Interaction between material and process parameters during 3D concrete extrusion process

IF 3.9 2区 工程技术 Q1 ENGINEERING, CIVIL
Ali Fasihi, Nicolas A. Libre
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Abstract

Extrusion of cement-based materials in additive manufacturing is influenced by a complex interaction of various material and process parameters. This study aims to investigate the impact of rheological properties and printing parameters on the extrudability of cement-based materials as well as the interaction between rheological properties of print materials and extrusion speed, as a key printing process parameter. 20 different print materials with diverse rheological properties were extruded at 10 different extrusion speeds. The effect of material parameters (i.e. rheological properties) and process parameters (i.e., extrusion speed) and their interaction during the extrusion process were evaluated using filament continuity, conformity and consistency. At a constant printing speed, a higher yield stress adversely impacted filament continuity in mixtures with a yield stress of over 260 Pa, whereas viscosity showed minimal influence on filament quality within the tested range of the rheological properties. The results of this study highlighted a significant correlation between material and process parameters and that adapting process parameters to variations in material properties is crucial for meeting printing criteria. The filament consistency of the mixtures with high yield stress was more sensitive to change in the extrusion speed than that of mixtures with low yield stress. An opposite trend, however, was observed for filament conformity where low yield stress mixtures showed a higher sensitivity to the extrusion speed. A procedure was suggested and applied to determine the optimum extrusion speed. Optimal extrusion speeds enabled printing mixtures with a broader spectrum of rheological properties with an acceptable visual quality, filament conformity and consistency requirements. With extrusion speed adjustment, the extrudability window was expanded from dynamic yield stress of 108–126 Pa to 108–263 Pa and plastic viscosity of 8.2–12.3 Pa.s to 5.1–16.4 Pa.s.
三维混凝土挤压过程中材料与工艺参数之间的相互作用
在增材制造中,水泥基材料的挤压受到各种材料和工艺参数的复杂相互作用的影响。本研究旨在探讨流变特性和打印参数对水泥基材料挤出性的影响,以及打印材料的流变特性与作为关键打印工艺参数的挤出速度之间的相互作用。以 10 种不同的挤出速度挤出了 20 种具有不同流变特性的印刷材料。在挤出过程中,使用长丝连续性、一致性和稠度评估了材料参数(即流变特性)和工艺参数(即挤出速度)的影响及其相互作用。在恒定的印刷速度下,较高的屈服应力会对屈服应力超过 260 Pa 的混合物的长丝连续性产生不利影响,而在测试的流变特性范围内,粘度对长丝质量的影响微乎其微。这项研究的结果凸显了材料和工艺参数之间的显著相关性,而且根据材料特性的变化调整工艺参数对于满足印刷标准至关重要。与屈服应力低的混合物相比,屈服应力高的混合物的长丝稠度对挤出速度的变化更为敏感。然而,在长丝一致性方面却出现了相反的趋势,屈服应力低的混合物对挤出速度的敏感性更高。提出并应用了一个程序来确定最佳挤出速度。最佳挤出速度可使印刷混合物具有更广泛的流变特性,并达到可接受的视觉质量、长丝顺应性和一致性要求。通过调整挤出速度,挤出性窗口从 108-126 Pa 的动态屈服应力扩大到 108-263 Pa,塑性粘度从 8.2-12.3 Pa.s 扩大到 5.1-16.4 Pa.s。
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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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