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A virtual educational model on a CNC milling machine including and excluding two methods of fuzzy controllers

机译:CNC铣床上的虚拟教育模型,包括和排除两种模糊控制器方法

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Purpose - Training centers and labs offer many applications suitable for beginners who want to know how to set and operate a computer numerical control (CNC) milling machine. However, few applications address a basic understanding of the machining process founded on mathematical principals in line with new high-speed and high-precision machining technologies. The purpose of this paper is to present a complex mechanism in a simplified way, explaining the subject at an elementary level. Design/methodology/approach - The authors have developed an application of the CNC milling machine in a Matlab/Simulink package, obtaining the appropriate parameters mathematically. The project developed an analytical method using Matlab code to test the step response (the actual cutting force) under various parameters to ensure comparability of the designed model. The analytical results are in line with the developed model. The Matlab/Simulink user interface allows the application to better explain machining for educational purposes. Furthermore, by combining this mathematical model and the fuzzy controller, the high-speed constant-force milling control model has a user interface for data entry. The addition of two kinds of fuzzy controllers (look-up table and Mamdani) achieve a more educational environment compared with existing models. Findings - The developed technique can be used in CNC milling machine centers and laboratories. For virtual training purposes, this paper provides a two-stage educational model, giving students the necessary feedback on what they have learned at each stage from the beginning use of the CNC milling machine, with and without the controller. The system also offers to track the step-response analysis method. This method overcomes the shortage of milling processes modeled by the traditional transfer function, which more accurately establishes the relationship between cutting force and cutting parameters. Practical implications - This technique can be used in the CNC machine centers and laboratory for teaching beginner students and trainees. Real data from the workshop had been used. Originality/value - The earlier versions of this manuscript were presented in: JVE International LTD. Vibroengineering Procedia.+2017. 14.; IEEE 4th International Conference on Information Science and Control Engineering (ICISCE)+2017.
机译:目的 - 培训中心和实验室为希望了解如何了解和操作计算机数控(CNC)铣床的初学者提供许多应用程序。然而,很少有应用程序解决了对数学校长成立的加工过程的基本理解,该过程符合新的高速和高精度加工技术。本文的目的是以简化的方式呈现复杂的机制,以基本水平解释对象。设计/方法/方法 - 作者在MATLAB / SIMULINK封装中开发了CNC铣床的应用,以数学上获得了适当的参数。该项目开发了一种使用MATLAB代码的分析方法,以测试各种参数下的阶梯响应(实际切割力),以确保设计模型的可比性。分析结果符合开发的模型。 MATLAB / SIMULINK用户界面允许应用程序更好地解释用于教育目的的加工。此外,通过组合该数学模型和模糊控制器,高速恒定力铣削控制模型具有用于数据输入的用户界面。与现有型号相比,添加了两种模糊控制器(查询表和Mamdani)实现了更多的教育环境。结果 - 开发技术可用于数控铣床中心和实验室。出于虚拟培训目的,本文提供了一个两级教育模式,为学生提供了对在每个阶段学到的必要反馈,从开始使用中数控铣床,有和没有控制器。该系统还提供跟踪步骤响应分析方法。该方法克服了传统传递函数建模的铣削过程的短缺,这更准确地建立切割力与切割参数之间的关系。实际意义 - 该技术可用于CNC机器中心和实验室,用于教授初学者学生和学员。已经使用了来自研讨会的真实数据。原创性/值 - 本手稿的早期版本呈现为:JVE International Ltd。 VibroEngineering Procidia。+ 2017。 14 .; IEEE第四届信息科学与控制工程国际会议(ICISCE)+2017。

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