虑和不考虑材料可塑性的情况下,对几何形状完美和不完美的模型执行了五种屈曲分析,它们在EN 1993第1-6部分中分别指定为LBA,CNA,GMNA,GNIA和GMNIA。已知几何缺陷对钢筒仓结构的屈曲行为有很大的影响,在这种情况下,在施工过程中采用焊接凹陷的大小和分布来考虑制造质量。首先研究了直径为40 m且纵横比为0.9的参考筒仓的屈曲行为,这表明载荷工况WE和WF的屈曲行为有很大不同。在载荷工况WE中,材料的非线性对屈曲阻力几乎没有影响,而屈曲阻力和屈曲模式对焊接缺陷非常敏感。在载荷工况WF中,材料非线性和几何非线性效应均很强,并且不利于钢筒仓的屈曲行为,导致屈曲阻力降低。与载荷工况WE中的临界点相对应的屈曲变形由周向压缩控制,周向压缩在筒仓壁顶部局部处的壳体的迎风区域中产生。载荷工况WF中的屈曲模式采用在壳壁底部的象脚形变形的形式,这是由子午压缩应力引起的。从参数分析还可以看出,钢筒仓的抗屈曲性与包括风速,补片载荷以及几何参数(包括长宽比,半径与厚度比,类型)在内的载荷条件密切相关。壁厚和壁孔。

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