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Structure/property (constitutive and dynamic strength/damage) characterization of additively manufactured 316L SS

机译:增材制造316L SS的结构/性能(本构和动态强度/损伤)表征

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For additive manufacturing (AM), the certification and qualification paradigm needs to evolve as there exists no “ASTM-type” additive manufacturing certified process or AM-material produced specifications. Accordingly, utilization of AM materials to meet engineering applications requires quantification of the constitutive properties of these evolving materials in comparison to conventionally-manufactured metals and alloys. Cylinders of 316L SS were produced using a LENS MR-7 laser additive manufacturing system from Optomec (Albuquerque, NM) equipped with a 1kW Yb-fiber laser. The microstructure of the AM-316L SS is detailed in both the as-built condition and following heat-treatments designed to obtain full recrystallization. The constitutive behavior as a function of strain rate and temperature is presented and compared to that of nominal annealed wrought 316L SS plate. The dynamic damage evolution and failure response of all three materials was probed using flyer-plate impact driven spallation experiments at a peak stress of 4.5?GPa to examine incipient spallation response. The spall strength of AM-produced 316L SS was found to be very similar for the peak shock stress studied to that of annealed wrought or AM-316L SS following recrystallization. The damage evolution as a function of microstructure was characterized using optical metallography.
机译:对于增材制造(AM),由于不存在“ ASTM型”增​​材制造认证的过程或AM材料生产的规范,因此认证和资格认证范式需要发展。因此,与常规制造的金属和合金相比,利用AM材料满足工程应用需要量化这些不断发展的材料的本构特性。使用配备1kW Yb光纤激光器的Optomec(新墨西哥州阿尔伯克基)的LENS MR-7激光增材制造系统生产316L SS气缸。 AM-316L SS的微观结构在竣工条件下和为获得完全重结晶而进行的热处理中均作了详细介绍。给出了本构行为与应变率和温度的函数关系,并将其与标称退火316L SS锻造板进行了比较。使用飞板冲击驱动的散裂实验在4.5?GPa的峰值应力下探测了这三种材料的动态损伤演化和破坏响应,以检查初期散裂响应。对于峰值冲击应力,研究人员发现,AM产生的316L SS的剥落强度与重结晶后的锻造或AM-316L SS的峰值冲击应力非常相似。使用光学金相学表征了损伤演化与微观结构的关系。

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