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Analysis and Design Procedure for FRP-Strengthened Prestressed Concrete T-Girders Considering Strength and Fatigue

机译:考虑强度和疲劳的FRP加固预应力混凝土T梁分析与设计程序

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Controlling the prestressing strand-stress range in precracked prestressed concrete girders is critical in the FRP strengthening process to avoid long-term fatigue failures. This paper will address the details of a design procedure that was developed to satisfy target-strengthening requirements while imposing stress range serviceability limits. Two main CFRP fiexural strengthening designs were established for use in the experimental program herein. In the first, the amount of CFRP was designed to limit the average strand-stress range to 125 MPa (18 ksi), as per AASHTO requirements, under service live load while maintaining the service-ultimate moment relationship constant. The second design was intended to double the strand-stress range under service live load while keeping the same service-ultimate moment relationship. This was accomplished with iterative cycles of nonlinear sectional analysis to determine the amount of external CFRP reinforcement needed to yield both the targeted stress range and ultimate capacity. The girders were overly reinforced for shear with internal steel stirrups. However, external CFRP stirrups were used to prevent the longitudinal CFRP from premature separation and to develop full fiexural capacity. The ACI 318-05 model for shear friction was used for this purpose. The paper also presents analysis results to qualify the experimental behavior of the tested girders. Load-deflection, load-strain, and moment-strand stress variations are seen to have excellent correlation with corresponding experimental curves. CFRP is shown to develop higher strains across cracks relieving strand stresses at these critical locations.
机译:在预应力混凝土梁中,控制预应力钢绞线的应力范围对于FRP加固过程至关重要,以避免长期疲劳失效。本文将介绍设计过程的详细信息,该设计过程旨在满足目标增强要求,同时施加应力范围可使用性限制。建立了两个主要的CFRP弯曲加强设计,以用于本文的实验程序。首先,根据AASHTO的要求,设计CFRP的数量以将平均股线应力范围限制在125 MPa(18 ksi)下,并在服役活荷载下保持服役终极弯矩关系不变。第二种设计旨在使服役活荷载下的钢绞线应力范围加倍,同时保持相同的服役-最终弯矩关系。这是通过非线性截面分析的迭代循环来完成的,以确定确定目标应力范围和极限承载力所需的外部CFRP加固量。大梁用内部钢箍筋过分加固以进行剪切。但是,使用外部CFRP箍筋可防止纵向CFRP过早分离并发展出完全的髋部功能。为此,使用了ACI 318-05剪切摩擦模型。本文还提出了分析结果,以验证被测大梁的实验行为。可以看到载荷挠度,载荷应变和弯矩应力变化与相应的实验曲线具有极好的相关性。结果表明,CFRP可以在裂纹处产生更高的应变,从而缓解这些关键位置的应力。

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