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Monitoring Chemical Processes Using Judicious Fusion of Multi-Rate Sensor Data

机译:使用多速率传感器数据的明智融合来监控化学过程

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摘要

With the emergence of Industry 4.0, also known as the fourth industrial revolution, an increasing number of hardware and software sensors have been implemented in chemical production processes for monitoring key variables related to product quality and process safety. The accuracy of individual sensors can be easily impaired by a variety of factors. To improve process monitoring accuracy and reliability, a sensor fusion scheme based on Bayesian inference is proposed. The proposed method is capable of combining multi-rate sensor data and eliminating the spurious signals. The efficacy of the method has been verified using a process implemented at the Dow Chemical Company. The sensor fusion approach has improved the process monitoring reliability, quantified by the rates of correctly identified impurity alarms, as compared to the case of using an individual sensor.
机译:随着工业4.0(也称为第四次工业革命)的出现,化学生产过程中已采用了越来越多的硬件和软件传感器,以监视与产品质量和过程安全性相关的关键变量。各个传感器的精度很容易受到多种因素的影响。为了提高过程监控的准确性和可靠性,提出了一种基于贝叶斯推理的传感器融合方案。所提出的方法能够组合多速率传感器数据并消除寄生信号。该方法的有效性已使用陶氏化学公司实施的工艺进行了验证。与使用单个传感器的情况相比,传感器融合方法提高了过程监控的可靠性,通过正确识别的杂质警报的比率来量化。

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