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161.
通过对宣杭铁路复线工程某标段路堤坍塌情况的分析可知,采用干喷法加固路基时应结合土层的实际情况.且设计方与施工方要通力合作,对施工方案作相应调整,这是确保工程质量的关键。 相似文献
162.
按照一定的比例。将石灰或砂砾与低液限粉质粘土掺拌,能有效地减小低液限粉质粘土的胀缩性,具有较高的实用价值。 相似文献
163.
山区高速公路弃土场的综合设计探讨 总被引:7,自引:1,他引:6
针对山区高速公路建设过程中弃土场大量出现的实际情况,结合安徽省山区高速公路的具体设计工作,对弃土场进行价值分析,提出了综合设计思路,有助于推动弃土场设计的发展。 相似文献
164.
165.
路基沉降预测及其工程应用 总被引:2,自引:0,他引:2
根据某公路软土路段的实测沉降资料,采用双曲线法预测各施工阶段测点的沉降和工后沉降量,为路面结构层的铺设及间歇期的确定提供了依据。 相似文献
166.
167.
针对黄骅港区饱和密实粉土,通过三轴剪切试验以及原型耙齿切削试验,研究饱和密实粉土剪胀特性及其对耙齿切削阻力的影响。三轴试验结果表明,黄骅地区饱和密实粉土在剪切过程中表现为应变软化性状,偏应力峰值与围压之间基本呈线性关系。在剪切过程中,土体先剪缩后剪胀,随着围压的增大,剪缩性状体现得越来越明显,应力应变性状可划分为4个不同阶段。原型耙齿切削试验结果表明,饱和土较非饱和土切削阻力增长得更快;饱和土切削阻力最大值为非饱和土切削阻力最大值的2.7~3.3倍;对于饱和土,切削阻力达到稳定值后,其波动幅度较非饱和土要大。上述试验结果均表明,土的剪胀性对于耙齿切削阻力的影响十分显著,须采取相应的措施来降低土的剪胀性对于耙齿切削阻力的影响。 相似文献
168.
通过建立两相饱和地基下桩-土耦合系统的动力分析有限元数值模型,对饱和自由场地基以及桩柱结构在地震作用下的动力响应进行数值模拟研究。结果表明:在地震作用下超孔隙水压沿深度方向呈现出指数衰减趋势,在地表处更易导致地基液化从而散失承载能力。随着超孔隙水压的上升土体强度降低后,饱和地基土层对地震波的高频成分有明显的选择性滤波作用。在桩柱结构地震响应分析中,受桩土间动力耦合作用的影响,桩侧土体比远场地基土更易液化。随着地基承载力的降低,导致桩柱动力以及弯矩响应上升。研究结果与已有桩基础震害经验相符,其方法和结论可对饱和可液化地基抗震工程提供参考。 相似文献
169.
Combining the present situation and development trend of different tunnel support technologies at home and abroad, this paper analyzes the problems of rockburst in hard rock tunnels and large deformation in soft rock tunnels caused by high ground stress. It is concluded that: 1) regarding the rockburst problem, the current support technology is mainly influenced by the rock burst mechanism which is dominated by static factors, and so the used support components are generally of smaller deformation performance and "passive support" properties; 2) as the rockburst is the result of dynamic-static stress coupling, and only the anchor bolt has the "active support" attribute in the current "shotcrete+anchor bolt+wire net" support system, so the best support system should have the two functions of active support and energy release in terms of the rockburst problem, and the key focus of the research and development is anchorage members; 3) there are three main support types for large deformation in soft rock tunnels, e.g. the heavy support, layered support and yielding support. Among them, the heavy support system in underground cavern with large deformation is easy to induce excessive surrounding rock pressure, and so the applicable conditions are limited. The layered support system is still not the best choice due to its immature theoretical study, difficult determination of the thickness value and the installation time of each support layer and the interference to construction progress. With the characteristics of timely support and yielding while supporting, the yielding support system can give full play to the performance values of surrounding rocks and supporting materials, and make both of them reach the optimal state, so it is the best choice for supporting the soft rock tunnels with large deformations. © 2018, Editorial Office of "Modern Tunnelling Technology". All right reserved. 相似文献
170.
Considering the influence of many factors (soil loss, frontal additional thrust, the friction force of the shield shell and the additional grouting force), a method for improving the uniform soil body movement model is pro-posed, and a mechanical calculation model is established to study the calculation method for soil body deformation caused by double-line parallel shield driving. Based on the Mindlin solutions of elastic mechanics, the theoretical solutions for soil body deformations caused by the last three factors are calculated; considering the uniform soil body movement model, the theoretical solutions for soil body deformations caused by soil loss are calculated, then the to-tal theoretical solutions for soil body deformations under multiple factors are obtained by means of superposition. The vertical surface settlement, vertical horizontal displacement, and vertical displacements of the soil body at different depths of Hangzhou Metro Line 1 are calculated to analyze the variation laws. Meanwhile the influential factors for horizontal displacement variation are studied. The research shows that with a change of depth, the settlement of the soil body changes within the scope of 10 to 13 m in the horizontal direction near where the maximum settlement occurs;the direction of the horizontal displacement of the soil body changes with a change of the positional relationship be-tween the calculation points and the tunnel; and with an increase of interval J for the two tunnels, the horizontal dis-placement of the soil body of a deep double-line tunnel decreases while the displacement near the surface changes slightly. © 2018, Editorial Office of "Modern Tunnelling Technology". All right reserved. 相似文献