Predictive Behaviour from Finite Element Analysis on PVC-Ducted Reinforced Concrete Column

Felix Kwarteng, Charles K. Kankam, J. O. Banahene, George Oti Boateng, E. Mansal
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Abstract

This research investigated the behaviour of square reinforced concrete columns with embedded PVC pipes, aiming to comprehensively analyze their performance. The study addressed the lack of significant research on the contributions and effects of embedded PVC pipes on structural performance compared to hollow columns. The objectives of the study sought to evaluate the contributions and effects of embedded PVC pipes on the structural performance of columns under loading conditions, determine how the presence of PVC pipes influenced the columns' ability to deform and dissipate energy, and identify the optimal size of PVC pipes to enhance column performance while maintaining stability and safety. Numerical analysis using ABAQUS CEA 2020 software was employed to simulate the behavior of reinforced concrete columns with embedded PVC pipes. The computational model used the same cross-sections with varying diameters of PVC pipes (50mm, 75mm and 100mm). The analysis focused on assessing load-bearing capacities, deformation characteristics, and energy dissipation patterns under axial vertical displacement loading scenario. Findings indicated that PVC-embedded columns exhibit, on average, approximately 0.5% higher load-bearing capacities than Perforated columns. With a composite average of 0.00543 for plastic strains (LE) in PVC-Embedded columns compared to 0.00673 in Perforated columns, a composite average of 5.87E-03 for Equivalent Plastic Strains (PEEQ) in PVC-Embedded columns compared to 7.41E-03 in Perforated columns, and a composite average of 0.0091 for Magnetic Potential Energy (PEMag) in PVC-Embedded columns compared to 0.012 in Perforated columns, collectively suggested that PVC pipes positively impact controlled deformation and energy dissipation. The observed trend is particularly evident in specific instances, with PVC-Embedded-50mm exhibiting a marginal load-bearing increase of approximately 0.2%, PVC-Embedded-75mm indicating an improvement of about 0.5%, and PVC-Embedded-100mm manifesting a load-bearing capacity increase of roughly 0.7%. Overall, these findings highlight that smaller sizes of embedded PVC pipes result in better load-bearing performance. The study recommended meticulous attention to material composition and structural design during PVC-embedded column implementation, careful selection of PVC pipe sizes based on structural requirements and project specifications, further research on dynamic loading conditions to comprehensively understand column behavior, and implementation of stringent quality control measures during manufacturing and construction processes.
通过有限元分析预测 PVC 管道钢筋混凝土柱的行为
本研究调查了埋有聚氯乙烯管的方形钢筋混凝土柱的行为,旨在全面分析其性能。与空心柱相比,关于嵌入式聚氯乙烯管对结构性能的贡献和影响的研究较少。研究的目标是评估预埋 PVC 管在加载条件下对柱子结构性能的贡献和影响,确定 PVC 管的存在如何影响柱子的变形和消能能力,并确定 PVC 管的最佳尺寸,以在保持稳定性和安全性的同时提高柱子的性能。使用 ABAQUS CEA 2020 软件进行了数值分析,以模拟埋有 PVC 管的钢筋混凝土柱的行为。计算模型使用了相同的截面和不同直径的 PVC 管(50 毫米、75 毫米和 100 毫米)。分析重点是评估轴向垂直位移加载情况下的承载能力、变形特征和能量耗散模式。研究结果表明,嵌入式聚氯乙烯管柱的承载能力平均比穿孔管柱高出约 0.5%。聚氯乙烯嵌入式柱的塑性应变(LE)综合平均值为 0.00543,而穿孔柱为 0.00673;聚氯乙烯嵌入式柱的等效塑性应变(PEEQ)综合平均值为 5.87E-03,而穿孔柱为 7.41E-03;聚氯乙烯嵌入式柱的磁势能(PEMag)综合平均值为 0.0091,而穿孔柱为 0.012。观察到的趋势在特定情况下尤为明显,PVC-50 毫米嵌入式管材的承重能力略微提高了约 0.2%,PVC-75 毫米嵌入式管材的承重能力提高了约 0.5%,PVC-100 毫米嵌入式管材的承重能力提高了约 0.7%。总之,这些研究结果表明,嵌入式聚氯乙烯管道的尺寸越小,承重性能越好。研究建议,在实施聚氯乙烯预埋柱过程中,应仔细关注材料成分和结构设计,根据结构要求和项目规范仔细选择聚氯乙烯管的尺寸,进一步研究动态加载条件以全面了解柱子的行为,并在制造和施工过程中实施严格的质量控制措施。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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