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Fuzzy Controllers in the Adaptive Control System of a CNC Lathe

机译:CNC车床自适应控制系统中的模糊控制器

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摘要

Traditional approaches to improving the technological system of CNC metal-cutting machines include increasing the rigidity, periodic maintenance and repair of its components, and operating at lower speeds. In practice, the most economical approach is stabilization of the inputs to the system. The development of adaptive control systems with stabilization of the cutting forces improves the precision and quality of machining in CNC metal-cutting machines, the productivity, and tool life. However, classical PID controllers are only effective in stabilizing the cutting forces in such systems if continuous real-time parameter adjustment is possible. That sharply increases the complexity of the controller. A new mathematical apparatus based on artificial intelligence (including fuzzy logic) permits the solution of adaptive control problems that previously could hardly even be formulated. The present work addresses the use of fuzzy logic in automatic stabilization of the cutting force for CNC lathes. Simulation of a fuzzy controller shows that this approach to automatic stabilization of the cutting force increases the machining efficiency on existing equipment with indeterminacy in the characteristics of the cutting system and the working environment.
机译:改善CNC金属切割机技术系统的传统方法包括提高其部件的刚性,周期性维护和修复,并以较低的速度操作。在实践中,最经济的方法是对系统的输入稳定。具有稳定的切削力的自适应控制系统的开发提高了CNC金属切割机的加工精度和质量,生产力和工具寿命。然而,如果可以进行连续的实时参数调整,则经典PID控制器仅有效地稳定在这种系统中的切割力。这急剧增加了控制器的复杂性。一种基于人工智能(包括模糊逻辑)的新数学仪器允许解决先前几乎无法配制的自适应控制问题。本工作解决了模糊逻辑在CNC车床的切割力自动稳定中的使用。模糊控制器的模拟表明,这种自动稳定的削减力的方法增加了现有设备的加工效率,在切割系统和工作环境的特征中具有不确定性。

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