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Design and optimisation of electromagnetic flowmeter for conductive liquids and its calibration based on neural networks

机译:基于神经网络的导电液体电磁流量计的设计,优化及其标定

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Using Faraday's Law of electromagnetic induction, electromagnetic flowmeters are used to measure the industrial process flow rate of fluids. In these devices, the windings around the pipe are designed to produce the required magnetic field, and electrodes that are mounted on two sides of the pipe wall are used to measure the induced voltage in proportion to the liquid flow rate. The design and optimisation of an electromagnetic flowmeter for conductive liquids are presented. In this respect, a two-dimensional mathematical model with a finite difference (FD) numerical solution approach is used for calculation of the electric potential difference between the electrodes. The basic concepts of the electromagnetic flowmeter design and simulation are presented using m-file programming in Matlab software. Then, with respect to the fact that fluid flow depends on two variables, liquid level and the conductivity coefficient of the liquid and pipe bed, a three-layer neural network is used for accurate calibration of the electromagnetic flowmeter. In this new approach, for a circular cross-section pipe, the correction factor used for the calibration is accurately estimated. Finally, simulation results are provided to show the accuracy of the applied technique.
机译:根据法拉第电磁感应定律,电磁流量计用于测量流体的工业过程流速。在这些设备中,管道周围的绕组被设计为产生所需的磁场,并且安装在管道壁两侧的电极用于测量与液体流量成比例的感应电压。介绍了用于导电液体的电磁流量计的设计和优化。在这方面,具有有限差分(FD)数值求解方法的二维数学模型用于计算电极之间的电势差。使用Matlab软件中的m文件编程介绍了电磁流量计设计和仿真的基本概念。然后,考虑到流体流量取决于两个变量,即液位以及液体和管床的电导率系数,使用了三层神经网络来精确校准电磁流量计。在这种新方法中,对于圆形横截面管道,可以准确估算用于校准的校正因子。最后,仿真结果表明了所应用技术的准确性。

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