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AN EXPERIMENTAL-NUMERICAL INVESTIGATION OF HEAT TRANSFER DURING SELECTIVE LASER MELTING

机译:选择性激光熔化过程中传热的实验与数值研究

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The heat transfer in and around a part being fabricated via Selective Laser Melting (SLM) is numerically simulated while considering the surrounding powder bed modeled to have an effective thermal conductivity. By accurately simulating the powder bed heat transfer during SLM, mechanical properties of parts can be better predicted. Heat transfer to previously-deposited layers and the build plate are also simulated. In order to validate the presented model, a thermocouple was embedded into a substrate used and a SLM system was utilized for performing two experiments. In the first set, various laser power and scan speed combinations were employed while passing the laser over the thermocouple-embedded substrate. This procedure calibrated the numerical model and demonstrated that the heat transfer due to convection and radiation during deposition of a single layer is approximately 10-15% of initial laser power input. The final experiment consisted of building a thin wall of SLM of 17-4 PH stainless steel (SS). The effects of scan pattern and part size on the temperature response of and around the part are demonstrated as significant. Distinct heating and cooling rates are also provided for these various cases; indicating the dependency of final microstructure on part size and the utilized scan pattern.
机译:数值模拟了通过选择性激光熔化(SLM)制造的零件内部及其周围的传热,同时考虑到周围的粉末床已建模为具有有效的热导率。通过精确模拟SLM过程中的粉末床传热,可以更好地预测零件的机械性能。还模拟了到先前沉积的层和构建板的热传递。为了验证所提出的模型,将热电偶嵌入使用的基板中,并利用SLM系统执行两个实验。在第一组中,采用各种激光功率和扫描速度组合,同时使激光通过热电偶嵌入的衬底。此过程校准了数值模型,并证明了在沉积单层过程中由于对流和辐射引起的热传递约为初始激光功率输入的10-15%。最终实验包括构建17-4 PH不锈钢(SS)的SLM薄壁。扫描模式和零件尺寸对零件及其周围温度响应的影响被证明是显着的。对于这些各种情况,还提供了不同的加热和冷却速率。表示最终微观结构对零件尺寸和所用扫描模式的依赖性。

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