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

机译:基于垂直扎带挠度轮廓的混凝土扎带-压载物界面变形估算: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:在压载混凝土路轨中,压载物-压载物界面会变质,导致混凝土压实物底部磨损,压载物粉碎和/或压载物-压载物界面中的空隙。枕木道toward向枕木两端的空隙会导致不利的中央约束支撑条件,从而导致混凝土枕木过早失效,并可能导致列车脱轨。这些条件的直接检测是困难的。人们非常感兴趣的是使用测得的垂直挠度间接评估混凝土的压载物-压载物界面条件。本文力图通过有限元分析(FEA)方法建立混凝土连接顶面的垂直挠度轮廓与连接-压载界面条件之间的联系。将混凝土扎带建模为嵌入有预应力钢绞线或钢丝的混凝土基质。在这项研究中,采用了两种常用的混凝土扎带的构型,一种带有8条预应力绳,另一种带有20条预应力绳。所有模型都是三维的,并且关于领带中心对称。可以预测拉伸裂纹的发生和扩展的损坏的塑性模型被应用到混凝土材料上。钢混凝土界面被均质化,并用夹在钢和混凝土元素之间的薄薄一层粘合元素表示。 Volpe中心开发的特定于钢绞线或导线的弹塑性粘结模型被应用于内聚元素,以说明界面粘结机制。有限元模型针对原始和磨损的混凝土扎带而开发,后者假定了由于与压载物的磨蚀相互作用而导致的横截面减小的假想模式。对这些混凝土扎带中的预应力释放进行了静态分析,并计算了沿扎带长度的垂直挠度梯度,并显示出与给定钢筋类型的磨损横截面图非常吻合。用扩展的Drucker-Prager可塑性对压载物进行建模,并沿着混凝土的压载物-压载物界面向连接端施加假定的空隙,以模拟中心结合支撑条件。在中心支撑混凝土扎带的距离范围是可变的,并且产生不同的中心结合强度。静态模拟是通过将垂直轨座载荷施加到混凝土枕木镇流器组件上来完成的。基于有限元分析的结果,检查了各种因素对垂直挠曲曲线的影响,包括扎带类型,垂直载荷大小,中心粘结强度,横截面材料损失和预应力损失。本文介绍的工作表明了使用混凝土连接顶表面的垂直挠曲轮廓来评估连接-压载界面的劣化的潜力。仿真结果进一步有助于阐明对测量混凝土拉索垂直挠度分布图的检查技术的最低技术要求。

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    《ASME joint rail conference》|2016年|V001T01A024.1-V001T01A024.9|共9页
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    Hailing Yu;

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