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EFFECT OF A DISTRIBUTED HEAT SOURCE ON MELT POOL GEOMETRY AND MICROSTRUCTURE IN BEAM-BASED SOLID FREEFORM FABRICATION

机译:分布式热源对基于光束固体自由形状制造中熔池几何形状和微观结构的影响

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The ability to control geometric and mechanical properties of parts fabricated using laser-based manufacturing processes requires an understanding and control of melt pool geometry and mi-crostructure. With the development of electron beam manufacturing or future beam-based deposition processes, the user may have more control over the distribution of incident energy, so that beam width becomes a potential process variable. As such, the focus of this work is the effect of a distributed heat source on melt pool geometry (length and depth) and the thermal conditions controlling microstructure (cooling rates and thermal gradients) in beam-based solid freeform fabrication. Previous work by the authors has employed the Rosenthal solution for a moving point heat source to determine the effects of process variables (laser power and velocity) on solidification cooling rates and thermal gradients controlling microstructure (grain size and morphology) in laser-deposited materials. Through numerical superposition of the Rosenthal solution, the current work extends the approach to include the effects of a distributed heat source for both 2-D thin-wall and bulky 3-D geometries. Results suggest that intentional variations in beam width could potentially enable significant changes in melt pool geometry without affecting microstructure.
机译:控制使用基于激光的制造工艺制造的部件的几何和机械性能的能力需要了解和控制熔融池几何形状和MI-rostructure。随着电子束制造或基于梁的沉积过程的发展,用户可以更好地控制入射能量的分布,使得光束宽度成为电位过程变量。因此,该工作的焦点是分布式热源对熔融池几何形状(长度和深度)和控制微观结构(冷却速度和热梯度)的热条件的效果,控制基于光束的固体自由形状制造。前面的作者的工作已经采用了移动点热源的ROSENTHAL解决方案,以确定过程变量(激光功率和速度)对激光沉积材料中微观结构(晶粒尺寸和形态)的凝固冷却速率和热梯度的影响。通过罗森哈尔溶液的数值叠加,目前的工作延伸了该方法,包括分布式热源对2-D薄壁和庞大的3-D几何形状的影响。结果表明,光束宽度的故意变化可能在不影响微观结构的情况下潜在地实现熔融池几何形状的显着变化。

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