3d打印轻质地球纤维:从瓷砖镶嵌。

IF 2.3 4区 工程技术 Q3 ENGINEERING, MANUFACTURING
3D Printing and Additive Manufacturing Pub Date : 2025-04-14 eCollection Date: 2025-04-01 DOI:10.1089/3dp.2023.0341
Olga Beatrice Carcassi, Tashania Akemah, Lola Ben-Alon
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引用次数: 0

摘要

由于其生态和可负担性的潜力,最近出现了包含天然原始土壤的3d打印土材料。然而,土材料在增材制造中的应用仅限于很少或没有纤维增强的厚质量组件。在土基混合物中添加天然植物纤维可以有利地增加延展性,同时允许轻量级组件类型,例如薄的和穿孔的组件。本文介绍了一项新的研究进展,即天然、原始和未经处理的土地纤维成分,最大限度地提高小麦秸秆纤维含量,用于3d打印轻质建筑瓷砖的应用。通过一系列混合物设计的可印刷性实验装置,通过可挤压性和可建造性测试确定了可印刷的“轻稻草粘土”混合物。然后,将数字编织工艺与天然纤维相结合,用于制作轻质土制工艺品,通过几何分析探索潜在的超轻质和结构合理的镶嵌,从而在穿孔板的生产中使用最少的材料。研究的第三阶段包括结构弯曲测试,以评估最终瓷砖生产所需的层数。最后,3d打印的模块化组件被组装成一个轻量级的装置,在光影的相互作用下悬挂和展示。通过最大限度地提高土质和生物基浆料中的副产品植物纤维含量,本研究旨在提高数字地球结构的碳储存能力,同时提高其重量和拉伸可能性。借鉴当地的天然土质和纤维结构的“配方”,本文中提出的纸薄隔断组合为数字制造中自然、非常规和彻底低碳的材料系统和几何结构提供了更广泛的可能性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
3D-Printed Lightweight Earth Fiber: From Tiles to Tessellations.

3D-printed earth materials that incorporate natural raw soils have been recently emerging due to their ecological and affordability potential. However, earth materials applications in additive manufacturing have been limited to thick mass assemblies with little to no fiber reinforcement. The addition of natural plant fibers within earth-based mixtures may advantageously increase ductility while allowing for lightweight assembly types, such as thin and perforated elements. This article presents a novel research development on natural, raw, and untreated earth-fiber compositions with maximized wheat straw fiber content for 3D-printed lightweight architectural tiling applications. Initiated with an experimental printability apparatus of a range of mix designs, a printable "light straw clay" mixture is defined through extrudability and buildability tests. Then, combining the digital craft of weaving with natural fibers for earthen lightweight artifacts, a geometric analysis explores potential super lightweight and structurally sound tessellations to allow for minimum material in the production of perforated panels. The third phase of the research included structural bending tests to assess the number of layers required for the final tile production. Finally, the resulting 3D-printed modular components were assembled to create a lightweight installation, hung and exhibited with an interplay of light and shade. By maximizing co-product vegetable fiber content within an earthen and bio-based paste, this research aims to increase the carbon storage capabilities of digital earth construction while enhancing its lightness and tensile possibilities. Learning from vernacular "recipes" of natural earth- and fiber-based construction, the developed paper-thin partition assemblage presented in this article contributes to wider possibilities of natural, nonconventional, and radically low-carbon material systems and geometries in digital fabrication.

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来源期刊
3D Printing and Additive Manufacturing
3D Printing and Additive Manufacturing Materials Science-Materials Science (miscellaneous)
CiteScore
6.00
自引率
6.50%
发文量
126
期刊介绍: 3D Printing and Additive Manufacturing is a peer-reviewed journal that provides a forum for world-class research in additive manufacturing and related technologies. The Journal explores emerging challenges and opportunities ranging from new developments of processes and materials, to new simulation and design tools, and informative applications and case studies. Novel applications in new areas, such as medicine, education, bio-printing, food printing, art and architecture, are also encouraged. The Journal addresses the important questions surrounding this powerful and growing field, including issues in policy and law, intellectual property, data standards, safety and liability, environmental impact, social, economic, and humanitarian implications, and emerging business models at the industrial and consumer scales.
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