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ESTIMATING DETERIORATION IN THE CONCRETE TIE-BALLAST INTERFACE BASED ON VERTICAL TIE DEFLECTION PROFILE: A NUMERICAL STUDY

机译:基于垂直系界偏转曲线的混凝土拉碴界面估算:数值研究

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In ballasted concrete tie track, the tie-ballast interface can deteriorate resulting in concrete tie bottom abrasion, ballast pulverization and/or voids in tie-ballast interfaces. Tie-ballast voids toward tie ends can lead to unfavorable center binding support conditions that can result in premature concrete tie failure and possible train derailment. Direct detection of these conditions is difficult. There is a strong interest in assessing the concrete tie-ballast interface conditions indirectly using measured vertical deflections. This paper seeks to establish a link between the vertical deflection profile of a concrete tie top surface and the tie-ballast interface condition using the finite element analysis (FEA) method. The concrete tie is modeled as a concrete matrix embedded with prestressing steel strands or wires. The configurations of two commonly used concrete ties, one with 8 prestressing strands and the other with 20 prestressing wires, are employed in this study. All models are three-dimensional and symmetric about the tie center. A damaged plasticity model that can predict onset and propagation of tensile cracks is applied to the concrete material. The steel-concrete interface is homogenized and represented with a thin layer of cohesive elements sandwiched between steel and concrete elements. Strand- or wire-specific elasto-plastic bond models developed at the Volpe Center are applied to the cohesive elements to account for the interface bonding mechanisms. FE models are developed for both original and worn concrete ties, with the latter assuming hypothetical patterns of reduced cross sections resulting from abrasive interactions with the ballast. Static analyses of pretension release in these concrete ties are conducted, and vertical deflection gradients along tie lengths are calculated and shown to correspond well with the worn cross sectional patterns for a given reinforcement type. The ballast is further modeled with Extended Drucker-Prager plasticity, and hypothetical voids are applied toward the tie ends along the concrete tie-ballast interface to simulate center binding support conditions. The distance range over which the concrete tie is supported in the center is variable and yields different center binding severity. Static simulations are completed with vertical rail seat loads applied on the concrete tie-ballast assembly. The influences of various factors on the vertical deflection profile, including tie type, vertical load magnitude, center binding severity, cross sectional material loss and prestress loss, are examined based on the FEA results. The work presented in this paper demonstrates the potential of using the vertical deflection profile of concrete tie top surfaces to assess deteriorations in the tie-ballast interface. The simulation results further help to clarify minimum technical requirements on inspection technologies that measure concrete tie vertical deflection profiles.
机译:在压载混凝土系轨中,扎压液界面可能会劣化,导致混凝土扎带,镇流器粉碎和/或系带界面中的空隙。 Tie-Ballast对Tie End的空隙可能导致不利的中心绑定支撑条件,可以导致过早的混凝土延续故障和可能的火车脱轨。直接检测这些条件是困难的。在使用测量的垂直偏转方面间接评估混凝土连接界面条件有很强的兴趣。本文探讨了使用有限元分析(FEA)方法建立混凝土系列表面的垂直偏转曲线和扎压界面条件之间的联系。混凝土系列被建模为嵌入预应力钢绞线或电线的混凝土基质。本研究采用了两个常用的混凝土连接的两个常用混凝土连接,其中具有8个预应力线和另一根预应力线。所有型号都是三维和对称的领带中心。一种损坏的可塑性模型,可以预测拉伸裂纹的起始和传播的施加在混凝土材料上。钢混凝土界面是均化的,并用薄薄的粘性元素层表示,夹在钢和混凝土元件之间。在Volpe中心开发的股线或电线特异性弹塑性粘合模型应用于粘性元素,以解释界面粘合机制。为原始和磨损的混凝土领带开发了Fe型号,后者假设由与镇流器的磨料相互作用产生的减少的横截面的假想模式。对这些混凝土系带中的预张力释放的静态分析进行了进行,并且计算沿着系带长度的垂直偏转梯度,并且示出与给定的加强型的磨损横截面图案相​​处。镇流器进一步用延长的滴爪级塑性建模,假设空隙沿着混凝土连接界面沿着混凝土连接界面施加到基端,以模拟中心绑定支撑条件。在中心支撑混凝土扎带的距离范围是可变的,产生不同的中心结合严重程度。静态模拟采用施加在混凝土拉动组件上的垂直轨道座椅载荷。根据FEA结果检查各种因素对垂直偏转曲线上的各种因素,包括系列,垂直载荷幅度,中心结合严重程度,横截面材料损失和预应力损失。本文所呈现的工作表明,使用混凝土系列表面的垂直偏转曲线的潜力,以评估扎带界面中的劣化。仿真结果进一步有助于澄清测量混凝土系态垂直偏转轮廓的检测技术的最低技术要求。

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