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3D打印在隔热复合材料中的潜力——几何形状对热阻影响的实验测定

The Potential of 3D Printing in Thermal Insulating Composite Materials-Experimental Determination of the Impact of the Geometry on Thermal Resistance.

作者信息

Anwajler Beata, Szołomicki Jerzy, Noszczyk Paweł, Baryś Michał

机构信息

Faculty of Mechanical and Power Engineering, Wroclaw University of Science and Technology, 50-370 Wroclaw, Poland.

Faculty of Civil Engineering, Wroclaw University of Science and Technology, 50-370 Wroclaw, Poland.

出版信息

Materials (Basel). 2024 Mar 5;17(5):1202. doi: 10.3390/ma17051202.

Abstract

This paper focuses on the analysis of the thermal properties of prototype insulation structures produced using SLS and SLA additive technologies. There is a noticeable lack of analysis in the scientific literature regarding the geometry of 3D-printed structures in terms of their thermal properties. The aim of this paper was to analyze printed samples of prototype thermal insulation composite structures and their potential for use in building applications. The research material consisted of closed and open cell foams of varying structural complexity. Increasing the complexity of the composite core structure resulted in a statistically significant decrease in the value of the thermal conductivity coefficient λ and the heat transfer coefficient U, and an increase in the thermal resistance Rc. The experimental results showed that the geometric structure of the air voids in the material is a key factor in regulating heat transfer. The control of porosity in materials produced by additive technology can be an effective tool for designing structures with high insulation efficiency. The best performance of the prototype materials produced by the SLS method was a three-layer cellular composite with a gyroid core structure. It was also shown that the four-layer gyroid structure panels with an outer layer of metallized polyethylene film produced using 3D SLA printing had the best thermal insulation. As a result, the analysis confirmed the possibility of producing energy-efficient insulation materials using 3D printing. These materials can be used successfully in construction and other industries. Further research will significantly improve the quality, accuracy, and speed of printing insulation materials, reduce the negative impact on the natural environment, and develop intelligent adaptive solutions.

摘要

本文重点分析了采用选择性激光烧结(SLS)和立体光刻(SLA)增材制造技术生产的原型保温结构的热性能。科学文献中明显缺乏关于3D打印结构几何形状对其热性能影响的分析。本文的目的是分析原型隔热复合结构的打印样品及其在建筑应用中的潜在用途。研究材料包括结构复杂度不同的闭孔和开孔泡沫材料。复合芯结构复杂度的增加导致导热系数λ和传热系数U的值在统计学上显著降低,热阻Rc增加。实验结果表明,材料中气孔的几何结构是调节热传递的关键因素。控制增材制造技术生产的材料的孔隙率可以成为设计具有高隔热效率结构的有效工具。采用SLS方法生产的原型材料的最佳性能是具有类螺旋体芯结构的三层蜂窝复合材料。研究还表明,采用3D SLA打印技术生产的、外层为金属化聚乙烯薄膜的四层类螺旋体结构板具有最佳的隔热性能。因此,分析证实了使用3D打印生产节能保温材料的可能性。这些材料可成功应用于建筑和其他行业。进一步的研究将显著提高保温材料打印的质量、精度和速度,减少对自然环境的负面影响,并开发智能自适应解决方案。

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