考虑打印层厚度和打印时间间隔的挤压型3d打印混凝土力学性能

IF 3.9 2区 工程技术 Q1 ENGINEERING, CIVIL
Boyang Tang , Jiachuan Yan , Xiaoyu Han , Yini Lin , Feng Fan
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引用次数: 0

摘要

本文研究了3D打印混凝土的性能,重点研究了粘结层,考虑了打印层的厚度。通过实验测试和数值模拟,深入分析了粘结层的力学性能和破坏机理。结果表明:层数越薄、打印间隔越长,抗压强度越低,各向异性力学性能越明显;对3D打印混凝土拱的静力性能进行了研究,结果表明,层厚的增加可以提高混凝土拱的极限承载能力。内聚元素用于模拟不同层厚度和打印时间间隔的抗压强度。建立了抗压强度预测公式,并通过实验数据进行了验证。进一步采用内聚单元和各向异性材料特性对拱的静力性能进行了模拟,验证了强度预测公式的准确性和模拟方法的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Mechanical properties of extrusion-based 3D-printed concrete considering the thickness of the printed layer and printing time interval
This paper investigated the performance of 3D printed concrete with a focus on the bonding layer, considering the thickness of the printed layers. Through experimental testing and numerical simulation, the mechanical properties and failure mechanisms of the bonding layer were thoroughly analyzed. The results revealed that compressive strength diminishes with thinner layers and longer printing intervals, while anisotropic mechanical properties become increasingly pronounced with reduced layer thickness. The static performance of 3D printed concrete arches was also studied, showing that increased layer thickness enhances the ultimate load bearing capacity. Cohesive elements were used to simulate compressive strength across varying layer thicknesses and printing time intervals. Prediction formulae for compressive strength were developed and validated through experimental data. The study further simulated the static performance of arches using both cohesive elements and anisotropic material properties, confirming the accuracy of the strength prediction formulae and the effectiveness of the simulation methods.
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来源期刊
Structures
Structures Engineering-Architecture
CiteScore
5.70
自引率
17.10%
发文量
1187
期刊介绍: Structures aims to publish internationally-leading research across the full breadth of structural engineering. Papers for Structures are particularly welcome in which high-quality research will benefit from wide readership of academics and practitioners such that not only high citation rates but also tangible industrial-related pathways to impact are achieved.
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