A Compressive Load Bearing Analysis of 3D-Printed Circular Elements

Ilerioluwa Giwa, Ali Kazemian, V. Gopu, T. Rupnow
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Abstract

Large-scale construction 3D printing is a promising platform technology that can be leveraged to fabricate structural elements such as columns, piers, pipes, and culverts. In this study, the axial compression and split tensile performance of 3D-printed steel-fiber-reinforced circular elements fabricated with different configurations (hollow, hybrid, mold-cast, and fully 3D-printed) is evaluated. This study further investigates the performance of multi-material circular hybrid elements (3D-printed shells with different backfilled core materials) in an attempt to assess their suitability as a new construction paradigm. The experimental results revealed that the fully 3D-printed steel-fiber-reinforced circular elements exhibited a higher load capacity (up to 36%) and a distinct crack pattern compared to the other configurations. The void ratio of circular elements has varying effects on its axial load capacity depending on the printing material and significantly influences its splitting tensile load capacity. Furthermore, the compatibility between the 3D-printed shell and the cast-in-place core is identified as an influential factor in the structural performance of the hybrid elements. The results suggest a promising construction approach where low-cement material can be utilized as infill material for a cost-effective 3D-printed permanent formwork, offering a viable solution for specific infrastructure development applications.
三维打印圆形构件的抗压承载分析
大规模建筑三维打印技术是一项前景广阔的平台技术,可用于制造柱、墩、管道和涵洞等结构件。本研究评估了采用不同结构(空心、混合、模铸和全三维打印)制造的三维打印钢纤维增强圆形构件的轴向压缩和劈裂拉伸性能。本研究进一步调查了多材料圆形混合元件(具有不同回填核心材料的三维打印壳体)的性能,试图评估其作为一种新建筑范例的适用性。实验结果表明,与其他结构相比,完全三维打印的钢纤维增强圆形构件具有更高的承载能力(高达 36%)和明显的裂纹模式。根据打印材料的不同,圆形构件的空隙率对其轴向承载能力有不同的影响,并显著影响其劈裂拉伸承载能力。此外,三维打印外壳与现浇核心之间的兼容性也是影响混合元件结构性能的一个因素。研究结果表明,低水泥材料可用作具有成本效益的三维打印永久模板的填充材料,为特定的基础设施开发应用提供了可行的解决方案,是一种很有前途的施工方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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