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An analysis of the structural behaviour of axially oaded full-scale cold-formed thin-walled steel tructural panels tested under fire conditions

机译:火灾条件下轴向浸入全尺寸冷弯薄壁钢结构薄板的结构性能分析

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This paper presents a theoretical analysis to predict lateral deflections and failure times of six full-scale cold-formed thin-walled steel structural panels, tested under in-plane loads and exposed to fire attack on one side. The main objectives of this study are to investigate the effects of thermal bowing deflection and to check the relative merits of using either ENV 1993-1-2 or a modified version of ENV 1993-1-3 to perform design calculations for axially loaded steel studs under non-uniform temperature distributions. In general, the design of steel studs should also consider the effect of shift of neutral axes in both principal directions of the cross-section at elevated temperatures. However, such calculations can be rather time-consuming. Therefore, a secondary objective of this study is to assess how to effectively and accurately deal with this aspect in routine design calculations. It can be seen that thermal bowing deflections will have substantial effect on the fire resistance of steel structural panels exposed to fire on one side. However, for design calculations, it is not necessary to consider the effect of increasing thermal bowing deflections due to axial compression and reducing elastic modulus of steel at elevated temperatures. Both ENV 1993-1-2 and ENV 1993-1-3 may be used in design calculations of the ultimate load of this type of construction. It appears that ENV 1993-1-3 gives slightly better agreement with test results, but ENV 1993-1-2 is easier to implement because it does not require additional calculations of effective areas of thin-walled cross-sections at non-uniform elevated temperatures. The effect of shift of the minor axis is very small on the prediction of panel failure times and can be ignored to simplify routine design. Neutral axis shift of the major axis has some effect and may change the panel failure position from at the mid-height to the support. However, ignoring this neutral axis shift seems to give the best agreement to test results in term of panel failure location and panel failure times.
机译:本文提供了一种理论分析,以预测六种全尺寸冷弯薄壁型钢结构板的侧向挠度和破坏时间,这些结构在面内载荷下进行了测试,并且一侧遭受了火袭。这项研究的主要目的是研究热弯曲挠度的影响,并检查使用ENV 1993-1-2或ENV 1993-1-3的改进版本对轴向受力钢螺柱进行设计计算的相对优点。在非均匀温度分布下。通常,钢制双头螺栓的设计还应考虑高温下中性轴在横截面的两个主要方向上移动的影响。但是,这样的计算可能非常耗时。因此,这项研究的第二个目标是评估在常规设计计算中如何有效,准确地处理这一方面。可以看出,热弯曲挠度将对一侧暴露于火的钢结构板的耐火性产生实质性影响。但是,对于设计计算,没有必要考虑由于轴向压缩而导致的热弯曲挠度增加以及在高温下降低钢的弹性模量的影响。 ENV 1993-1-2和ENV 1993-1-3均可用于此类结构的极限载荷的设计计算。看起来ENV 1993-1-3与测试结果具有更好的一致性,但是ENV 1993-1-2易于实施,因为它不需要对不均匀升高的薄壁截面的有效面积进行额外的计算。温度。短轴移动对面板故障时间的预测影响很小,可以忽略以简化常规设计。主轴的中性轴偏移会产生一些影响,并且可能会将面板故障位置从中间高度更改为支撑位置。但是,忽略此中性轴偏移似乎在面板故障位置和面板故障时间方面可以最好地证明测试结果。

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