Thermal Characterization of an Ultrasonic Measurement Cell

R. Higuti, B. S. Galindo, L. Marcal, C. Kitano, F. Buiochi, J. Adamowski
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Abstract

Temperature plays an important role in any sensor device, because it can affect sensor properties, limiting its accuracy and operation range. At constant temperature, ultrasonic density sensors can reach accuracies of 0.1%. However, temperature fluctuations are expected to exist in an industrial plant, and sensor performance must be studied in the presence of temperature gradients. Each sensor geometry and construction can give rise to different behaviors under temperature gradients, limiting the possible accuracy in density measurements. In this work, an ultrasonic density measurement cell is experimentally characterized and its performance in the presence of temperature gradients is studied in the 15 to 40degC temperature range for several liquids. The propagation velocity can be measured with high accuracy (0.07 %) in a range of temperatures as long as the sample chamber length is corrected. The cell was tested with distilled water, alcohol and other liquids, showing 0.2 % accuracy in density measurement for stabilized temperature and 0.4 % under thermal gradient conditions
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超声测量池的热特性
温度在任何传感器设备中都起着重要的作用,因为它会影响传感器的性能,限制其精度和工作范围。在恒温条件下,超声密度传感器的精度可达0.1%。然而,在工业工厂中,温度波动是预期存在的,因此必须在温度梯度存在的情况下研究传感器的性能。每种传感器的几何形状和结构在温度梯度下会产生不同的行为,从而限制了密度测量的可能精度。在这项工作中,对超声波密度测量池进行了实验表征,并在温度梯度存在的情况下研究了几种液体在15至40℃温度范围内的性能。只要对样品腔长度进行校正,在一定温度范围内,传播速度的测量精度可达0.07%。用蒸馏水、酒精和其他液体对电池进行测试,在稳定温度下密度测量精度为0.2%,在热梯度条件下密度测量精度为0.4%
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