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首页> 外文期刊>Journal of structural engineering >Physically Based Cyclic Tensile Model for RC Membrane Elements
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Physically Based Cyclic Tensile Model for RC Membrane Elements

机译:RC膜单元的基于物理的循环拉伸模型

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A physically based tensile model for RC membrane elements subjected to cyclic loading conditions is presented. Average concrete stresses are derived from equilibrium, compatibility, and constitutive relationships of a cracked RC element under biaxial stress-strain conditions. Cyclic bond degradation is explicitly accounted for in the equations governing tension-stiffening, crack-closing, and crack-opening. The proposed tensile model is combined with a compressive cyclic model to fully describe the axial response in the normal and parallel-to-the-crack directions. Along the crack, the constitutive model for shear is based on a new shear modulus, which allows divergence between principle stress and strain directions while satisfying equilibrium and compatibility conditions. The model is implemented within a fixed-crack membrane finite element and verified against experimental tests on shear panels and RC walls.
机译:提出了基于RC膜元件在循环载荷条件下的基于物理的拉伸模型。平均混凝土应力是从双轴应力-应变条件下开裂的RC元件的平衡,相容性和本构关系得出的。在控制张力刚度,裂纹闭合和裂纹张开的方程式中,明确考虑了环状键的降解。所提出的拉伸模型与压缩循环模型相结合,以充分描述法向和平行于裂纹方向的轴向响应。沿着裂缝,剪切本构模型基于新的剪切模量,该模量允许主应力和应变方向之间出现发散,同时满足平衡和相容性条件。该模型在固定裂纹膜有限元内实现,并通过在剪力板和RC壁上的实验测试进行了验证。

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