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Methodology for real-time feedback variable selection for manufacturing process control: theoretical and simulation results

机译:用于制造过程控制的实时反馈变量选择方法:理论和仿真结果

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Abstract: This paper explores the effectiveness of a proposed methodology for selecting feedback variables for real-time feed-back control (RFC). Both analytical and simulation results are presented. In many manufacturing processes, the important product characteristics cannot be measured in real-time and therefore cannot be directly controlled using RFC. Although the product characteristics may not be fed back, the benefits of RFC, which include reduction of variation through disturbance rejection, may be gained by feedback of process variables closely related to the product characteristics. A general condition under which RFC will reduce process variation, expressed in terms of sensor noise, process disturbance characteristics and process noise, is derived. Generally, process knowledge is used to selected the process variables appropriate for feedback, however in many case this knowledge is not sufficiently quantitative. A methodology which utilizes statistical analysis of experimental data has been developed for the purpose of identifying the best process variables to regulate in order to minimize variation in the product characteristics. The methodology includes the following steps: design of experiments, candidate model selection, final model selection, check for controllability, and verification. An efficient, exhaustive search of all possible regression models which satisfy the constraints imposed by the RFC control problem is used to implement the candidate model selection step. The effectiveness of the methodology is evaluated using simulation. Through simulation a wide range of conditions were explored in a relatively short period of time. Situations considered include various degrees of sensitivity to process disturbance, limitations in sensor availability and variation in the importance of unmeasured process variables. !14
机译:摘要:本文探讨了为实时反馈控制(RFC)选择反馈变量的方法的有效性。给出了分析和仿真结果。在许多制造过程中,重要的产品特性无法实时测量,因此无法使用RFC直接控制。尽管可能无法反馈产品特性,但RFC的好处(包括通过干扰抑制来减少变化)可以通过与产品特性密切相关的过程变量的反馈来获得。得出了RFC将减少过程变化的一般条件,以传感器噪声,过程干扰特性和过程噪声表示。通常,过程知识用于选择适合于反馈的过程变量,但是在许多情况下,该知识不够充分。已经开发出一种利用实验数据的统计分析的方法,以识别最佳的调节过程变量,从而最大程度地减少产品特性的变化。该方法包括以下步骤:实验设计,候选模型选择,最终模型选择,可控性检查和验证。对所有可能的回归模型进行有效,详尽的搜索,以满足RFC控制问题施加的约束,以执行候选模型选择步骤。该方法的有效性通过仿真进行评估。通过仿真,可以在较短的时间内探索各种条件。考虑的情况包括对过程干扰的不同程度的敏感度,传感器可用性的限制以及未测过程变量的重要性的变化。 !14

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