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Measurement of viscosity and shear wave velocity of a liquid or slurry for on-line process control

机译:用于在线过程控制的液体或浆料的粘度和剪切波速度的测量

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摘要

An on-line sensor to measure the density of a liquid or slurry, based on longitudinal wave reflection at the solid-fluid interface, has been developed by the staff at Pacific Northwest National Laboratory. The objective of this research is to employ shear wave reflection at the solid-fluid interface to provide an on-line measurement of viscosity as well. Both measurements are of great interest for process control in many industries. Shear wave reflection measurements were conducted for a variety of liquids. By analyzing multiple reflections within the solid (only 0.63 cm thick—similar to pipe wall thickness) we increased the sensitivity of the measurement. At the sixth echo, sensitivity was increased sufficiently and this echo was used for fluid interrogation. Shear wave propagation of ultrasound in liquids is dependent upon the viscosity and the shear modulus. The data are analyzed using the theory for light liquids (such as water and sugar water solutions) and also using the theory for highly viscous liquids (such as silicone oils). The results show that, for light liquids, the shear wave reflection measurements interrogate the viscosity. However, for highly viscous liquids, it is the shear wave modulus that dominates the shear wave reflection. Since the density is known, the shear wave velocity in the liquid can be determined from the shear wave modulus. The results show that shear wave velocities in silicone oils are very small and range from 315 to 2389 cm/s. Shear wave reflection measurements are perhaps the only way that shear wave velocity in liquids can be determined, because the shear waves in liquids are highly attenuated. These results show that, depending on the fluid characteristics, either the viscosity or the shear wave velocity can be used for process control. There are several novel features of this sensor: (1) The sensor can be mounted as part of the wall of a pipeline or tank or submerged in a tank. (2) The sensor is very compact and can be located within the process stream. (3) The sensor can interrogate and characterize very attenuative liquids or slurries because the sensor operation depends upon reflection at the interface between the solid and the fluid, rather than on transmission through a liquid. (4) The sensor performance is not affected by fluid flow rate, entrained air, or vibration.
机译:西北太平洋国家实验室的工作人员已经开发出一种在线传感器,该传感器可以根据在固液界面的纵波反射来测量液体或浆液的密度。这项研究的目的是在固体-流体界面处采用剪切波反射来提供粘度的在线测量。两种测量对于许多行业的过程控制都非常重要。对各种液体进行了剪切波反射测量。通过分析固体内的多次反射(厚度仅为0.63 cm,与管道壁厚相似),我们提高了测量的灵敏度。在第六回波处,灵敏度充分提高,并且该回波用于流体询问。超声波在液体中的剪切波传播取决于粘度和剪切模量。使用轻质液体理论(例如水和糖水溶液)以及高粘度液体理论(例如硅油)对数据进行分析。结果表明,对于轻质液体,剪切波反射测量会影响粘度。但是,对于高粘度液体,是剪切波模量主导了剪切波反射。由于密度是已知的,因此可以从剪切波模量确定液体中的剪切波速度。结果表明,硅油中的剪切波速度非常小,范围为315至2389 cm / s。剪切波反射测量可能是确定液体中剪切波速度的唯一方法,因为液体中的剪切波会高度衰减。这些结果表明,根据流体特性,可以将粘度或剪切波速度用于过程控制。该传感器具有几个新颖的特征:(1)传感器可以安装为管道或储罐壁的一部分,也可以浸入储罐中。 (2)传感器非常紧凑,可以放置在过程流中。 (3)传感器可以检定和表征非常衰减的液体或浆液,因为传感器的工作取决于固体和流体之间的界面处的反射,而不是取决于通过液体的传输。 (4)传感器的性能不受流体流速,夹带的空气或振动的影响。

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