选择性激光熔化过程建模的实验研究*

Aleksandr Shkoruta, Sandipan Mishra, S. Rock
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引用次数: 3

摘要

本文研究了选择性激光熔化(SLM)过程的建模问题。我们通过实验研究了SLM过程输出(由同轴近红外相机测量)对输入激光功率变化的响应。我们确定可以使用一阶和二阶模型来捕获这种输入-输出行为。接下来,我们研究了该传递函数与激光扫描速度和其他在典型零件构建过程中演变的过程变量的依赖关系,例如周围介质(散装粉末、构建板或固化部件)的热性能或层数。发现传递函数强烈依赖于材料环境(固化材料或散装粉末)。此外,传递函数也依赖于层数,表现出瞬态行为。我们报告了不同扫描速度,构建板上的位置和不同层数的一阶传递函数。确定的模型及其可变性的量化将作为未来实施先进的实时过程控制算法的基础工作。
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An experimental study on process modeling for selective laser melting*
This paper addresses process modeling for the selective laser melting (SLM) process. We experimentally investigate the response of the SLM process output (measured by a coaxial near-infrared camera) to changing input laser power. We determined that first and second order models can be used to capture this input-output behavior. Next, we studied the dependency of this transfer function on laser scan speed and other process variables that evolve over a typical part build, such as thermal properties of surrounding medium (bulk powder, build plate, or solidified part) or layer number. The transfer function was found to strongly depend on the material environment (solidified material or bulk powder). Further, transfer function also depended on the layer number, exhibiting transient behavior. We report identified 1st order transfer functions for different scan speeds, locations on the build plate, and different layer numbers. Identified models and quantification of their variability will serve as foundational work for the future implementation of advanced real-time process control algorithms.
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