循环加载GFRP rc中墙:参数化研究

Ahmed attia m. Drar
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摘要

本文采用非线性有限元分析(FEA)对玻璃纤维增强聚合物(GFRP)筋加固的混凝土中高层墙体在反向循环荷载作用下同时暴露于轴向荷载下的性能进行了深入研究。就裂缝模式、破坏类型和荷载-横向位移滞回响应而言,有限元分析结果与一个GFRP钢筋混凝土中隔墙的实验结果相当。然后进行了参数研究,强调了墙边界纵向配筋率对不同设计特征的影响。结果表明,所建立的模型是稳定的,并且精确地模拟了实验所述的行为。研究还表明,虽然边界纵向配筋率对极限强度和横向刚度有显著影响,但它略微提高了耗能能力。开发一种对耗能有显著影响的技术,使GFRP RC中隔墙能够在强地震活动区使用,是必不可少的。强度、漂移能力、刚度、残余位移以及能量耗散能力。为了实现这一目标,研究了两种纵向配筋率:2.53%和3.95%,以及GnoX中采用的1.43%的垂直腹板配筋率。这是通过依次用#4和#5钢筋代替垂直的#3 GFRP钢筋来实现的,同时保持具有类似机械特征的水平腹板配筋率不变。应注意的是,考虑到边界尺寸为200mm×200mm,配筋率是有预谋的。为了便于参考,样品按顺序标记为G3、G4和G5。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
CYCLICALLY LOADED GFRP RC MID-RISE WALLS: PARAMETRIC RESEARCH
In this paper, nonlinear finite-element analysis (FEA) was handed to implement an in-depth examination on the behavior of concrete mid-rise walls reinforced with glass fiber reinforced polymer (GFRP) bars subjected to reversed cyclic loading while concurrently exposed to axial load. The FEA outcome was equated to the experimental outcomes of one GFRP-reinforced concrete mid-rise wall in-term of crack patterns, failure types and load–lateral displacement hysteretic response. A parametric research was then employed highlight the influence of longitudinal reinforcement ratio at wall boundary on diverse design features. It was displayed that the built model was steady and precisely simulated the experimentally stated behavior. The research also showed that while the boundary longitudinal reinforcement ratio had a remarkable effect on ultimate strength as well as the lateral stiffness, it slightly improved the energy dissipation capacity. Developing a technique with a noteworthy influence on energy dissipation that makes GFRP RC mid-rise walls competent to be used in strong seismic activity regions is indispensible. strength, drift capacity, stiffness, residual displacement as well as the energy dissipation capacity. Attending to this objective, two longitudinal reinforcement ratios were studied: 2.53% as well as 3.95%, along with the vertical web reinforcement ratio of 1.43% employed in GnoX. This was accomplished by substituting the vertical #3 GFRP bars with #4 in addition to #5 bars, in turn, whereas maintaining the unchanged horizontal web reinforcement ratio with the similar mechanical features. It should be distinguished that the reinforcement ratio was premeditated bearing in mind the boundary dimensions as 200mm × 200mm. For easiness of reference, the samplings were labeled as G3, G4, and G5, in that order.
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