Wang Jun, Zhang Xuanzheng, Liu Zhenhua, Zhao Jiasheng
College of Civil Engineering, Henan University of Technology, Zhengzhou 450001, China.
Materials (Basel). 2024 Jul 1;17(13):3220. doi: 10.3390/ma17133220.
Based on 3D printing technology, this paper investigates the effects of the printing process and reinforcement materials on the performance of 3D-printed glass bead insulation mortar. In order to improve and enhance the performance of the mortar, two sets of tests were designed for research and analysis. Firstly, by changing the direction of the interlayer printing strips, the anisotropy of the specimens in different paths was analyzed, and then the effect of different dosages of different fibers on the performance of 3D-printed glass bead insulation mortar was investigated by adding reinforcing materials. The results show that the path a specimen in the X direction's compressive strength is the best; in the Y direction, flexural strength is the best; the path b specimen in the Y direction's compressive strength is the best; in the Z direction, flexural strength is the best, but the compressive and flexural strengths are lower than the strength of the specimen without 3D printing (cast-in-place specimen); and adding reinforcing materials mortar not only has high strength but also has good printability and excellent thermal insulation. This paper provides a theoretical basis and reference value for the popularization and application of 3D printing thermal insulation mortar technology.
基于3D打印技术,本文研究了打印工艺和增强材料对3D打印玻璃珠保温砂浆性能的影响。为了改进和提高砂浆的性能,设计了两组试验进行研究分析。首先,通过改变层间打印条的方向,分析不同路径下试件的各向异性,然后通过添加增强材料研究不同剂量的不同纤维对3D打印玻璃珠保温砂浆性能的影响。结果表明,路径a试件在X方向的抗压强度最佳;在Y方向,抗折强度最佳;路径b试件在Y方向的抗压强度最佳;在Z方向,抗折强度最佳,但抗压和抗折强度均低于无3D打印试件(现浇试件)的强度;添加增强材料的砂浆不仅强度高,而且具有良好的可打印性和优异的保温性能。本文为3D打印保温砂浆技术的推广应用提供了理论依据和参考价值。