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Internal stability analyses of geosynthetic reinforced retaining walls.

机译:土工合成材料加筋挡土墙的内部稳定性分析。

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摘要

Present internal stability analyses of geosynthetic reinforced soil (GRS) retaining structures are based on the limit state approach. Design methods based on this approach, such as tie-back wedge method, do not provide performance information of GRS walls and also have been found to over-predict the stress levels inside the GRS retaining structures. Working stress analyses of GRS walls are needed to improve the internal stability design as well as the performance prediction of the GRS walls.; In this research, material properties such as plane strain soil properties, low confining pressure soil dilation angle, and in-soil and low strain rate geosynthetic reinforcement properties were carefully investigated. Modeling techniques that are able to predict both internal and external performance of GRS walls at the same time were also developed. Instrumentation measurements such as wall deflection and reinforcement strain distributions of the selected case histories were successfully reproduced by numerical models developed using these modeling techniques. Moreover, the developed modeling techniques were further verified by performing Class A predictions of three laboratory test walls. Results of the Class A predictions appear to be successful as well.; An extensive parametric study that included more than 250 numerical models was then performed in this research. Influences of design factors of GRS walls such as soil properties, reinforcement stiffness, and reinforcement spacing on the performance were carefully investigated. Moreover, effects of design options such as toe restraint and structural facing systems on the performance of the GRS walls were also examined in this parametric study. In addition, analytical models of the composite GRS modulus and lateral reinforced earth pressure distribution that analyze the behavior of the geosynthetic reinforced soil were also developed in order to analyze the results of the parametric study.; In this research, effort was also made to develop the analytical model for the stress-strain relationship of a GRS composite element. The developed analytical model was used to examine the reinforcing effects of the geosynthetic reinforcement to the soil, as well as to develop composite numerical models for analyzing performance of GRS retaining structures.; Finally new performance prediction methods based on the result of the parametric study and design recommendations for the internal stability design of GRS walls were obtained.
机译:目前,土工合成材料加筋土(GRS)挡土结构的内部稳定性分析基于极限状态法。基于这种方法的设计方法(例如,后绑楔形方法)无法提供GRS墙的性能信息,而且还发现它们会过度预测GRS挡土结构内部的应力水平。需要对GRS墙进行工作应力分析以改善内部稳定性设计以及GRS墙的性能预测。在这项研究中,仔细研究了材料特性,例如平面应变土壤特性,低围压土壤膨胀角以及土壤和低应变率土工合成材料的增强特性。还开发了能够同时预测GRS墙的内部和外部性能的建模技术。通过使用这些建模技术开发的数值模型,可以成功地重现所选案例历史的仪器测量结果,例如墙的挠度和钢筋应变分布。此外,通过对三个实验室测试墙进行A类预测,进一步验证了开发的建模技术。 A级预测的结果似乎也很成功。然后在这项研究中进行了包含250多个数值模型的广泛参数研究。仔细研究了GRS墙的设计因素,例如土壤性能,钢筋刚度和钢筋间距对性能的影响。此外,在此参数研究中还检查了设计选项(如脚趾约束和结构饰面系统)对GRS墙的性能的影响。此外,还开发了用于分析土工合成加筋土性能的复合GRS模量和侧向加筋土压力分布的分析模型,以分析参数研究的结果。在这项研究中,还努力开发了GRS复合元件的应力-应变关系分析模型。开发的分析模型用于检验土工合成材料对土壤的增强效果,并开发用于分析GRS挡土结构性能的复合数值模型。最后,根据参数研究的结果,提出了新的性能预测方法,并为GRS墙的内部稳定性设计提供了设计建议。

著录项

  • 作者

    Lee, Wei Feng.;

  • 作者单位

    University of Washington.;

  • 授予单位 University of Washington.;
  • 学科 Engineering Civil.; Geotechnology.
  • 学位 Ph.D.
  • 年度 2000
  • 页码 380 p.
  • 总页数 380
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 建筑科学;地质学;
  • 关键词

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