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Collapse-Resistant Performance of Long-Span Single-Layer Spatial Grid Structures Subjected to Equivalent Sudden Joint Loads

机译:经过等效突然关节载荷的长跨度单层空间网格结构的塌陷性能

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A dynamic experiment of progressive collapse constitutes the basis of a collapse-resistant analysis. To achieve broad applicability and avoid superfluous influencing factors, two representative substructures extracted from long-span single-layer spatial grid structures were tested using a quick-loading system. The strain and displacement results of the specimens were analyzed, as well as the collapse-resistant mechanisms. The dynamic performance of a full-scale Kiewitt dome was investigated using the hybrid finite-element (FE) model. Finally, a novel cable-reinforced Kiewitt dome is proposed to improve the collapse resistance of Kiewitt domes. The results show that the tests and associated analyses contribute to establishing a database of benchmark models for collapse-resisting simulation of long-span single-layer spatial grid structures. The FE results are well-validated by the test results. The time history of the loading with a suddenly applied load of 1,000 kg for S-10 is similar to the time history of the resistance in a compression mechanism. Owing to the geometric nonlinearity, the time history of the resistance for the catenary mechanism is asymmetrically distributed based on the final equilibrium state. The dynamic performance of long-span single-layer spatial grid structures is significantly affected by the duration of the suddenly applied load. The maximum displacement of the novel cable-reinforced Kiewitt dome is substantially reduced, and the maximum stress is smaller than the yield stress of steel. The superiority of the cable-reinforced Kiewitt dome is therefore demonstrated. DOI: 10.1061/(ASCE)ST.1943-541X.0002904. (c) 2020 American Society of Civil Engineers.
机译:渐进塌陷的动态实验构成了抗塌陷分析的基础。为实现广泛的适用性并避免多余的影响因素,使用快速装载系统测试从长跨度单层空间网格结构中提取的两个代表性子结构。分析样本的应变和位移结果,以及抗塌陷机制。使用混合有限元(FE)模型来研究全规模Kiewitt圆顶的动态性能。最后,提出了一种新型电缆增强的Kiewitt圆顶,以提高Kiewitt圆顶的塌陷性。结果表明,测试和相关分析有助于建立用于抗跨度单层空间网格结构的抗碰撞仿真基准模型数据库。通过测试结果验证了FE结果。突然施加的载荷的时间历史为1,000kg的S-10类似于压缩机构中电阻的时间历史。由于几何非线性,基于最终均衡状态的电阻机构的电阻的时间历史是不对称分布的。长跨度单层空间网格结构的动态性能受到突然施加负荷的持续时间的显着影响。新型电缆增强Kiewitt圆顶的最大位移显着降低,最大应力小于钢的屈服应力。因此证明了电缆增强的Kiewitt圆顶的优越性。 DOI:10.1061 /(asce)st.1943-541x.0002904。 (c)2020年美国土木工程师协会。

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