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An energy allocation based design approach for flexible rockfall protection barriers

机译:基于能量分配的柔性落石防护屏障设计方法

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摘要

This paper proposes an effective design approach for quickly determining the specification, size and amount of components of a flexible rockfall protection barrier structure. The approach is based on a reliable numerical modelling validated by several experimental tests that include both component tests and full-scale impact tests. The interception structure made up of a steel wire-ring net is accurately investigated through a series of in-plane and out-of-plane quasi-static tests carried out on net specimens, to define the ring constitutive model and failure criterion. The accuracy of the numerical strategy for an overall barrier structure with nominal energy level of 1500 kJ is validated by a full-scale in-situ test including service energy level (SEL) and maximum energy level (MEL) impacts, according to the European guidelines. From the numerical models, it is inferred that the total energy of the impact is simultaneously dissipated in different ways, where the internal energy of the structure plays a significant role. The distribution of the absorbed energy among the different barrier components is explored and defined by means of the developed finite element model. Besides, the design values of the internal force in the ropes are derived with an adequate safety margin. The proposed design procedure, applied to a barrier structure with nominal energy level of 3500 kJ, is assessed by a full-scale impact test, proving that the design approach is reliable and efficient.
机译:本文提出了一种有效的设计方法,用于快速确定柔性防落石屏障结构的规格,尺寸和数量。该方法基于可靠的数值模型,该数值模型已通过包括组件测试和全面冲击测试在内的多个实验测试验证。通过对网状试样进行一系列的平面内和平面外准静态测试,可以精确地研究由钢丝环网构成的拦截结构,从而确定环的本构模型和破坏准则。根据欧洲准则,标称能级为1500 kJ的整体屏障结构的数值策略的准确性已通过包括服务能级(SEL)和最大能级(MEL)冲击的全面原位测试得到验证。从数值模型可以推断出,冲击的总能量同时以不同的方式消散,其中结构的内部能量起着重要的作用。通过开发的有限元模型,探索和定义了吸收能量在不同势垒组件之间的分布。另外,在绳索中的内力的设计值以足够的安全余量得出。拟议的设计程序应用于标称能级为3500 kJ的屏障结构,并通过全面冲击试验进行了评估,证明了该设计方法可靠且有效。

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