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Physics-Based Multivariable Modeling and Feedback Linearization Control of Melt-Pool Geometry and Temperature in Directed Energy Deposition

机译:基于物理的多变量建模与反馈线性化控制熔池几何和温度的能量沉积

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摘要

There has been continuing effort in developing analytical, numerical, and empirical models of laser-based additive manufacturing (AM) processes in the literature. However, advanced physics-based models that can be directly used for feedback control design, i.e., control-oriented models, are severely lacking. In this paper, we develop a physics-based multivariable model for directed energy deposition. One important difference between our model from the existing work lies in a novel parameterization of the material transfer rate in the deposition as a function of the process operating parameters. Such parameterization allows an improved characterization of the steady-state melt-pool geometry compared to the existing lumped-parameter models. Predictions of melt-pool geometry and temperature from our model are validated using experimental data obtained from deposition of Ti-6AL-4V and deposition of Inconel (R) 718 on a laser engineering net shaping (LENS) AM process and finite-element analysis. Then based on this multivariable model, we design a nonlinear multi-input multi-output (MIMO) control, specifically a feedback linearization (FL) control, to track both melt-pool height and temperature reference trajectories using laser power and laser scan speed.
机译:在文献中开发基于激光的添加剂制造(AM)过程的分析,数值和实证模型进行了持续的努力。然而,可以直接用于反馈控制设计的先进物理基础,即面向控制的模型,严重缺乏。在本文中,我们开发了一种基于物理的多变量模型,用于定向能量沉积。我们的模型与现有工作之间的一个重要区别在于作为过程操作参数的函数的沉积中的材料传输速率的新颖参数化。与现有的集合参数模型相比,这种参数化允许改进稳态熔体几何形状的表征。使用从Ti-6AL-4V的沉积获得的实验数据和Inconel718沉积在激光工程网整形(镜头)AM过程和有限元分析中,验证了我们模型的熔融池几何和温度的预测。然后基于此多变量模型,我们设计了非线性多输入多输出(MIMO)控制,特别是反馈线性化(FL)控制,用于使用激光功率和激光扫描速度跟踪熔融池高度和温度参考轨迹。

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