Anwajler Beata, Iwko Jacek, Piwowar Anna, Wróblewski Roman, Szulc Piotr
Department of Energy Conversion Engineering, Faculty of Mechanical and Power Engineering, Wroclaw University of Science and Technology, 27 Wybrzeze Wyspianskiego Street, 50-370 Wroclaw, Poland.
Faculty of Mechanical Engineering, Wroclaw University of Science and Technology, 27 Wybrzeze Wyspianskiego Street, 50-370 Wroclaw, Poland.
Materials (Basel). 2024 Dec 23;17(24):6293. doi: 10.3390/ma17246293.
This article describes an innovative thermal insulation barrier in the form of a sandwich panel manufactured using 3D FDM printing technology. The internal structure (core structure) of the barrier is based on the Kelvin foam model. This paper presents the influence of the parameters (the height h and the porosity P of a single core cell) of the barrier on its properties (thermal conductivity, thermal resistance, compressive strength, and quasi-static indentation strength). The dominant influence of the porosity of the structure on the determined physical properties of the fabricated samples was demonstrated. The best insulation results were obtained for single-layer composites with a cell height of 4 mm and a porosity of 90%, where the thermal conductivity coefficient was 0.038 W/(m·K) and the thermal resistance 0.537 (m·K)/W. In contrast, the best compressive strength properties were obtained for the 50% porosity samples and amounted to about 350 MPa, while the moduli for the 90% porosity samples were 14 times lower and amounted to about 26 MPa. The porosity (P) of the composite structure also had a significant effect on the punch shear strength of the samples produced, and the values obtained for the 90% porosity samples did not exceed 1 MPa. In conclusion, the test showed that the resulting 3D cellular composites offer an innovative and environmentally friendly approach to thermal insulation.
本文介绍了一种采用3D熔融沉积成型(FDM)打印技术制造的三明治板形式的创新型隔热屏障。该屏障的内部结构(芯部结构)基于开尔文泡沫模型。本文阐述了屏障参数(单个芯单元的高度h和孔隙率P)对其性能(导热系数、热阻、抗压强度和准静态压痕强度)的影响。结果表明,结构的孔隙率对所制备样品的物理性能具有主要影响。对于单元高度为4mm、孔隙率为90%的单层复合材料,隔热效果最佳,其导热系数为0.038W/(m·K),热阻为0.537(m·K)/W。相比之下,孔隙率为50%的样品抗压强度性能最佳,约为350MPa,而孔隙率为90%的样品模量则低14倍,约为26MPa。复合结构的孔隙率(P)对所制备样品的冲剪强度也有显著影响,孔隙率为90%的样品所获得的值不超过1MPa。总之,测试表明,所得的3D蜂窝复合材料提供了一种创新且环保的隔热方法。