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首页> 外文期刊>Transportation Research Record >Instrumentation and Analysis of High-Performance Concrete Bridge Decks
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Instrumentation and Analysis of High-Performance Concrete Bridge Decks

机译:高性能混凝土桥面板的检测与分析

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摘要

The use of high-performance concrete (HPC) for transportation structures was the subject of a 3-year study that involved field investigation, laboratory experiments, analysis, and modeling. The field study involved instrumentation and analysis of six HPC bridge decks. The laboratory component characterized early-age thermal, shrinkage, creep, and cracking behaviors. A three-dimensional finite element model was used in conjunction with material models to analyze and predict creep and shrinkage behavior and to investigate structural and material interactions. This paper focuses on the field component of the project and discusses the instrumentation, deformation measurements, and analysis of bridge decks in Illinois. The bridges were instrumented to understand the development of shrinkage and thermal stress in concrete bridge decks with the use of various materials and structural components. The results indicate that the stress development due to daily temperature cycles and long-term temperature changes are relatively small compared with the stress development due to drying shrinkage. According to model simulations, a 15% to 40% reduction in shrinkage would reduce the stress level enough to prevent most cracking. Although drying shrinkage is the major driving force for stress development, the interaction of concrete shrinkage and structural restraint influences the magnitude of the stress and is linked to the propensity for early-age cracking.
机译:为期3年的研究主题是在运输结构中使用高性能混凝土(HPC),涉及现场调查,实验室实验,分析和建模。现场研究涉及对6个HPC桥面板的检测和分析。实验室组件表征了早期的热,收缩,蠕变和开裂行为。三维有限元模型与材料模型一起用于分析和预测蠕变和收缩行为,并研究结构和材料之间的相互作用。本文重点关注该项目的现场组件,并讨论了伊利诺伊州桥梁桥面的检测,变形测量和分析。通过使用各种材料和结构部件,对桥梁进行了仪器测试,以了解混凝土桥面板中收缩和热应力的发展。结果表明,与干燥收缩引起的应力发展相比,日常温度循环和长期温度变化引起的应力发展相对较小。根据模型仿真,收缩率降低15%到40%将足以降低应力水平,以防止出现大多数裂纹。尽管干燥收缩是应力发展的主要驱动力,但混凝土收缩与结构约束的相互作用会影响应力的大小,并与早期开裂的倾向有关。

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