首页> 外文会议>International Conference on Damage Assessment of Structures;DAMAS; 20070625-27;20070625-27; Torino(IT);Torino(IT) >Distributions of Local Damage Variable and Local Plastic Tensile Strain and Precursors to Failure of Quasi-Brittle Pure Bending Beam
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Distributions of Local Damage Variable and Local Plastic Tensile Strain and Precursors to Failure of Quasi-Brittle Pure Bending Beam

机译:准脆性纯弯曲梁破坏的局部损伤变量和局部塑性拉伸应变及先兆的分布

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摘要

For many quasi-brittle materials (such as rock, ceramic and concrete) in pure bending state, the material on the tensile side will fail firstly since the compressive strength can be ten times the tensile strength. After tensile strain localization zone is initiated in the midspan of the beam, its propagation direction will be perpendicular to the neutral axis. In the paper, using nonlocal theory or gradient-dependent plasticity, the distributions of local plastic tensile strain and local damage variable in tensile strain localization zone of a pure bending beam are analyzed theoretically. The evolutions of the maximum local plastic tensile strain, the maximum local damage variable and the bending moment with tensile stress acting on the tensile side are presented through examples. The distributions of local plastic tensile strain and local damage variable in tensile strain localization zone are highly nonuniform due to microstructural effect. When the maximum bending moment is reached, the maximum local damage variable is proportional to the ratio of elastic modulus to elastoplastic modulus, while the maximum local plastic tensile strain is inversely proportional to elastic modulus and elastoplastic modulus. For quasi-brittle materials, the elastoplastic modulus that is a constitutive parameter equal to the absolute value of the slope of tensile stress-tensile strain curve in strain-softening stage is much higher. The present theoretical results mean that the precursors to failure are less apparent for extremely brittle materials.
机译:对于许多处于纯弯曲状态的准脆性材料(例如岩石,陶瓷和混凝土),由于抗压强度可能是抗拉强度的十倍,因此抗拉材料首先会失效。在梁的中跨处开始拉伸应变局部化区域后,其传播方向将垂直于中性轴。本文运用非局部理论或梯度相关塑性理论,对纯弯曲梁的局部塑性拉伸应变和局部损伤变量在纯弯曲梁局部拉伸区内的分布进行了分析。通过实例介绍了最大局部塑性拉伸应变,最大局部损伤变量和在拉伸侧作用有拉伸应力的弯矩的演变。由于微观结构的影响,局部塑性拉伸应变和局部损伤变量在拉伸应变局部区域的分布是非常不均匀的。当达到最大弯矩时,最大局部损伤变量与弹性模量与弹塑性模量之比成正比,而最大局部塑性拉伸应变与弹性模量和弹塑性模量成反比。对于准脆性材料,在应变软化阶段,作为本构参数等于拉伸应力-拉伸应变曲线的斜率的绝对值的弹塑性模量要高得多。目前的理论结果表明,对于极脆的材料,破坏的前兆不太明显。

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