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Development of a shear ultrasonic spectroscopy technique for the evaluation of viscoelastic fluid properties: Theory and experimental validation

机译:剪切超声波光谱技术的开发,用于评价粘弹性流体特性:理论与实验验证

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摘要

In-situ measurement of viscosity advances the field of rheology, and aides the development of sensing systems for condition and performance monitoring of lubricated mechanisms. Many lubricated mechanisms, such as journal bearings or seals, are characterised by three-layer interfaces; an oil separating two solid (usually metallic) bodies. The viscoelastic study of the lubricating oil in layered systems is possible in-situ by means of ultrasonic reflection (Schirru a al. (2015)). General solutions exist for the reflection of longitudinal plane waves from multi-layered solid-fluid systems. Similar solutions can be applied to plane shear waves. The use of a quarter-wavelength intermediate matching layer improves the sensitivity of the ultrasonic measurement and overcomes problems of acoustic mismatch. This opens the possibility of using reflectance methods to measure engineering (metal-oil) bearing applications that are acoustically mismatched. In this paper, a rigorous mathematical model for wave propagation in a three-layer system is solved for the reflection coefficient modulus and validated using a quarter wavelength ultrasonic viscometer. The model was tested against experimental data for two Newtonian reference fluids, water and hexadecane, and for one non-Newtonian reference fluid, squalene plus polyisoprene (SQL + PIP), measured ultrasonically at frequencies between 5 and 15 MHz. The results are in agreement with the expected viscosity values for the reference fluids. Further, the viscosity measurement is not limited to the resonance frequency, but it is performed over a broad band frequency range. This is important to improve measurement confidence and accurate spectroscopy measurement for the determination of viscoelastic properties.
机译:原位测量粘度推进流变学领域,并融合润滑机制的条件和性能监测的传感系统的发展。许多润滑机构,例如轴颈轴承或密封件,其特征在于三层界面;分离两个固体(通常是金属)体的油。通过超声反射(Schirru A Al.(2015)),可以原位地原位润滑油的粘弹性研究。存在来自多层固体流体系统的纵向平面波的一般解决方案。类似的解决方案可以应用于平面剪切波。四分之一波长中间匹配层的使用提高了超声波测量的灵敏度,并克服了声波失配的问题。这为使用反射方法来测量声学上不匹配的工程(金属油)应用的可能性。在本文中,解决了三层系统中的波传播的严格数学模型,用于反射系数模量并使用四分之一波长超声粘度计进行验证。该模型针对两种牛顿参考流体,水和十六烷的实验数据进行了测试,并且对于一个非牛顿参考流体,Squalene Plus聚异戊二烯(SQL + PIP),在5到15MHz之间的频率下测量。结果与参考流体的预期粘度值一致。此外,粘度测量不限于谐振频率,而是通过宽带频率范围进行。这对于改善测量置信度和精确的光谱学测量来确定粘弹性性能非常重要。

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  • 来源
    《Ultrasonics》 |2019年第2019期|共12页
  • 作者单位

    Univ Sheffield Leonardo Ctr Tribiol Sheffield S Yorkshire England;

    Univ Sheffield Leonardo Ctr Tribiol Sheffield S Yorkshire England;

    Univ Sheffield Leonardo Ctr Tribiol Sheffield S Yorkshire England;

    Univ Sheffield Leonardo Ctr Tribiol Sheffield S Yorkshire England;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 超声学;
  • 关键词

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