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RADIAL BASIC FUNCTION-BASED ANALYSIS OF DYNAMIC DEFLECTION OF INVISIBLE FLEXIBLE PAVEMENT LAYER PROFILES

机译:基于径向基函数的不可见柔性路面层轮廓动态挠度分析

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摘要

This study proposes a radial basic function (RBF) neural network model which can simulate the dynamic deflection process of invisible individual layers in the full-scale flexible pavement along with an increase of load repetitions. The training and testing data is formed through empirical and conceptual judgment on the final profiles of the four pavement layers in the test. The independent and dependent variables are defined as the known top and invisible layer deflections respectively. Then, the RBF model produces the numerical results between layer dynamic deflections. Finally, several parameters are suggested to study the response of the invisible pavement layers. The RBF model shows that the implicit dynamic relationship between pavement layer deflections could be modeled by a static state of the flexible pavement. Furthermore, some working features of the pavement might be revealed from its dynamic response.
机译:这项研究提出了一个径向基函数(RBF)神经网络模型,该模型可以模拟全尺寸柔性路面中不可见的各个层的动态变形过程,以及增加的荷载重复次数。训练和测试数据是通过对测试中四个路面层的最终轮廓进行经验和概念判断而形成的。自变量和因变量分别定义为已知的顶层和不可见层的挠度。然后,RBF模型产生层动态挠度之间的数值结果。最后,提出了一些参数来研究不可见路面层的响应。 RBF模型表明,可以通过柔性路面的静态状态来建模路面层挠度之间的隐式动态关系。此外,人行道的一些工作特征可能会从其动态响应中体现出来。

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