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Numerical and experimental analyses for rubber-sand particle mixtures applied in high-filled cut-and-cover tunnels

机译:高填充剪切隧道橡胶砂颗粒混合物的数值和实验分析

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With the rapid development of the automobile industry and transportation, the disposal of scrap tires has become an internationally recognized economic and environmental problem. Fortunately, high-filled cut-and-cover tunnels (first construction and then layered backfill) provide ideal solutions for waste treatment and resource reuse as mixtures of scrap tire rubber particles and sand are used as lightweight fill material (LFM) in high-fill cut-and-cover tunnels (HFCCT). Because the backfill above the cut-and-cover tunnel (CCT) requires a large quantity of material, an appropriate ratio of scrap tire rubber particles and sand should be selected as the LFM mixture. If LFM of different thicknesses is buried above the CCT, it will inevitably bring varying degrees of influence on the earth pressure around the CCT, leading to structural deformation and soil settlement above the CCT. In this paper, a method of combining numerical simulation and model test is presented to help analyze the macroscopic and micromechanical properties of LFM through the stress-strain change and the contact force chain distribution. In the model test, certain factors influencing the earth pressure, the structural deformation, and the soil settlement mentioned above are considered, including the fill height and the embedding depth of the LFM. The results show that when the rubber fraction by volume (RF) is between 30% and 45%, the deformation and load-bearing capacity of the LFM are the most stable. Moreover, a suitable rubber fraction by volume (RF = 40%) and backfill height (between 0.63 similar to 0.83 times the height of the CCT) can eliminate the stress concentration at the top center of the CCT.
机译:随着汽车工业和运输的快速发展,废料轮胎的处置已成为国际公认的经济和环境问题。幸运的是,高填充的剪切隧道(第一施工和分层回填)为废物处理和资源再利用提供了理想的解决方案,因为废气轮胎橡胶颗粒和砂混合物用作高填充物的轻质填充材料(LFM)切割隧道(HFCCT)。因为切割隧道上方的回填(CCT)需要大量的材料,所以应选择废轮胎橡胶颗粒和砂的适当比例作为LFM混合物。如果不同厚度的LFM埋在CCT上方,则它将不可避免地对CCT周围的地球压力产生不同程度的影响,导致CCT上方的结构变形和土壤沉降。本文提出了一种组合数值模拟和模型测试的方法,以帮助通过应力 - 应变变化和接触力链分布来分析LFM的宏观和微机械性能。在模型测试中,考虑了影响地球压力,结构变形和土壤沉降的某些因素,包括填充高度和LFM的嵌入深度。结果表明,当体积橡胶级分(RF)之间的30%至45%之间时,LFM的变形和承载能力最稳定。此外,由体积(RF = 40%)和回填高度(0.63的高度的0.63倍)可以消除CCT顶部中心的应力浓度的合适橡胶分数。

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