An Investigation of Tool-Wear Monitoring Machining Process Using IBM SPSS Statistics

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Abstract

Monitoring Machining Process. Introduction: The process of monitoring a CNC machine involves keeping tabs on its productivity, resource analysis, and performance. Since turning, milling, drilling, and other machining operations are performed on CNC machines. These devices are regarded as high precision systems since they make it possible to manufacture complex products. However, it is crucial to guarantee the proper functioning of a number of operations in order to produce high-quality complicated CNC production. Therefore, two elements are monitored in this Cnc monitoring procedure in order to achieve the desired production result. Let's talk about the two primary aspects of Numerical control monitoring and the corresponding monitoring tools. Research significance: Monitoring both machining parameters and tool quality is becoming more and more crucial in the modern industrial area to further develop item quality, efficiency, process mechanization, and compensation costs. The core technologies and cutting-edge developments for monitoring the machining process are presented generally used misbrands for monitoring the machining process are described in section "Misbrands and Sensors," including max torque as well as present, force, speed, acoustic radiation, vibrations, picture, heat, displacement, strain, etc. Also included are the appropriate detectors for these misbrands and the need for signal processing. Methodology: SPSS statistics is a data management, advanced analytics, multivariate analytics, business intelligence, and criminal investigation developed by IBM for a statistical software package. A long time, spa inc. was created by, IBM purchased it in 2009. Evaluation parameters: Integrated broaching process, DAQ system, Characterization package, Condition Monitoring Package, Feature Extraction Package, Monitoring system. Results: The Cronbach's Alpha Reliability result. The overall Cronbach's Alpha value for the model is .711 which indicates 71% reliability. From the literature review, the above 79% Cronbach's Alpha value model can be considered for analysis. Conclusion: the outcome of Cronbach's Alpha Reliability. The model's total Cronbach's Alpha score is. 711, which denotes a 71% dependability level. The 79% Cronbach's Alpha value model mentioned above from the literature review may be used for analysis.
基于IBM SPSS统计的刀具磨损监测研究
加工过程监控。导读:监控一台数控机床的过程包括监控其生产率、资源分析和性能。由于车削、铣削、钻孔和其他加工操作都是在数控机床上进行的。这些设备被认为是高精度系统,因为它们可以制造复杂的产品。然而,为了生产高质量的复杂数控生产,保证多个操作的正常运行是至关重要的。因此,为了达到预期的生产结果,在这个Cnc监控程序中监控两个要素。下面我们来谈谈数控监控的两个主要方面以及相应的监控工具。研究意义:在现代工业领域,对加工参数和刀具质量的监测对于进一步发展产品质量、效率、过程机械化和补偿成本变得越来越重要。介绍了加工过程监测的核心技术和前沿发展,通常用于监测加工过程的错误标记在“错误标记和传感器”一节中进行了描述,包括最大扭矩以及当前,力,速度,声辐射,振动,图像,热量,位移,应变等。还包括对这些错误标记的适当检测器和信号处理的需要。方法论:SPSS是一款由IBM开发的用于数据管理、高级分析、多元分析、商业智能和刑事调查的统计软件包。很久以前,spa inc.是由IBM在2009年收购的。评估参数:综合拉削工艺,DAQ系统,表征包,状态监测包,特征提取包,监测系统。结果:Cronbach's Alpha信度结果。该模型的总体Cronbach's Alpha值为0.711,表明信度为71%。从文献综述来看,以上79%的Cronbach’s Alpha值模型可以考虑进行分析。结论:Cronbach's Alpha信度结果。该模型的总Cronbach's Alpha分数为。711,表示71%的可靠性水平。上述文献综述中提到的79% Cronbach’s Alpha值模型可以用于分析。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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