Identification of Ballast Fouling Status and Mechanized Cleaning Efficiency Using FDTD Method

Remote. Sens. Pub Date : 2023-07-06 DOI:10.3390/rs15133437
Bo Li, Zhan Peng, Shi-Hua Wang, Linyan Guo
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Abstract

Systematic assessment of ballast fouling and mechanized cleaning efficiency through ground penetrating radar (GPR) is vital to ensure track stability and safe train transportation. Nevertheless, conventional methods of ballast fouling inspection and evaluation impede construction progress and escalate the cost of maintenance. This paper proposes a novel method using random irregular polygons and collision detection algorithms to model the ballast layer and simulated using the finite-difference time-domain (FDTD) algorithm. Hilbert transform energy, S-transform, and energy integration curve are employed to identify ballast fouling and cleaning efficiency. The highly fouled ballast exhibits concentrated Hilbert transform energy, increased energy attenuation rate in S-transform with depth in the 1.0-3.0 GHz, along with a stronger energy integration curve. Clean or post-cleaning ballast shows opposite results. Experiments on a passenger trunk line in southern China validated the method’s accuracy after mechanized ballast cleaning. This approach guides GPR-based detection and supports railway maintenance. Future studies will consider heterogeneous properties and the three-dimensional structure of the ballast layer.
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用时域有限差分法辨识压载污垢状况及机械清洗效率
利用探地雷达系统评估道砟结垢和机械化清理效率,对保障轨道稳定和列车安全运输具有重要意义。然而,传统的压载污垢检查和评估方法阻碍了施工进度,并增加了维护成本。本文提出了一种利用随机不规则多边形和碰撞检测算法对压载层进行建模,并利用时域有限差分(FDTD)算法进行仿真的新方法。利用希尔伯特变换能量、s变换和能量积分曲线识别压载污垢和清洁效率。高污染镇流器Hilbert变换能量集中,在1.0 ~ 3.0 GHz波段s变换能量衰减率随深度增加,能量积分曲线更强。清洁或后清洗压舱水显示相反的结果。在华南客运干线上进行的机械压舱清理实验验证了该方法的准确性。这种方法指导基于gpr的探测,并支持铁路维修。未来的研究将考虑压载层的非均质性和三维结构。
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