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A predictive maintenance approach based on real-time internal parameter monitoring

机译:基于实时内部参数监控的预测性维护方法

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摘要

Since continuous real-time components or equipment condition monitoring is not available for injection molding machines, we propose a predictive maintenance approach that uses injection molding process parameters instead of machine components to evaluate the condition of equipment. In the proposed approach, maintenance decisions are made based on the statistical process control technique with real-time data monitoring of injection molding process parameters. First, machine components or equipment of injection molding machines, which require maintenance, is identified and then injection molding process parameters, which may be affected by malfunctioning of the previously identified components, are identified. Second, regression analysis is performed to select the process parameters that significantly affect the quality of the lens and require a high degree of attention. By analyzing the patterns of real-time monitored data series of process parameters, we can diagnose the status of the components or equipment because the process parameters are affected by machine components or equipment. Third, statistical predictive models for the selected process parameters are developed to apply statistical analysis techniques to the monitored data series of parameters, in order to identify abnormal trends. Fourth, when abnormal trends or patterns are found based on statistical process control techniques, maintenance information for related components or equipment is notified to maintenance workers. Finally, a prototype system is developed to show feasibility in a LabVIEWA (R) environment and an experiment is performed to validate the proposed approach.
机译:由于注塑机无法使用连续的实时组件或设备状态监视,因此我们提出了一种预测性维护方法,该方法使用注塑工艺参数代替机器组件来评估设备的状态。在提出的方法中,维护决策是基于统计过程控制技术以及对注塑成型过程参数的实时数据监视而做出的。首先,识别需要维护的注塑机的机器部件或设备,然后识别可能受先前识别的部件故障影响的注塑工艺参数。其次,执行回归分析以选择会严重影响镜片质量并需要高度关注的工艺参数。通过分析过程参数的实时监视数据系列的模式,我们可以诊断组件或设备的状态,因为过程参数受机器组件或设备的影响。第三,开发用于所选过程参数的统计预测模型,以将统计分析技术应用于所监视的参数数据系列,以识别异常趋势。第四,当基于统计过程控制技术发现异常趋势或模式时,将有关组件或设备的维护信息通知维护人员。最后,开发了原型系统以显示在LabVIEWA(R)环境中的可行性,并进行了实验以验证所提出的方法。

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