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Effects of process time interval and heat treatment on the mechanical and microstructural properties of direct laser deposited 316L stainless steel

机译:工艺时间间隔和热处理对直接激光沉积316L不锈钢的力学和微观结构性能的影响

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摘要

The mechanical and microstructural properties of 316L stainless steel (SS) fabricated via Direct Laser Deposition (DLD), a laser-based additive manufacturing method, are presented and compared with those of conventionally-built counterparts. Using a Laser Engineered Net Shaping (LENS~®) DLD system, the time interval between successive layer deposits, or inter-layer/idle time, for fabricating cylindrical specimens vertically-upward was varied by building either one or nine samples per build plate - thus increasing total assembly volume per build. Subsequently, the effect of thermal history, as well as heat treatment, on microstructural (i.e. grain size and morphology) and mechanical (i.e. tensile, compression, and micro-hardness) properties of DLD parts were investigated. Results indicate that the DLD 316L SS samples produced herein have a higher yield and ultimate tensile strength relative to their cast and wrought forms. Furthermore, the thermal history, microstructural evolution, and mechanical properties of DLD 316L SS are shown to be dependent on the time interval between deposits. Longer local time intervals result in higher cooling rates, leading to finer microstructures, higher/uniform strength and lower elongation to failure. In addition, porosity and less integral metallurgical bonds are found to be more prevalent in locations further upward from the build plate due to reduced laser penetration depths (e.g. previous-layer remelting decreases). Conversely, parts manufactured with shorter time intervals were found to possess a coarser microstructure, lower strength and higher elongation to failure - attributable to lower cooling rates caused by an increased bulk temperature in the part These results may aid in future design and control of more efficient, constant-power DLD processes - especially with regard to building multiple and/or larger parts; an approach desirable for minimizing small-to-medium lot production times.
机译:介绍了通过直接激光沉积(DLD)(一种基于激光的增材制造方法)制造的316L不锈钢(SS)的机械和微观结构特性,并将其与常规制造的同类产品进行了比较。使用激光工程网成形(LENS〜®)DLD系统,通过在每个构建板上构建一个或九个样本来改变垂直向上制造圆柱状样品的连续层沉积之间的时间间隔或层间/空闲时间-因此增加了每次构建的总装配量。随后,研究了热历史以及热处理对DLD零件的微观结构(即晶粒尺寸和形态)和机械(即拉伸,压缩和显微硬度)性能的影响。结果表明,相对于其铸造和锻造形式,本文生产的DLD 316L SS样品具有更高的屈服强度和极限抗拉强度。此外,显示出DLD 316L SS的热历史,微结构演变和机械性能取决于沉积之间的时间间隔。较长的本地时间间隔会导致较高的冷却速度,从而导致更精细的微观结构,较高/均匀的强度以及较低的断裂伸长率。另外,由于减小的激光穿透深度(例如,前层的重熔减少),发现在距构造板更远的位置中孔隙率和较少的整体冶金结合更普遍。相反,发现以较短的时间间隔制造的零件具有较粗糙的微观结构,较低的强度和较高的失效伸长率,这归因于零件体积温度升高导致的冷却速度降低。这些结果可能有助于将来的设计和控制更有效恒功率DLD工艺-特别是在制造多个和/或更大的零件方面;一种希望将中小批量生产时间最小化的方法。

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  • 来源
    《Materials Science and Engineering》 |2015年第644期|171-183|共13页
  • 作者单位

    Department of Mechanical Engineering, Box 9552, Mississippi State University, Mississippi State, MS 39762, USA,Center for Advanced Vehicular Systems (CAVS), Box 5405, Mississippi State University, Mississippi State, MS 39762, USA;

    Department of Mechanical Engineering, Box 9552, Mississippi State University, Mississippi State, MS 39762, USA,Center for Advanced Vehicular Systems (CAVS), Box 5405, Mississippi State University, Mississippi State, MS 39762, USA;

    Department of Mechanical Engineering, Box 9552, Mississippi State University, Mississippi State, MS 39762, USA,Center for Advanced Vehicular Systems (CAVS), Box 5405, Mississippi State University, Mississippi State, MS 39762, USA;

    Center for Advanced Vehicular Systems (CAVS), Box 5405, Mississippi State University, Mississippi State, MS 39762, USA;

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

    Additive Manufacturing (AM); Laser Engineered Net Shaping (LENS); Direct Laser Deposition (DLD); Mechanical Properties; Microstructure; Stainless Steel;

    机译:增材制造(AM);激光工程网成形(LENS);直接激光沉积(DLD);机械性能微观结构不锈钢;

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