受弯钢筋混凝土梁荷载-挠度曲线挤压效应的理解和现象建模

IF 1.9 4区 工程技术 Q3 MECHANICS
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引用次数: 0

摘要

对钢筋混凝土(RC)结构地震响应的可靠预测取决于对其组成元素周期行为的精确建模。RC 梁的荷载-挠度曲线呈现出与能量耗散相对应的夹滞模式。在地震荷载条件下经常可以观察到这种挤压效应,它反映了在某些荷载阶段刚度和耗能能力的降低。尽管这种现象非常重要,但现有文献对其背后的详细机理仍未充分探讨。本文旨在通过提出简化模型,直接体现裂缝尺度上的挤压效应,从而弥补这一不足。该模型基于对剪应力相互作用和裂缝闭合动力学的全面分析,而剪应力相互作用和裂缝闭合动力学被假定为造成挤压现象的主要因素。我们的方法包括对滞后环的面积和形状进行细致的检查,以便于估算等效粘性阻尼比,从而在地震模拟中表示能量耗散,而不管结构的损伤或延性水平如何变化。本文分为三个主要部分:第一部分强调了在地震分析中细致理解挤压效应的重要性。第二部分进行了广泛的文献综述,巩固了对挤压现象本质的重要认识。第三部分详细介绍了所提出的介观模型的开发和应用,强调了各种几何和材料参数对挤压效应的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Understanding and phenomenological modeling of the pinching effect of the load–deflection curve of reinforced concrete beams subjected to bending

The reliable prediction of the seismic response of reinforced concrete (RC) structures hinges on accurate modeling of the cyclic behavior of their constituent elements. The load–deflection curve in RC beams exhibits a pinched hysteresis pattern corresponding to energy dissipations. This pinching effect, often observed under seismic loading conditions, reflects a reduction in stiffness and energy dissipation capacity at certain loading stages. Despite its significance, the detailed mechanisms underlying this phenomenon remain underexplored in existing literature. This paper aims to address this gap by presenting simplified models that directly represents the pinching effect at the crack scale. The model is grounded in a comprehensive analysis of shear stress interactions and crack closure dynamics, hypothesized as primary contributors to the pinching phenomenon. Our approach involves a meticulous examination of the hysteresis loops’ area and shape, facilitating the estimation of an equivalent viscous damping ratio to represent energy dissipation in seismic simulations, irrespective of changes in the structure’s damage or ductility levels. The paper unfolds in three key sections: The first section underscores the significance of a nuanced understanding of the pinching effect in seismic analysis. The second section presents an extensive literature review, consolidating crucial insights into the nature of the pinching phenomenon. The third section details the development and application of the proposed mesoscopic model, highlighting the impact of various geometrical and material parameters on the pinching effect.

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来源期刊
CiteScore
4.10
自引率
4.20%
发文量
114
审稿时长
9 months
期刊介绍: Mechanics Research Communications publishes, as rapidly as possible, peer-reviewed manuscripts of high standards but restricted length. It aims to provide: • a fast means of communication • an exchange of ideas among workers in mechanics • an effective method of bringing new results quickly to the public • an informal vehicle for the discussion • of ideas that may still be in the formative stages The field of Mechanics will be understood to encompass the behavior of continua, fluids, solids, particles and their mixtures. Submissions must contain a strong, novel contribution to the field of mechanics, and ideally should be focused on current issues in the field involving theoretical, experimental and/or applied research, preferably within the broad expertise encompassed by the Board of Associate Editors. Deviations from these areas should be discussed in advance with the Editor-in-Chief.
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