随剪力配筋变化的自密实混凝土数值模型分析

Q2 Materials Science Engineering Solid Mechanics Pub Date : 2023-01-01 DOI:10.5267/j.esm.2022.8.002
S. Nurjannah, S. Saloma, Yulindasari Yulindasari, K. Aminuddin, Gilbert Chuhairy
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引用次数: 2

摘要

钢筋混凝土墙体临界区是地震消散荷载的响应区。它们是在墙板和固定约束的连接处形成的。根据连接处要求的标称强度设计具有一定间距的纵向和横向钢筋。在一定条件下,钢筋间距变得非常紧,使使用普通混凝土的铸件难以工作。这种情况也发生在紧密空间中由纵向和横向加强组成的边界单元中。需要一种易于流动和固化的混凝土材料来避免离析。这种材料的一种是自密实混凝土(SCC)。SCC作为墙体材料,其承受重力和循环侧向荷载的性能仍需进一步研究。本研究旨在分析随剪力配筋变化的加筋SCC墙板在抵抗循环侧向荷载时的滞回性能。采用基于数值分析的软件进行分析。分析了墙板的漂移比、滞回曲线、应力模式、延性和刚度。普通抗剪配筋SCC墙板分别承受了152.32 kN和143.09 kN的侧向正、负荷载。边界单元加更紧抗剪筋的墙板可承受的正、负侧向荷载分别为187.62 kN和145.98 kN。采用普通抗剪配筋的SCC墙板由于屈服发生速度快于其他墙板,其延性达到21.38,达到最佳。结果表明:加筋混凝土墙板的边界单元和剪力加筋对其抗侧循环荷载性能有较大影响。
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The analysis of numerical self-compacting concrete wall panel models with variations of shear reinforcement
Reinforced concrete wall critical zones are the responsive areas of dissipated earthquake loads. They are formed in the connection of the wall panels and the fixed restraints. The longitudinal and transversal steel reinforcements with certain spacing are designed according to the required nominal strength at the connections. Under certain conditions, the reinforcement distance becomes very tight, making working on castings using normal concrete difficult. This condition also occurs in boundary elements consisting of longitudinal and transversal reinforcements in tight spaces. A concrete material that flows easily and solidifies itself is required to avoid segregation. One type of this material is Self-Compacting Concrete (SCC). The SCC performance as a wall panel material that withstands gravity and cyclic lateral loads still require further research. This study aimed to analyze the hysteretic performance of reinforced SCC wall panels with variations of shear reinforcement in resisting cyclic lateral loads. The analysis used software based on numerical analysis. The drift ratios, hysteretic curves, stress patterns, ductility, and stiffness of the wall panels were analyzed. The SCC wall panel with ordinary shear reinforcement resisted lateral positive and negative loads of 152.32 kN and 143.09 kN, respectively. In comparison, the wall panel with boundary elements and tighter shear reinforcements could withstand the positive and negative lateral loads of 187.62 kN and 145.98 kN, respectively. The SCC wall panel reached the best ductility of 21.38 with ordinary shear reinforcement because the yield occurred faster than in other wall panels. The results showed that the boundary elements and shear reinforcements of reinforced SCC wall panels affected the performance in resisting cyclic lateral loads.
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来源期刊
Engineering Solid Mechanics
Engineering Solid Mechanics Materials Science-Metals and Alloys
CiteScore
3.00
自引率
0.00%
发文量
21
期刊介绍: Engineering Solid Mechanics (ESM) is an online international journal for publishing high quality peer reviewed papers in the field of theoretical and applied solid mechanics. The primary focus is to exchange ideas about investigating behavior and properties of engineering materials (such as metals, composites, ceramics, polymers, FGMs, rocks and concretes, asphalt mixtures, bio and nano materials) and their mechanical characterization (including strength and deformation behavior, fatigue and fracture, stress measurements, etc.) through experimental, theoretical and numerical research studies. Researchers and practitioners (from deferent areas such as mechanical and manufacturing, aerospace, railway, bio-mechanics, civil and mining, materials and metallurgy, oil, gas and petroleum industries, pipeline, marine and offshore sectors) are encouraged to submit their original, unpublished contributions.
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