3D打印混凝土的机械性能:一项RILEM TC 304-ADC实验室间研究-弯曲和拉伸强度

IF 3.9 3区 工程技术 Q2 CONSTRUCTION & BUILDING TECHNOLOGY
Rob Wolfs, Jelle Versteege, Manu Santhanam, Shantanu Bhattacherjee, Freek Bos, Annika Robens-Radermacher, Shravan Muthukrishnan, Costantino Menna, Onur Ozturk, Nilufer Ozyurt, Josef Roupec, Christiane Richter, Jörg Jungwirth, Luiza Miranda, Rebecca Ammann, Jean-François Caron, Victor de Bono, Renate Monte, Iván Navarrete, Claudia Eugenin, Hélène Lombois-Burger, Bilal Baz, Maris Sinka, Alise Sapata, Ilhame Harbouz, Yamei Zhang, Zijian Jia, Jacques Kruger, Jean-Pierre Mostert, Katarina Šter, Aljoša Šajna, Abdelhak Kaci, Said Rahal, Chalermwut Snguanyat, Arun Arunothayan, Zengfeng Zhao, Inka Mai, Inken Jette Rasehorn, David Böhler, Niklas Freund, Dirk Lowke, Tobias Neef, Markus Taubert, Daniel Auer, C. Maximilian Hechtl, Maximilian Dahlenburg, Laura Esposito, Richard Buswell, John Kolawole, Muhammad Nura Isa, Xingzi Liu, Zhendi Wang, Kolluru Subramaniam, Viktor Mechtcherine
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引用次数: 0

摘要

本文基于RILEM TC 304-ADC实验室间力学性能研究结果,讨论了3D打印混凝土的弯曲和拉伸强度性能。根据规定的研究计划,使用不同的测试技术确定这些特性,包括3点和4点弯曲测试、劈裂测试和单轴拉伸测试,对从大型3D打印元件中提取的样品进行测试。分析了压缩强度、弯曲强度或拉伸强度、铸造或打印样品、不同类型的测试以及不同的加载方向之间的关系,以了解3D打印的影响。正如预期的那样,当主拉应力垂直于层间界面时,强度会显著降低。还评估了标准研究程序偏差的作用,如后续层放置之间的时间间隔,或采用不同的固化策略。虽然增加的时间间隔显著影响临界方向的强度,但使用可变的固化条件似乎对打印和铸造样品的强度比没有明显的影响。此外,本文着眼于打印标本结果的可变性,以强调需要多次重复才能获得适当的结果。本文对影响变率的各个方面进行了深入的研究。最后,由于有限的数据集可用于更大规模的样品测试,因此很难清楚地了解样品尺寸(即更大的层数)的作用。
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 3D printed concrete: a RILEM TC 304-ADC interlaboratory study — flexural and tensile strength

This paper discusses the flexural and tensile strength properties of 3D printed concrete, based on the results of a RILEM TC 304-ADC interlaboratory study on mechanical properties. These properties are determined using different testing techniques, including 3- and 4-point flexural tests, splitting tests, and uniaxial tension tests, on specimens extracted from large 3D printed elements in accordance with a prescribed study plan. The relationship between compressive and flexural or tensile strengths, cast or printed samples, different types of tests, and different loading orientations, are analysed to understand the influence of 3D printing. As expected, the strength can reduce significantly when the main tensile stress is acting perpendicular to the interface between layers. The role of deviations from the standard study procedure, in terms of the time interval between the placing of subsequent layers, or the adoption of a different curing strategy, are also assessed. While the increased time interval significantly impacts the strength in the critical direction, the use of variable curing conditions does not seem to have a clear-cut effect on the strength ratios of the printed to cast specimens. Additionally, the paper looks at the variability in the results for the printed specimens, in order to emphasize the need for multiple replicates for obtaining a proper result. An extensive insight into the aspects affecting the variability is presented in the paper. Finally, with the limited dataset available for specimens tested at a larger scale, it is difficult to arrive at a clear understanding of the role of specimen size (i.e., greater number of layers).

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来源期刊
Materials and Structures
Materials and Structures 工程技术-材料科学:综合
CiteScore
6.40
自引率
7.90%
发文量
222
审稿时长
5.9 months
期刊介绍: Materials and Structures, the flagship publication of the International Union of Laboratories and Experts in Construction Materials, Systems and Structures (RILEM), provides a unique international and interdisciplinary forum for new research findings on the performance of construction materials. A leader in cutting-edge research, the journal is dedicated to the publication of high quality papers examining the fundamental properties of building materials, their characterization and processing techniques, modeling, standardization of test methods, and the application of research results in building and civil engineering. Materials and Structures also publishes comprehensive reports prepared by the RILEM’s technical committees.
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