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Numerical Simulation of the Temperature Distribution and Solid-Phase Evolution in the LENS~TM Process

机译:镜片〜TM过程中温度分布和固相进化的数值模拟

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A three-dimensional finite element model was developed and applied to analyze the temperature and phase evolution in deposited stainless steel 410 (SS410) during the Laser Engineered Net Shaping (LENS~(TM)) rapid fabrication process. The effect of solid phase transformations is taken into account by using temperature and phase dependent material properties and the continuous cooling transformation (CCT) diagram. The laser beam is modeled as a Gaussian distribution of heat flux from a moving heat source with conical shape. The laser power is optimized in order to achieve a pre-defined molten pool size for each layer. It is found that approximately 5% decrease of the laser power for each pass is required to obtain a steady molten pool size. The temperature distribution and cooling rate surrounding the molten pool are predicted and compared with experiments. Based upon the predicted thermal cycles and cooling rate, the phase transformations and their effects on the hardness are discussed.
机译:开发并应用了三维有限元模型,以分析激光工程净整形(镜片〜(TM))快速制造过程中沉积的不锈钢410(SS410)中的温度和相位演化。通过使用温度和相位依赖性材料特性和连续冷却变换(CCT)图来考虑固相变化的效果。激光束以具有圆锥形状的移动热源的热通量的高斯分布建模。优化激光功率以实现每层的预定熔融池尺寸。发现每次通过的激光功率下降约5%以获得稳定的熔池尺寸。预测熔池周围的温度分布和冷却速度并与实验进行比较。基于预测的热循环和冷却速率,讨论了相变及其对硬度的影响。

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