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The lateral displacement response of geogrid-reinforced ballast under cyclic loading

机译:循环荷载下土工格栅加筋道ast的横向位移响应

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Ballast being an unbounded granular medium spreads laterally when subjected to high-frequency cyclic loading. To reduce lateral movement of ballast and to optimize track performance, rail tracks can be reinforced with geogrid. In this study, a novel large-scale process simulation test (PST) apparatus that can capture the lateral strain variation upon loading is described. Laboratory tests were conducted to explore the deformation and degradation response of both unreinforced and reinforced ballast under high-frequency cyclic loading. Fresh Latite basalt having an average particle size (D_(50)) of 35 mm, and geo-grids with different aperture sizes were tested. The laboratory experimental results reveal that the ballast deformation (both lateral and vertical) and the breakage during cyclic loading are influenced by the geogrid type and its placement location. Moreover, the lateral strain profiles along the ballast depth have been measured and the geogrid influence zone (GIZ), defined as the distance to which the effect of geogrid in arresting the lateral displacement of ballast exists, has been determined. The GIZ is found to vary from 160 mm (4.60D_(50)) to 225 mm (6.45D_(50)) depending on the location of the geogrid. In addition, the optimum geogrid position in the track has been identified to be 65 mm above the subballast. The test results also exemplify the ability of geogrid to arrest lateral displacement of ballast, reduce settlement and minimize particle degradation under high-frequency cyclic loading.
机译:镇流器是一种无限制的粒状介质,在承受高频循环载荷时会横向扩散。为了减少压载物的横向移动并优化轨道性能,可以使用土工格栅来加强轨道。在这项研究中,描述了一种新型的大规模过程仿真测试(PST)设备,该设备可以捕获加载时的横向应变变化。进行了实验室测试,以探讨高频循环荷载下未加固和加固道ast的变形和降解响应。测试了平均粒径(D_(50))为35毫米的新鲜拉铁玄武岩,以及孔径大小不同的土工格栅。实验结果表明,土工格栅的类型及其放置位置会影响压载变形(横向和竖向)以及循环荷载时的破裂。此外,已经测量了沿压载物深度的侧向应变分布,并确定了土工格栅影响区(GIZ),该距离定义为土工格栅阻止压载物横向位移的距离。根据土工格栅的位置,发现GIZ从160毫米(4.60D_(50))到225毫米(6.45D_(50))不等。此外,已确定轨道中的最佳土工格栅位置为子压载物上方65 mm。测试结果还证明了土工格栅在高频循环载荷下阻止压载物横向位移,减少沉降并使颗粒降解最小化的能力。

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