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Design of a high precision temperature measurement system based on artificial neural network for different thermocouple types

机译:基于人工神经网络的不同热电偶类型高精度测温系统设计

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摘要

Many types of sensors are nonlinear in nature but require an output that is linear. If linear approximation is accepted, for a given accuracy level, noise and measurement errors are always present. Therefore, curve-fitting techniques are frequently required to average these effects. The problem of estimating the sensor's input-output characteristics is being increasingly tackled using software techniques. This paper describes an experimental method for the estimation of nonlinearity, testing and calibrating of the different thermocouple types using artificial neural network (ANN) based algorithms integrated in a virtual instrument (VI). An ANN and a data acquisition board with designed signal conditioning unit are used for data optimization and to collect experimental data, respectively. In both training and testing phases of the ANN, the Wavetek 9100 calibration unit is used to obtain experimental data. After the successful training completion of the ANN, it is then used as a neural linearizer to calculate the temperature from the thermocouple's output voltage.
机译:许多类型的传感器本质上是非线性的,但需要线性的输出。如果接受线性近似,对于给定的精度水平,总会出现噪声和测量误差。因此,经常需要曲线拟合技术来平均这些效果。使用软件技术正越来越多地解决估计传感器的输入输出特性的问题。本文介绍了一种基于虚拟仪器(VI)的基于人工神经网络(ANN)的算法来估算不同热电偶类型的非线性,进行测试和校准的实验方法。具有设计的信号调节单元的ANN和数据采集板分别用于数据优化和收集实验数据。在人工神经网络的训练和测试阶段,Wavetek 9100校准单元均用于获取实验数据。在成功完成ANN的训练后,它将用作神经线性化器,以根据热电偶的输出电压计算温度。

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