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Evaluation of uncertainty in experimental active buckling control of a slender beam-column with disturbance forces using Weibull analysis

机译:基于Weibull分析的带干扰力的细长梁柱实验主动屈曲控制不确定性评估

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Buckling of slender load-bearing beam-columns is a crucial failure scenario in lightweight structures as it may result in the collapse of the entire structure. If axial load and load capacity are unknown, stability becomes uncertain. To compensate this uncertainty, the authors successfully developed and evaluated an approach for active buckling control for a slender beam-column, clamped at the base and pinned at the upper end. Active lateral forces are applied with two piezoelectric stack actuators in opposing directions near the beam-column' clamped base to prevent buckling. A Linear Quadratic Regulator is designed and implemented on the experimental demonstrator and statistical tests are conducted to prove effectivity of the active approach. The load capacity of the beam-column could be increased by 40% and scatter of buckling occurrences for increasing axial loads is reduced. Weibull analysis is used to evaluate the increase of the load capacity and its related uncertainty compensation.
机译:细长的承重梁柱的屈曲是轻型结构中的关键失效情况,因为它可能导致整个结构崩溃。如果轴向载荷和承载能力未知,则稳定性变得不确定。为了弥补这种不确定性,作者成功开发并评估了一种用于细长梁柱的主动屈曲控制方法,该方法可固定在底部并固定在上端。在横梁柱的夹紧基座附近,两个压电叠层促动器在相反的方向上施加了有效的横向力,以防止屈曲。在实验演示器上设计并实现了线性二次调节器,并进行了统计测试以证明主动方法的有效性。梁柱的承载能力可以提高40%,并且可以减少因增加轴向载荷而发生屈曲的情况。威布尔分析用于评估负载能力的增加及其相关的不确定性补偿。

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