Eklemeli imal edilmiş gözenekli topolojilerin ısıl performansı üzerine deneysel incelemeler

Şahin GÜNGÖR
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Abstract

Additive manufacturing enables researchers to form unique and unconventional topologies satisfying design compactness, improved efficiency, and lower cost. Design freedom introduced by the additive manufacturing reveals the idea of implementing the topology optimization approach into thermal systems. In this study, changes in thermal performance of three types of topologies: gyroid, hexagon (honeycomb), and rectilinear are experimentally investigated. In addition, porosity level of each topology is varied in between 25%, 50% and 75% to improve the impact of the study. The experimental results indicate that gyroid structures are thermally more efficient (up to 15.6%) than the remaining topologies. Furthermore, thermal diffusivities of the rectilinear and gyroid topologies with 25% porosity level are measured as the extremes, and it is detected that these structures propagate heat 1.1 times greater than the hexagon structure.
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关于添加制造多孔拓扑热性能的实验研究
增材制造使研究人员能够形成独特和非常规的拓扑结构,满足设计紧凑性,提高效率和降低成本。由增材制造引入的设计自由度揭示了在热系统中实施拓扑优化方法的思想。在本研究中,实验研究了三种类型拓扑结构的热性能变化:陀螺、六边形(蜂窝)和直线。此外,每种拓扑结构的孔隙度水平在25%、50%和75%之间变化,以提高研究的影响。实验结果表明,与其他拓扑结构相比,陀螺结构的热效率更高(高达15.6%)。此外,测量了孔隙率为25%的直线和旋转拓扑结构的极端热扩散系数,发现这些结构的热传播比六边形结构大1.1倍。
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