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再生橡胶混凝土中圆形和混合骨料的细观分析

Mesoscopic Analysis of Rounded and Hybrid Aggregates in Recycled Rubber Concrete.

作者信息

Kamel Mahmoud M A, Fu Yu, Feng Xiaowei, Peng Yijiang

机构信息

Key Laboratory of Urban Security and Disaster Engineering, Ministry of Education, Beijing University of Technology, Beijing 100124, China.

Department of Architecture, Built Environment and Construction Engineering, Politecnico di Milano, 20133 Milano, Italy.

出版信息

Materials (Basel). 2023 Oct 8;16(19):6600. doi: 10.3390/ma16196600.

Abstract

Recycled rubber concrete (RRC), a sustainable building material, provides a solution to the environmental issues posed by rubber waste. This research introduces a sophisticated hybrid random aggregate model for RRC. The model is established by combining convex polygon aggregates and rounded rubber co-casting schemes with supplemental tools developed in MATLAB and Fortran for processing. Numerical analyses, based on the base force element method (BFEM) of the complementary energy principle, are performed on RRC's uniaxial tensile and compressive behaviors using the proposed aggregate models. This study identified the interfacial transition zone (ITZ) around the rubber as RRC's weakest area. Here, cracks originate and progress to the aggregate, leading to widespread cracking. Primary cracks form perpendicular to the load under tension, whereas bifurcated cracks result from compression, echoing conventional concrete's failure mechanisms. Additionally, the hybrid aggregate model outperformed the rounded aggregate model, exhibiting closer peak strengths and more accurate aggregate shapes. The method's validity is supported by experimental findings, resulting In detailed stress-strain curves and damage contour diagrams.

摘要

再生橡胶混凝土(RRC)作为一种可持续建筑材料,为橡胶废料带来的环境问题提供了解决方案。本研究引入了一种复杂的RRC混合随机骨料模型。该模型通过将凸多边形骨料和圆形橡胶共浇筑方案与在MATLAB和Fortran中开发的用于处理的补充工具相结合而建立。基于余能原理的基力元法(BFEM),使用所提出的骨料模型对RRC的单轴拉伸和压缩行为进行了数值分析。本研究确定橡胶周围的界面过渡区(ITZ)是RRC最薄弱的区域。在这里,裂缝产生并向骨料发展,导致广泛开裂。拉伸时,主裂缝垂直于荷载形成,而压缩时产生分叉裂缝,这与传统混凝土的破坏机制相似。此外,混合骨料模型优于圆形骨料模型,表现出更接近的峰值强度和更精确的骨料形状。实验结果支持了该方法的有效性,得出了详细的应力-应变曲线和损伤轮廓图。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c9f0/10574715/baa7c11c617e/materials-16-06600-g001.jpg

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