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A Practical Approach For Modeling Frp Wrapped Concrete Columns

机译:Frp包裹混凝土柱建模的实用方法

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Fiber reinforced polymers (FRP) have gained rapid popularity in recent years as one of the strengthening techniques of structural concrete elements. Particularly, increase in the use of FRP composite materials for strengthening and retrofitting of reinforced concrete columns has urged the development of several approaches to determine their compressive strength. Although substantial experimental and analytical researches have been conducted to model and simulate the response of concrete confined with FRP jackets under concentric loading, there is still an apparent need for the detail analyses and efficient numerical models to further understand the stress-strain behavior and failure mechanisms of the confined concrete. In order to predict the compressive behavior of concrete even under high confinement pressures, this paper introduces new relations for calculation of the cohesion parameter of Drucker-Prager criterion in terms of cylindrical compressive strength only. These relations are developed from a parametric study of a large number of nonlinear finite element analyses (NLFFEA) of FRP wrapped concrete columns to account for the axial load level and the shape of the stress-strain curve. Incorporating a realistic one-parameter failure criterion of concrete, the failure cone of Drucker-Prager model is enforced to approximate and coincide with the whole compressive meridian of the criterion up to the analytically predicted point of the ultimate hydrostatic pressure in the analyses. Based on this failure cone, mainly seven different relations corresponding to the various levels of lateral pressure are proposed for the compressive meridian and the cohesion while keeping the internal friction angle as a constant value of 33°. The proposed approach is shown to fit quite well the experimental results of 42 specimens tested by eight different researchers, for various square and rectangular cross-sections under concentric loading.
机译:纤维增强聚合物(FRP)作为结构混凝土构件的增强技术之一,近年来已迅速普及。尤其是,越来越多地使用FRP复合材料来加固和翻新钢筋混凝土柱,这促使人们开发了几种确定其抗压强度的方法。尽管已经进行了大量的实验和分析研究来建模和模拟在同心荷载下用FRP夹套约束的混凝土的响应,但是仍然显然需要详细的分析和有效的数值模型来进一步了解应力应变行为和破坏机理承压混凝土。为了预测即使在高围压下混凝土的抗压性能,本文也引入了仅基于圆柱抗压强度来计算Drucker-Prager准则内聚参数的新关系。这些关系是通过对FRP包裹混凝土柱进行大量非线性有限元分析(NLFFEA)的参数研究得出的,以说明轴向载荷水平和应力应变曲线的形状。结合现实的混凝土一参数破坏准则,将Drucker-Prager模型的破坏锥逼近该准则的整个压缩子午线并与之吻合,直到分析中的最终静水压力的分析预测点为止。基于这个破坏锥,主要针对压缩子午线和内聚力提出了七个与不同侧向压力水平相对应的不同关系,同时将内部摩擦角保持为33°的恒定值。结果表明,对于同心载荷下各种正方形和矩形横截面,由八名不同研究人员测试的42个样品的实验结果非常吻合。

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