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超声波热量表流量计量中温度补偿算法研究
引用本文:崔晓志,王翥.超声波热量表流量计量中温度补偿算法研究[J].传感技术学报,2015,28(8):1169-1175.
作者姓名:崔晓志  王翥
作者单位:哈尔滨工业大学 威海 信息与电气工程学院,山东威海,264209
基金项目:山东省科技发展计划项目,山东省科技发展计划项目,山东省科技发展计划项目
摘    要:针对超声波热量表采用时差法测量流量时,因受温度影响而存在的非线性问题,提出了分别基于曲面拟合和BP神经网络的温度补偿算法。两种算法通过建立温度与流量之间的非线性映射关系,达到补偿流量测量的目的。建模与仿真可知, BP神经网络补偿算法表现出更好的数据融合及预测能力。验证实验表明,相对于现有查表修正算法和曲面拟合补偿算法,BP神经网络补偿算法补偿效果更佳,补偿后流量测量误差在±2.2%以内,绝对误差方差最大值为0.68,补偿效果显著,具有较高的工程应用价值。

关 键 词:超声波热量表  BP神经网络  曲面拟合  温度补偿

Research on Temperature Compensation Algorithm in Ultrasonic Heat Meter Flow Measurement
Abstract:When using transit-time ultrasonic heat meter for the flow measurement,there is a nonlinear problem af?fected by temperature. In order to solve it,this paper proposed two kinds of temperature compensation algorithms re?spectively based on curve fitting algorithm and BP neural network. These two algorithms compensated flow measure?ment by establishing mapping relationship between temperature and flow. After modeling and simulation analysis , BP neural network compensation algorithm showed better ability of data integration and prediction. Spot test proved that BP neural network compensation algorithm had superior correction effect than the existing look-up table correc?tion algorithm and curve fitting compensation algorithm. Flow measurement error was limited within ± 2.2%and the maximum absolute error variance was 0.68 after BP neural network compensating. BP neural network compensation algorithm had great value of application with significant compensation effect.
Keywords:ultrasonic heat meter  BP neural network  curve fitting  temperature compensation
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