Hardened properties and durability of large-scale 3D printed cement-based materials

被引:0
|
作者
Yu Zhang
Yunsheng Zhang
Lin Yang
Guojian Liu
Yidong Chen
Shiwei Yu
Hongjian Du
机构
[1] Southeast University,School of Materials Science and Engineering
[2] Collaborative Innovation Center for Advanced Civil Engineering Materials,School of Civil Engineering
[3] Lanzhou University of Technology,School of Water Conservancy Engineering
[4] Zhengzhou University,School of Civil Engineering
[5] Suzhou University of Science and Technology,Centre for Smart Infrastructure and Digital Construction
[6] Swinburne University of Technology,Department of Civil and Environmental Engineering
[7] National University of Singapore,undefined
来源
Materials and Structures | 2021年 / 54卷
关键词
Additive manufacturing; Digital construction; Void distribution; Layer structure; Anisotropy;
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中图分类号
学科分类号
摘要
This study systematically investigates the hardened properties, durability and void distribution of large-scale 3D printed cement-based materials (3DPC). Experimental results indicate that 3DPC has higher compressive and flexural strengths, lower drying shrinkage, better resistance against sulfate attack and carbonation than mold-cast cement-based materials, but lower resistance to frost damage and chloride ion penetration. Computed tomography scanning reveals that voids in 3DPC are strongly oriented along the printing direction. Furthermore, the voids are much more inter-connected and even continuous among the printed filaments. This unique void distribution is the origin of anisotropy for 3DPC and can explain the determined directional dependency of mechanical strengths and durability performance. Along the printing direction, the more connected voids render more channels for gas and liquid to penetrate into 3DPC.
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