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Design and Thermal Comparison of Random Structures Realized by Indirect Additive Manufacturing

机译:通过间接增材制造实现随机结构的设计和热比较

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摘要

Additive manufacturing (AM) processes are used to fabricate three-dimensional complex geometries. There are several technologies that use laser or electron beam over metal powder beds. However, the direct AM processes have inconveniences such as specific set of materials, high thermal stress traced, high local energy absorbed, poor surface finish, anisotropic properties, high cost of material powder, and manufacturing with high-power beams. In this paper, an alternative process was developed. An indirect additive manufacturing (I-AM) combining a 3D print of castable resin and metal casting in order to obtain a cellular structure similar in shape to commercial metal foams but completely definable as design features was developed. Design of the cellular structure was made by the graphical algorithm editor Grasshopper®. Designed structures were realized by a lost-wax casting process and compared with commercial foam specimens by a system designed for this work. The designed metal foams showed a performance superior to that of commercial metal foam; in particular, the heat thermal coefficient of designed metal foams in the better case was 870 W/m2·K, almost doubled in comparison with the commercial foam tested in this work.
机译:增材制造(AM)工艺用于制造三维复杂几何形状。有几种在金属粉末床上使用激光或电子束的技术。但是,直接AM工艺存在一些不便,例如特定的材料组,跟踪的高热应力,吸收的局部能量高,表面光洁度差,各向异性,材料粉末的成本高以及使用大功率光束制造。在本文中,开发了一种替代方法。开发了一种间接增材制造(I-AM),将可浇铸树脂和金属铸件的3D打印相结合,以获得形状类似于商用金属泡沫但完全可以根据设计特征定义的孔结构。细胞结构的设计由图​​形算法编辑器Grasshopper ®进行。设计的结构是通过失蜡铸造工艺实现的,并通过为此目的设计的系统与商业泡沫样品进行了比较。设计的金属泡沫表现出优于商业金属泡沫的性能。特别是,设计好的金属泡沫的热热系数在更好的情况下为870 W / m 2 ·K,与在这项工作中测试的商业泡沫相比几乎翻了一番。

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