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Experimental and numerical investigation on temperature characteristics of in-cuts roadbed in Qinghai-Tibetan railway

机译:青藏铁路切入路基温度特性试验与数值研究

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摘要

By analyzing the temperature characteristics and damages of the experimental in-cuts roadbed at Beiluhe site of Qinghai-Tibetan railway, we find that it is difficult to ensure the stability of the in-cuts roadbed in warm permafrost regions if it is filled with coarse-grained soil with a low water content at the roadside slopes and bottom, and insulation is only embedded in its bottom imported fill layer. Therefore, in this paper, two in-cuts roadbed structures, i.e., insulated structure with insulation embedded in imported fill layers at the bottom and side slopes, and crushed-rock structure with insulation only embedded in imported fill layer at the side slopes and crushed rock filled at the bottom, are proposed. The numerical analyses indicate that, in the areas where the mean annual air temperature is -4.0℃ and under the assumption that the mean annual air temperature will be warmed by 1.0℃ in the future 50 years, the insulated structure can ensure the stability of its side slopes, however, the bottom settlement can not be effectively controlled; The crushed-rock structure can not only keep the permafrost table in the imported fill layer and ensure the stability of the side slopes, but also cool down the underlying permafrost and control the bottom settlement. Therefore, when the in-cuts roadbed must be constructed in warm permafrost regions, the crushed-rock structure can be an effective approach to ensure the safety of roadway.
机译:通过对青藏铁路北麓河站点的切入路基的温度特性和破坏进行分析,我们发现,如果在多年冻土区中充填粗糙的冻土,很难确保切入路基的稳定性。在路边的斜坡和底部含水量低的粒状土壤,并且保温层仅埋在其底部的进口填充层中。因此,本文采用两种切入式路基结构,即在底边和边坡的进口填充层中埋入有保温层的保温结构,以及在边坡和碎石的入口填充层中仅埋入保温的碎石结构。建议在底部填充岩石。数值分析表明,在年平均气温为-4.0℃的地区,并假设未来50年年平均气温将升高1.0℃,隔热结构可以确保其结构的稳定性。但是,不能有效地控制底部沉降。碎石结构不仅可以将多年冻土层保持在进口的填充层中,确保边坡的稳定性,还可以冷却下层的多年冻土并控制底部沉降。因此,当必须在温暖的多年冻土地区建造切入路基时,碎石结构可以成为确保巷道安全的有效方法。

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