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首页> 外文期刊>Journal of Advanced Manufacturing Systems >EXPERIMENTAL STUDY AND LOGISTIC REGRESSION MODELING FOR MACHINE CONDITION MONITORING THROUGH MICROCONTROLLER-BASED DATA ACQUISITION SYSTEM
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EXPERIMENTAL STUDY AND LOGISTIC REGRESSION MODELING FOR MACHINE CONDITION MONITORING THROUGH MICROCONTROLLER-BASED DATA ACQUISITION SYSTEM

机译:基于微控制器的数据采集系统监测机器状态的实验研究与物流回归建模

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摘要

Machine condition monitoring plays an important role in machining performance. A machine condition monitoring system will provide significant economic benefits when applied to machine tools and machining processes. By applying Taguchi design method, real-time pilot experimental study was conducted on a CNC machining center for monitoring the end mill cutting operations through the vibration data collection via a microcontroller-based data acquisition system. Featured machining signals were identified through data analyses and regression models were established that incorporates different combinations of featured machining signals and machining parameters in using logistic regression modeling approach. The onsite tests show that the developed logistic models including the featured machining signals can correctly distinguish worn and new cutting tools. Therefore, they can help construct decision-making mechanism for machine condition monitoring.
机译:机器状态监视在加工性能中起着重要作用。当将机器状态监视系统应用于机床和加工过程时,将提供巨大的经济利益。通过使用Taguchi设计方法,在CNC加工中心进行了实时中试实验,以通过基于微控制器的数据采集系统收集振动数据来监控立铣刀的切削操作。通过数据分析确定了特色加工信号,并建立了回归模型,该模型使用逻辑回归建模方法将特色加工信号和加工参数的不同组合结合在一起。现场测试表明,已开发的包括功能性加工信号在内的逻辑模型可以正确地区分磨损的刀具和新的刀具。因此,它们可以帮助构建用于机器状态监视的决策机制。

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