Surface modification as a technique to improve inter-layer bonding strength in 3D printed cementitious materials

Q2 Engineering
J. Putten, G. Schutter, K. Tittelboom
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引用次数: 45

Abstract

The structural capacity of 3D printed components mainly depends on the inter-layer bonding strength between the different layers. This bond strength is affected by many parameters (e.g. moisture content of the substrate, time gap, surface roughness,..) and any mismatch in properties of the cementitious material may lead to early failure. A common technique to improve inter-layer bonding strength between a substrate and a newly added layer is modifying the substrate surface. For the purpose of this research, a custom-made 3D printing apparatus is used to simulate the printing process and layered specimens with a different delay time (0 and 30 minutes) are manufactured with different surface modification techniques (wire brushing, addition of sand or cement and moisturizing substrate layer). The surface roughness was measured and the effect of the modification technique on the inter-layer-bonding strength was investigated. Results showed that the most effective way to increase the inter-layer bonding is increasing the surface roughness by a comb. This creates a kind of interlock system that will provide a higher inter-layer strength. The compressive strength is most influenced by the addition of cement, where the changing W/C-ratio will create a higher degree of hydration and consequently a higher strength.
表面改性作为一种提高3D打印胶凝材料层间结合强度的技术
3D打印部件的结构容量主要取决于不同层之间的层间结合强度。这种粘结强度受到许多参数的影响(例如基材的含水量、时间间隙、表面粗糙度等),胶结材料性能的任何不匹配都可能导致早期失效。提高衬底和新添加的层之间的层间结合强度的常用技术是改性衬底表面。为了本研究的目的,使用定制的3D打印设备来模拟打印过程,并使用不同的表面改性技术(钢丝刷、添加沙子或水泥以及保湿基底层)制造具有不同延迟时间(0和30分钟)的分层试样。测量了表面粗糙度,并研究了改性技术对层间结合强度的影响。结果表明,提高层间结合的最有效方法是通过梳形来提高表面粗糙度。这产生了一种互锁系统,该互锁系统将提供更高的层间强度。抗压强度受水泥添加的影响最大,其中W/C比的变化将产生更高程度的水化,从而产生更高的强度。
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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来源期刊
RILEM Technical Letters
RILEM Technical Letters Materials Science-Materials Science (all)
CiteScore
5.00
自引率
0.00%
发文量
13
审稿时长
10 weeks
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