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Time-dependent serviceability behavior of reinforced concrete beams: Partial interaction tension stiffening mechanics

机译:钢筋混凝土梁随时间变化的可使用性行为:局部相互作用拉力加劲力学

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摘要

The partial interaction (PI) mechanics of tension stiffening governs crack widening and the consequential deflection of reinforced concrete (RC) beams and, therefore, is essential in the serviceability design of RC structures. Both behaviors are dependent on the PI global load slip behavior of the tensile reinforcement relative to the surrounding concrete at a crack face, which in turn is dependent on the local PI material bond-stress/slip relationship between the reinforcement and adjacent concrete. Due to the complexity of PI theory, it has been difficult to directly incorporate PI mechanics into design procedures. Consequently, empirical approaches to quantify effective flexural rigidities and crack widths are commonplace. While empirical approaches can be derived relatively simply for short-term loading, the influence of concrete shrinkage and creep is difficult to incorporate. In this paper, pure mechanics-based PI solutions to describe the crack spacing and tension stiffening behavior of RC beams subjected to long-term loads are derived. They only require material properties and clearly show the interaction among shrinkage, creep and bond properties. They are simple enough to use directly in design and will help in the experimental derivation of the material properties. The results of these PI analyses are used in a companion paper to develop design rules for the time-dependent serviceability deflection of RC beams and compared with test results.
机译:拉伸加劲的局部相互作用(PI)力学控制裂纹扩展和钢筋混凝土(RC)梁的相应挠度,因此,对于RC结构的可使用性设计至关重要。两种行为都取决于抗张钢筋在裂缝面上相对于周围混凝土的PI整体荷载滑移行为,而PI整体荷载滑移行为又取决于钢筋与相邻混凝土之间的局部PI材料粘结-应力/滑移关系。由于PI理论的复杂性,很难将PI机制直接整合到设计程序中。因此,量化有效抗弯刚度和裂缝宽度的经验方法是司空见惯的。尽管可以相对简单地得出短期荷载的经验方法,但混凝土收缩和蠕变的影响很难纳入。本文推导了基于纯力学的PI解,描述了承受长期荷载的RC梁的裂缝间距和抗拉刚度行为。它们仅需要材料特性,并清楚显示收缩,蠕变和粘结特性之间的相互作用。它们足够简单,可以直接用于设计中,并且将有助于实验推导材料特性。这些PI分析的结果在随附的论文中用于为钢筋混凝土梁随时间变化的适用性挠度制定设计规则,并与测试结果进行比较。

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