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首页> 外文期刊>Journal of geotechnical and geoenvironmental engineering >Long-Term Reinforcement Load of Geosynthetic-Reinforced Soil Retaining Walls
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Long-Term Reinforcement Load of Geosynthetic-Reinforced Soil Retaining Walls

机译:土工加筋土挡墙的长期加固载荷

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摘要

As increasing number of geosynthetic-reinforced soil (GRS) retaining walls are built for permanent purpose, and their long-term behaviors have become one of the most critical issues in design. However, there has been very limited study on long-term reinforcement load and its relation to various parameters of GRS walls. A finite-element procedure for the long-term response of geosynthetic-reinforced soil structures with granular backfills was first validated against the long-term model test. Extensive finite-element analyses considering the viscous properties of geosynthetic reinforcements were then carried out to investigate the load distributions in geosynthetic reinforcements of GRS walls under operational condition. Construction sequence was simulated and a creep analysis of 10 years was subsequently conducted on each model wall. The effects of wall parameters, including backfill soil, reinforcement length, reinforcement spacing, reinforcement stiffness, and creep rate of reinforcement were investigated. It is found from the analyses that: (1) the maximum reinforcement load of GRS walls under working stress condition was generally smaller than that estimated using the FHwA design but it is dependent on the global reinforcement stiffness S_(global); (2) the surface of maximum reinforcement load did not coincide with the Rankine's surface suggested by FHwA design guidelines for vertical GRS walls and it was affected by the strength of backfill soil, reinforcement length, reinforcement spacing, and reinforcement stiffness; (3) for GRS walls under operational condition, reinforcement loads were closely related to the mobilized stiffness of backfill soil; (4) isochrone curves can be used to interpret the effects of reinforcement stiffness and creep rate on both short-term and long-term performances of GRS walls under operational condition, and with an increase in the reinforcement stiffness, the maximum reinforcement load increased; and (5) the global reinforcement stiffness S_(global), which is related to the isochrones stiffness of reinforcement as well as reinforcement spacing was related to the total reinforcement load T_(total)~(max) and with an increase in the global stiffness, the total reinforcement load increased.
机译:随着越来越多的土工合成材料加筋土(GRS)挡土墙用于永久性目的,其长期性能已成为设计中最关键的问题之一。但是,关于长期钢筋荷载及其与GRS墙各种参数的关系的研究非常有限。首先通过长期模型测试验证了有限元程序对带有颗粒回填的土工合成材料加筋的土壤结构的长期响应。然后,考虑土工合成材料加筋的粘性特性,进行了广泛的有限元分析,以研究在运行条件下GRS墙土工合成材料加筋中的载荷分布。模拟了施工顺序,随后对每个模型墙进行了10年的蠕变分析。研究了墙体参数(包括回填土,钢筋长度,钢筋间距,钢筋刚度和钢筋蠕变速率)的影响。从分析中发现:(1)在工作应力条件下,GRS墙的最大加固载荷通常小于使用FHwA设计估算的值,但它取决于整体加固刚度S_(global); (2)最大补强荷载的表面与FHwA垂直GRS墙设计指南建议的兰金表面不一致,并且受回填土的强度,补强长度,补强间距和补强刚度的影响; (3)在工作条件下的GRS墙,加筋荷载与回填土的动刚度密切相关; (4)等时线曲线可以用来解释在工作条件下加筋刚度和蠕变速率对GRS墙的短期和长期性能的影响,并且随着加筋刚度的增加,最大加筋载荷增加; (5)与钢筋等时线刚度以及钢筋间距有关的整体钢筋刚度S_(global)与总钢筋载荷T_(total)〜(max)有关,并且随着整体刚度的增加而增加。 ,总加固载荷增加。

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