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Joint allocation of measurement points and controllable tooling machines in multistage manufacturing processes

机译:在多阶段制造过程中联合分配测量点和可控工具机

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摘要

Stream of variations (SoV) modeling of multistage manufacturing process has been studied for the past 15 years and has been used for identification of root causes of manufacturing errors, characterization and optimal allocation of measurements, process-oriented tolerance allocation, fixture design, and operation sequence optimization. Most recently, it was used for optimal in-process adjustments of programmable, controllable tooling (controllable fixtures, CNC machines) in order to enable autonomous minimization of errors in dimensional product quality. However, due to the time and resources needed to take the measurements and the high cost of controllable tooling, it is plausible to strategically position such measurements and controllable devices across a manufacturing system in a way that the ability to mitigate quality problems is maximized. In this article, a distributed stochastic feed-forward control method is devised to optimally (in the least square sense) reduce the variations in dimensional workpiece quality with a limited number of controllable tooling components and measurements distributed across a multistage manufacturing process. Based on this, a reactive tabu search algorithm is proposed to enable joint optimal allocation of measurement points a controllable tooling devices. Theoretical results are evaluated and demonstrate using the SoV model of an actual industrial process for automotive cylinder head machining.
机译:在过去的15年中,对多阶段制造过程的变异流(SoV)建模进行了研究,并已用于识别制造错误的根本原因,测量的特性和最佳分配,面向过程的公差分配,夹具设计和操作序列优化。最近,它用于对可编程,可控工具(可控夹具,CNC机床)进行最佳的过程内调整,以实现尺寸产品质量误差的自动最小化。然而,由于进行测量所需的时间和资源以及可控工具的高昂成本,合理地在整个制造系统中战略性地放置此类测量值和可控设备,以最大程度地减轻质量问题的能力是合理的。在本文中,设计了一种分布式随机前馈控制方法,以有限数量的可控工具组件和分布在多阶段制造过程中的测量值来最佳地(最小二乘)减少​​尺寸工件质量的变化。在此基础上,提出了一种反应式禁忌搜索算法,以实现可控工具设备对测量点的联合优化分配。使用汽缸盖加工实际工业过程的SoV模型对理论结果进行评估和演示。

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