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Optimizing process parameters for laser beam micro-marking using genetic algorithm and particle swarm optimization

机译:利用遗传算法和粒子群优化优化激光束微标的过程参数

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Laser micro-marking is an efficient technique for permanent marking and logo printing on materials. This study details the selection of an optimal parametric combination for laser micro-marking. In this work, markings were performed on Gallium Nitride (GaN) with varying the levels of marking parameters. The parameters considered in the present work are current (A), pulse frequency (Hz), and scanning speed (mm/sec). This experiment was designed using a central composite design, grounded in the response surface methodology. Mark intensity, which is a prominent response in laser marking, was considered the output response. The data interpretation involved analysis of variance (ANOVA) and mathematical modelling between the input parameters. It is essential to determine the relationship and significance of input-output variation. The interaction effect of various input parameters on mark intensity was also studied. Finally, two techniques, namely genetic algorithm (GA) and particle swarm optimization (PSO), were applied, and the optimal settings of input constraints were predicted.
机译:激光微标是用于材料的永久标记和标志印刷的有效技术。本研究详细说明了激光微标记的最佳参数组合。在这项工作中,对氮化镓(GaN)进行标记,改变标记参数的水平。本作工作中考虑的参数是电流(a),脉冲频率(Hz)和扫描速度(mm / sec)。使用中央复合设计设计了该实验,接地为响应表面方法。标记强度,即激光标记的突出响应,被认为是输出响应。数据解释涉及方差分析(ANOVA)和输入参数之间的数学建模。必须确定输入输出变化的关系和意义。还研究了各种输入参数对标记强度的相互作用效应。最后,应用了两种技术,即遗传算法(GA)和粒子群优化(PSO),并预测了输入约束的最佳设置。

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