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首页> 外文期刊>Journal of geotechnical and geoenvironmental engineering >In Situ Soil Response to Vibratory Loading and Its Relationship to Roller-Measured Soil Stiffness
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In Situ Soil Response to Vibratory Loading and Its Relationship to Roller-Measured Soil Stiffness

机译:原位土壤对振动载荷的响应及其与辊压测量的土壤刚度的关系

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摘要

An investigation was conducted to characterize and relate in situ soil stress-strain behavior to roller-measured soil stiffness. Continuous assessment of soil stiffness via roller vibration monitoring has the potential to significantly advance performance based quality assurance of earthwork. One vertically homogeneous and two layered test beds were carefully constructed with embedded sensors for the field testing program. Total normal stress and strain measurements at multiple depths reveal complex triaxial soil behavior during vibratory roller loading. Measured cyclic strain amplitudes were 15-25% of those measured during static roller passes due to viscoelas-ticity and curved drum/soil interaction. Low amplitude vibratory roller loading induces nonlinear in situ modulus behavior. Roller-measured stiffness and its dependence on excitation force is influenced by the stress-dependent modulus function of each soil, the varying drum/soil contact area, and by layer characteristics (modulus ratio, thickness) when layering is present. On vertically homogeneous clayey sand, roller-measured stiffness decreased with increasing excitation force, a behavior attributed to stress-dependent modulus reduction observed in situ. On the crushed rbck over silt test bed, roller-measured stiffness increased with increasing excitation force despite the mild stress-dependent modulus reduction observed in the crushed rock. In this case, the stiffer crushed rock takes on a greater portion of the load, resulting in the increase in roller-measured stiffness.
机译:进行了一项研究,以表征土壤应力应变行为并将其与辊测土壤刚度联系起来。通过压路机振动监测连续评估土壤刚度,有可能显着提高基于土方性能的性能保证。精心设计了一个垂直均匀且两层的测试床,并内置了用于现场测试程序的传感器。在多个深度的总法向应力和应变测量结果表明,在振动压路机加载过程中,复杂的三轴土行为。由于粘弹性和弯曲的滚筒/土壤相互作用,测得的循环应变幅度为静态辊通过时测得的15-25%。低振幅的振动辊载荷会引起非线性原位模量行为。辊测刚度及其对激振力的依赖关系受每种土壤的应力相关模量函数,变化的滚筒/土壤接触面积以及存在分层时的层特性(模量比,厚度)的影响。在垂直均质的黏性砂土上,随激振力的增加,辊测量的刚度会降低,这归因于原位观察到的应力相关模量降低。尽管在碎石中观察到轻微的应力相关模量降低,但在粉砂试验台上的碎石rbck上,辊压测量的刚度随激振力的增加而增加。在这种情况下,较坚硬的碎石承担了较大的负载,从而增加了用滚轮测量的刚度。

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