基于模型的输入能量控制,实现可重现的 AISI 316L 激光沉积轨道

IF 3.5 3区 工程技术 Q1 MATHEMATICS, APPLIED Finite Elements in Analysis and Design Pub Date : 2024-05-11 DOI:10.1016/j.finel.2024.104184
P. Álvarez , F. Cordovilla , M.A. Montealegre , M. Díaz , S. Chacón-Fernández , A. García-Beltrán , I. Angulo , J.L. Ocaña
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引用次数: 0

摘要

在定向能沉积(DED)工艺中,当金属颗粒的质量流量相对较高时,层的厚度就会增加,从而提高工艺的生产效率。质量流量越大,就越难获得稳定的熔池。先前固结材料中积累的余热构成热输入,影响激光与材料相互作用区的平衡。要将液态金属的动态粘度保持在可以稳定控制的较小范围内,精确控制激光-材料相互作用区的温度至关重要。本研究引入了一种热模型,其中考虑了具有可调特性的域,以再现制造样品的生长过程。同时,还实施了一个虚拟闭环 PID 调节器,以计算合适的激光功率值来补偿材料中积累的热量,并将模型结果作为输入工艺参数直接应用于实际工艺中。该模型提出的激光功率水平已在实验中得到应用,从而实现了一个稳定的过程,能够在现实中加工出所需的部件。
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Model-Based input energy control for reproducible AISI 316L laser deposited tracks

In the Directed Energy Deposition (DED) process, when the mass flow of metal particles is relatively high, the thickness of the layers increases, leading to a more productive process. The higher the mass flow is, the more difficult it becomes to get a stable melt pool. The accumulation of residual heat in the previously consolidated material constitutes a thermal input affecting the balance at the laser-material interaction zone. An accurate control of the temperature of the laser-material interaction zone is critical to maintain the dynamic viscosity of the liquid metal within the narrow margin in which it can be managed in a stable way. The present work introduces a thermal model in which domains with tunable properties are considered to reproduce the growing of the manufactured sample. Concurrently, a virtual closed-loop PID regulator has been implemented in order to calculate suitable values of laser power to compensate the heat accumulated in the material, offering the results from the model as input process parameters to be directly applied in the real process. The levels of laser power proposed by the model have been experimentally applied, leading to a stable process capable of carrying out in reality the desired component.

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来源期刊
CiteScore
4.80
自引率
3.20%
发文量
92
审稿时长
27 days
期刊介绍: The aim of this journal is to provide ideas and information involving the use of the finite element method and its variants, both in scientific inquiry and in professional practice. The scope is intentionally broad, encompassing use of the finite element method in engineering as well as the pure and applied sciences. The emphasis of the journal will be the development and use of numerical procedures to solve practical problems, although contributions relating to the mathematical and theoretical foundations and computer implementation of numerical methods are likewise welcomed. Review articles presenting unbiased and comprehensive reviews of state-of-the-art topics will also be accommodated.
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