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Microstructure and mechanical properties of aluminium alloy cellular lattice structures manufactured by direct metal laser sintering

机译:直接金属激光烧结制造铝合金孔格结构的组织与力学性能

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摘要

This study thoroughly investigated the microstructure and mechanical properties of AlSi10Mg periodic cellular lattice structures with a wide range of volume fractions (5-20%) and unit cell sizes (3-7 mm) fabricated via direct metal laser sintering (DMLS). It was found that the arc-shaped melt pools are overlapping with each other and comprising near fully dense struts (relative densities ≥ 99%) of the as-built lattice structures. The melt pools of the struts are characterized with very fine cellular-dendritic microstructure. Two distinctive zones in the melt pool can be distinguished: the boundary of melt pool possesses the coarse cellular/dendritic microstructure with the cell size or dendrite arm spacing ranging of 2-4 μm, while the interior of melt pool exhibits the much finer cellular microstructure consisting of the 400-700 nm cells mainly filled with the α-Al matrix and some embedded rod-type Si-phases, and the network boundaries predominantly generated by the aggregates of approximately 20 nm Si particles. Both compression strength and microhardness decrease with the increase in the unit cell size when the volume fraction is fixed. This is mainly because the thinner struts of the smaller unit cell size lattice structures were cooled faster by their surroundings and then exhibit a higher cooling rate, leading to finer microstructure. The compression strength increases with increasing the volume fraction, and an equation based on the Gibson-Ashby model is established to estimate the compression strength of DMLS-produced AlSi10Mg gyroid cellular lattice structures with the 3 mm unit cell size.
机译:这项研究彻底研究了通过直接金属激光烧结(DMLS)制备的AlSi10Mg周期性细胞晶格结构的微观结构和力学性能,该结构具有多种体积分数(5-20​​%)和单位晶胞尺寸(3-7 mm)。结果发现,弧形熔池彼此重叠,并构成了已建成晶格结构的几乎完全致密的支杆(相对密度≥99%)。支柱的熔池具有非常精细的蜂窝状树突状微结构。熔池中有两个不同的区域:熔池的边界具有粗大的蜂窝/树突状微结构,其孔尺寸或枝晶臂间距为2-4μm,而熔池内部则呈现出更精细的蜂窝状微结构。由主要填充α-Al基体和一些嵌入的棒状Si相的400-700 nm晶胞组成,并且网络边界主要由大约20 nm Si粒子的聚集体产生。当体积分数固定时,抗压强度和显微硬度都随着晶胞尺寸的增加而降低。这主要是因为较小的晶胞尺寸的晶格结构的较薄的支杆通过其周围环境冷却得更快,然后表现出更高的冷却速率,从而导致了更精细的微观结构。压缩强度随体积分数的增加而增加,并建立了基于Gibson-Ashby模型的方程式,以估计DMLS生产的3mm晶胞尺寸的AlSi10Mg陀螺细胞晶格结构的压缩强度。

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  • 来源
    《Materials Science and Engineering》 |2015年第25期|238-246|共9页
  • 作者单位

    State key Laboratory of Materials Processing and Die & Mould Technology, Huazhong University of Science and Technology, Wuhan 430074, Hubei, China,College of Engineering, Mathematics and Physical Sciences, University of Exeter, Exeter EX4 4QF, Devon, United Kingdom;

    College of Engineering, Mathematics and Physical Sciences, University of Exeter, Exeter EX4 4QF, Devon, United Kingdom;

    College of Engineering, Mathematics and Physical Sciences, University of Exeter, Exeter EX4 4QF, Devon, United Kingdom;

    College of Engineering, Mathematics and Physical Sciences, University of Exeter, Exeter EX4 4QF, Devon, United Kingdom;

    College of Engineering, Mathematics and Physical Sciences, University of Exeter, Exeter EX4 4QF, Devon, United Kingdom;

    State key Laboratory of Materials Processing and Die & Mould Technology, Huazhong University of Science and Technology, Wuhan 430074, Hubei, China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Additive manufacturing; Direct metal laser sintering; Aluminium alloy; Periodic cellular lattice structures; Microstructure; Mechanical properties;

    机译:添加剂制造;直接金属激光烧结;铝合金;周期性的细胞晶格结构;微观结构机械性能;

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