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Railway critical speed assessment: A simple experimental-analytical approach

机译:铁路临界速度评估:一种简单的实验分析方法

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When constructing a new railway line, its long length means there are significant financial implications associated with determining the geodynamic ground properties. Therefore, this paper presents recommendations to optimize the efficiency and depth of such a geotechnical site investigation. Firstly, a numerical analysis is performed to investigate the effect of soil layering, soil stiffness and track bending stiffness on critical velocity. It is shown that each of these variables play an important role, however for most practical cases, only the top 8 m of soil is influential. Track dynamics are rarely affected by soil properties at depths below this, meaning this is the maximum required depth of soil investigation. Using this knowledge, a hybrid experimental-analytical methodology is presented, based on a geophysical Spectral Analysis of Surface Waves (SASW) experimental setup to compute the ground dispersion curve and an analytical model to compute the track dispersion curve. The experimental and analytical results are combined directly, to accurately compute the critical velocity. This approach is attractive because: 1) SASW tests are typically accurate to approximate to 8 m (when using a mobile exciter) thus matching the required depth needed for critical velocity computation, 2) soil property uncertainties are inherently accounted for, 3) the uncertainties associated with SASW inversion are avoided. The approach is attractive when constructing new railway lines and upgrading the speed of existing lines because it can potentially yield site investigation cost savings. In-situ field work is performed to show the practical application of the technique.
机译:在构建新的铁路线时,其长度意味着存在与确定地磁接地特性相关的重大财务影响。因此,本文提出了优化这种岩土工地调查的效率和深度的建议。首先,进行数值分析以研究土壤分层,土壤刚度和轨道弯曲刚度对临界速度的影响。结果表明,这些变量中的每一个起重要作用,然而对于大多数实际情况,只有前8米的土壤是有影响力的。轨道动态很少受到以下深度的土壤性质影响,这意味着这是土壤调查所需的最大深度。使用这种知识,基于表面波(SASW)实验设置的地球物理光谱分析来计算用于计算地分散曲线和分析模型来计算轨道色散曲线的混合实验分析方法。实验和分析结果直接组合,以准确计算临界速度。这种方法是有吸引力的,因为:1)SASW测试通常准确地近似到8米(当使用移动激励器时),从而匹配关键速度计算所需的所需深度,2)土壤性质不确定性本质上占,3)不确定性避免了与SASW反转相关联。当建造新的铁路线并升级现有线路速度时,这种方法是有吸引力的,因为它可能会产生现场调查成本节约。进行原位现场工作以显示该技术的实际应用。

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