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首页> 外文期刊>Journal of Computing in Civil Engineering >Physics-Based Stochastic Model to Determine the Failure Load of Suspension Bridge Main Cables
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Physics-Based Stochastic Model to Determine the Failure Load of Suspension Bridge Main Cables

机译:基于物理的随机模型确定吊桥主电缆的破坏荷载

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A new methodology to determine the safety of suspension bridge main cables is proposed in this paper and illustrated by simulating the failure of a corrosion-deteriorated cable composed of 9,061 wires. The approach is the first to use a finite-element (FE) model to predict the failure load, account for load recovery due to friction in broken wires, and simulate the reduced strength of the cable as a three-dimensional random field. To obtain cable failure load, the load is increased gradually, causing individual wires break according to their residual strength variability. Because of the load transfer to surrounding wires, the breakage of an individual wire affects the stress state of its surrounding wires. Consequently, as the load is increased, this local damage spreads to its immediate vicinity, and eventually the entire cable fails. Because of the complexity of the problem, the critical failure load is determined through a Monte Carlo simulation approach that accounts for the uncertainty in the spatial variability of the residual strength of the individual wires. The probability distribution of the load that will drive a suspension bridge cable to failure is reported and investigated in the paper. (C) 2014 American Society of Civil Engineers.
机译:本文提出了一种确定悬索桥主电缆安全性的新方法,并通过模拟由9,061根电线组成的腐蚀劣化电缆的失效情况进行了举例说明。该方法是第一个使用有限元(FE)模型来预测故障载荷,解决由于断线摩擦而引起的载荷恢复以及将电缆强度降低的情况作为三维随机场进行模拟的方法。为了获得电缆故障负载,负载会逐渐增加,从而导致各根导线根据其剩余强度变化而断裂。由于负载传递到周围的导线,单个导线的断裂会影响其周围导线的应力状态。因此,随着负载的增加,这种局部损坏会扩展到其附近,最终整个电缆会失效。由于问题的复杂性,通过蒙特卡洛模拟方法确定了关键的失效载荷,该方法考虑了单根导线残余强度的空间变异性中的不确定性。本文将报告并调查将导致吊桥电缆发生故障的载荷的概率分布。 (C)2014年美国土木工程师学会。

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