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Stochastic Modelling and Analysis for Bridges under Spatially Varying Ground Motions

机译:空间地震动条件下桥梁的随机建模与分析

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摘要

Earthquake is undoubtedly one of the greatest natural disasters that can induce serious structural damage and huge losses of properties and lives. The resulting destructive consequences not only have made structural seismic analysis and design much more important but have impelled the necessity of more realistic representation of ground motions, such as inclusion of ground motion spatial variations in earthquake modelling and seismic analysis and design of structures.Recorded seismic ground motions exhibit spatial variations in their amplitudes and phases, and the spatial variabilities have an important effect on the responses of structures extended in space, such as long span bridges. Because of the multi-parametric nature and the complexity of the problems, the development of specific design provisions on spatial variabilities of ground motions in modern seismiccodes has been impeded. Eurocode 8 is currently the only seismic standard worldwide that gives a set of detailed guidelines to explicitly tackle spatial variabilities of ground motions in bridge design, providing both a simplified design scheme and an analytical approach. However, there is gap between the code-specified provisions in Eurocode 8 and the realistic representation of spatially varying ground motions (SVGM) and the corresponding stochastic vibration analysis (SVA) approaches. This study is devoted to bridge this gap on modelling of SVGM and development of SVA approaches for structures extended in space under SVGM.A complete and realistic SVGM representation approach is developed by accounting for the incoherence effect, wave-passage effect, site-response effect, ground motion nonstationarity, tridirectionality, and spectra-compatibility. This effort brings togethervarious aspects regarding rational seismic scenarios determination, comprehensive methods of accounting for varying site effects, conditional modelling of SVGM nonstationarity, and code-specified ground motion spectra-compatibility.A comprehensive, systematic, and efficient SVA methodology is derived for long span structures under tridirectional nonstationary SVGM. An absolute-response-oriented scheme of pseudo-excitation method and an improved high precision directintegration method are proposed to reduce the enormous computational effort of conventional nonstationary SVA. A scheme accounting for tridirectional varying site-response effect is incorporated in the nonstationary SVA scheme systematically.The proposed highly efficient and accurate SVA approach is implemented and verified in a general finite element analysis platform to make it readily applicable in SVA of complex structures. Based on the proposed SVA approach, parametric studiesof two practical long span bridges under SVGM are conducted.To account for spatial randomness and variability of soil properties in soil-structure interaction analysis of structures under SVGM, a meshfree-Galerkin approach is proposed within the Karhunen-Loeve expansion scheme for representation of spatial soil properties modelled as a random field. The meshfree shape functions are proposed as a set of basis functions in the Galerkin scheme to solve integral equation of Karhunen-Loeve expansion, with a proposed optimization scheme in treating the compatibility between the target and analytical covariance models. The accuracy and validity of the meshfree-Galerkin scheme are assessed and demonstrated by representation of covariance models for various homogeneous and nonhomogeneous spatial fields.The developed modelling approaches of SVGM and the derived analytical SVA approaches can be applied to provide more refined solutions for quantitatively assessing code-specified design provisions and developing new design provisions. The proposed meshfree-Galerkin approach can be used to account for spatial randomness and variability of soil properties in soil-structure interaction analysis.
机译:地震无疑是最大的自然灾害之一,它可能导致严重的结构破坏以及财产和生命的巨大损失。由此产生的破坏性后果不仅使结构地震分析和设计变得更加重要,而且还提出了更真实地表述地震动的必要性,例如将地震动空间变化纳入地震建模以及地震分析和结构设计中。地震动在振幅和相位上表现出空间变化,并且空间变化对空间扩展结构(例如大跨度桥梁)的响应具有重要影响。由于多参数性质和问题的复杂性,阻碍了关于现代地震规范中地震动空间变异性的具体设计规定的发展。欧洲规范8是目前世界上唯一的地震标准,它提供了一套详细的指导原则,以明确解决桥梁设计中地面运动的空间变化,同时提供了简化的设计方案和分析方法。但是,欧洲规范8中的规范规定与空间变化的地面运动(SVGM)和相应的随机振动分析(SVA)方法的真实表示之间存在差距。这项研究致力于弥合SVGM建模与SVGM下空间扩展结构的SVA方法之间的差距。通过考虑不相干效应,波通过效应,位点响应效应,开发了一种完整而现实的SVGM表示方法,地面运动的非平稳性,三向性和频谱兼容性。这项工作汇集了各种方面的信息,包括合理的地震场景确定,各种现场影响的综合计算方法,SVGM非平稳性的条件建模以及代码指定的地面运动频谱兼容性。三向非平稳SVGM下的结构。提出了一种基于绝对响应的伪激励方法和改进的高精度直接积分方法,以减少常规非平稳SVA的巨大计算量。在非平稳SVA方案中系统地考虑了解决双向变化站点响应效应的方案。在通用有限元分析平台中实现并验证了所提出的高效,准确的SVA方法,使其易于在复杂结构的SVA中应用。基于提出的SVA方法,对SVGM下的两座实用大跨径桥梁进行了参数研究。考虑到SVGM下结构的土-结构相互作用分析中土性的空间随机性和变异性,在Karhunen中提出了无网格-Galerkin方法-Loeve扩展方案,用于表示建模为随机场的空间土壤特性。在Galerkin方案中,提出了无网格形状函数作为一组基础函数,以解决Karhunen-Loeve展开的积分方程,并提出了一种用于处理目标与分析协方差模型之间兼容性的优化方案。通过对各种均匀和非均匀空间场的协方差模型表示来评估和证明无网格-Galerkin方案的准确性和有效性。所开发的SVGM建模方法和派生的解析SVA方法可用于为定量评估提供更完善的解决方案规范指定的设计规定,并制定新的设计规定。提出的无网格-Galerkin方法可用于考虑土-结构相互作用分析中土壤特性的空间随机性和变异性。

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    Zhang Deyi;

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  • 年度 2013
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