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Dynamic analysis of railway with locally continuous supported superstructures

机译:局部连续支撑上部结构的铁路动力分析

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Purpose In this study, a railway superstructure is modeled with a new approach called locally continuous supporting, and its behavior under the effect of moving load is analyzed by using analytical and numerical techniques. The purpose of the study is to demonstrate the success of the new modeling technique.Design/methodology/approach In the railway superstructure, the support zones are not modeled with discrete spring-damping elements. Instead of this, it is considered to be a continuous viscoelastic structure in the local areas. To model this approach, the governing partial differential equations are derived by Hamilton's principle and spatially discretized by the Galerkin's method, and the time integration of the resulting ordinary differential equation system is carried out by the Newmark-Beta method.Findings Both the proposed model and the solution technique are verified against conventional one-dimensional and three-dimensional finite element models for a specific case, and a very good agreement between the results is observed. The effects of geometric, structural, and loading parameters such as rail-pad length, rail-pad stiffness, rail-pad damping ratio, the gap between rail pads and vehicle speed on the dynamic response of railway superstructure are investigated in detail.Originality/value There are mainly two approaches to the modeling of rail pads. The first approach considers them as a single spring-damper connected in parallel located at the centroid of the rail pad. The second one divides the rail pad into several parts, with each of part represented by an equivalent spring-damper system. To obtain realistic results with minimum CPU time for the dynamic response of railway superstructure, the rail pads are modeled as continuous linearly viscoelastic local supports. The mechanical model of viscoelastic material is considered as a spring and damper connected in parallel.
机译:目的在本研究中,采用一种称为局部连续支撑的新方法对铁路上部结构进行建模,并通过分析和数值技术分析其在移动荷载作用下的行为。本研究的目的是证明新建模技术的成功。设计/方法/方法在铁路上部结构中,支撑区域未使用离散的弹簧阻尼元素进行建模。取而代之的是,它被认为是局部区域中的连续粘弹性结构。为了对此方法进行建模,根据汉密尔顿原理导出控制性偏微分方程,并通过Galerkin方法在空间上进行离散化,然后使用Newmark-Beta方法对所得的常微分方程系统进行时间积分。针对特定情况,针对常规一维和三维有限元模型验证了该求解技术,并且观察到结果之间的一致性非常好。详细研究了几何参数,结构参数和载荷参数(例如路轨长度,路轨刚度,路轨阻尼比,路轨之间的间隙和车速)对铁路上部结构动力响应的影响。价值主要有两种方法对滑轨进行建模。第一种方法将它们视为并联的单个弹簧阻尼器,位于导轨垫的质心处。第二个部分将滑轨垫分成几个部分,每个部分都由一个等效的弹簧-阻尼器系统代表。为了在不花费大量CPU时间的情况下获得对铁路上部结构的动态响应的逼真的结果,将轨道板建模为连续的线性粘弹性局部支撑。粘弹性材料的力学模型被认为是并联连接的弹簧和阻尼器。

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