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Characterization of low-temperature properties of plant-produced rap mixtures in the Northeast.

机译:东北地区植物产生的说唱混合物的低温特性表征。

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摘要

The dissertation outlined herein results from a Federal Highway Administration sponsored project intended to investigate the impacts of high percentages of RAP material in the performance of pavements under cold climate conditions. It is comprised of two main sections that were incorporated into the body of this dissertation as Part I and Part II. In Part I a reduced testing framework for analysis of HMA mixes was proposed to replace the IDT creep compliance and strength testing by dynamic modulus and fatigue tests performed on an AMPT device. A continuum damage model that incorporates the nonlinear constitutive behavior of the HMA mixtures was also successfully implemented and validated. Mixtures with varying percentages of reclaimed material (RAP) ranging from 0 to 40% were used in this research effort in order to verify the applicability of the proposed methodology to RAP mixtures. Part II is concerned with evaluating the effects of various binder grades on the properties of plant-produced mixtures with various percentages of RAP. The effects of RAP on mechanical and rheological properties of mixtures and extracted binders were studied in order to identify some of the deficiencies in the current production methodologies. The results of this dissertation will help practitioners to identify optimal RAP usage from a material property perspective. It also establishes some guidelines and best practices for the use of higher RAP percentages in HMA.
机译:本文概述的论文来自联邦公路管理局资助的项目,该项目旨在研究高百分比的RAP材料在寒冷气候条件下对人行道性能的影响。它包括两个主要部分,分别作为第一部分和第二部分并入本文主体。在第一部分中,提出了一种简化的用于分析HMA混合物的测试框架,以通过在AMPT设备上执行的动态模量和疲劳测试来代替IDT蠕变柔度和强度测试。包含HMA混合物的非线性本构行为的连续损伤模型也已成功实施和验证。在本研究工作中,使用了百分比在0%到40%之间的再生材料(RAP)混合物,以验证所提出的方法对RAP混合物的适用性。第二部分涉及评估各种粘合剂等级对具有不同百分比的RAP的植物生产混合物的性能的影响。研究了RAP对混合物和提取的粘合剂的机械和流变性能的影响,以发现当前生产方法中的一些不足。论文的结果将有助于从材料属性的角度确定最佳的RAP用法。它还为在HMA中使用较高的RAP百分比建立了一些准则和最佳实践。

著录项

  • 作者单位

    University of New Hampshire.;

  • 授予单位 University of New Hampshire.;
  • 学科 Engineering Civil.;Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 136 p.
  • 总页数 136
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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