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Dynamic viscosity measurements of colloids using quartz crystal resonators.

机译:使用石英晶体谐振器的胶体动态粘度测量。

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The objective of this work is to understand the relationship between the rheological properties of complex fluids like colloidal dispersions and the response of a Thickness Shear Mode (TSM) Quartz-Crystal Resonator (QCR). Such fluids are often non-Newtonian because their steady shear viscosities are shear-rate dependent and because they exhibit viscoelastic behavior. Due to practical interests in obtaining viscosity information at high shear rates, in the order of 107 s-1, the focus of this work is on corresponding high frequencies, in the order of 10 MHz, oscillatory measurements. The use of piezoelectric devices, like the TSM-QCR, is expected to provide relevant viscoelastic information directly with additional possibilities of fast-response for in-line or on-line process sensing.; The TSM-QCR frequency response was analyzed to obtain complex viscosities of several colloidal dispersions over the frequency range of 3--50 MHz. The test dispersions included latex suspensions, coating formulations, and polymer solutions. The effects of flow rate, concentration, and particle size are reported. The measurement technique was validated using water and three alcohols as reference liquids. The average deviation between experimental and predicted values for the magnitude of the complex viscosity |eta*| as a function of frequency for the reference fluids was ∼10%. The TSM-QCR is shown to be sensitive to the properties of the test suspension as a whole, and not the suspending medium alone.; The |eta*| vs. frequency response from TSM-QCRs operating at high frequencies (>1MHz) showed the same continuing decreasing trend as the response from rotational rheometers operating at low frequencies (100 Hz). Comparison of shear-rate dependent steady-shear viscosity from high pressure capillary rheometer with the |eta*| as a function of angular frequency from TSM-QCR shows consistent trends as expected from the Cox-Merz rule. The concentration effect on |eta*| of a coating formulation followed a Krieger-Daugherty type relationship. Flow-through operation showed that the |eta*| drops by 25% when NRe changes from 0 to 500 and drops to 40--60% when NRe reaches 2100. This study shows promise of TSM-QCR for characterizing high-frequency complex viscosity of practical colloidal dispersions in static as well as flow-through conditions.
机译:这项工作的目的是了解像胶体分散体这样的复杂流体的流变特性与厚度剪切模式(TSM)石英晶体谐振器(QCR)的响应之间的关系。这种流体通常是非牛顿流体,因为它们的稳定剪切粘度取决于剪切速率,并且因为它们表现出粘弹性。由于在高剪切速率下以107 s-1的数量级获得粘度信息的实际兴趣,因此这项工作的重点是振荡测量的相应高频(数量级为10 MHz)。期望像TSM-QCR这样的压电设备的使用将直接提供相关的粘弹性信息,并具有在线或在线过程传感快速响应的其他可能性。分析了TSM-QCR频率响应,以获得在3--50 MHz频率范围内几种胶体分散体的复数粘度。测试分散液包括乳胶悬浮液,涂料配方和聚合物溶液。报告了流速,浓度和粒径的影响。使用水和三种醇作为参考液体验证了测量技术。实验值和预测值之间的复数粘度| eta * |的平均偏差参考流体的频率的函数约为10%。 TSM-QCR被证明对整个测试悬浮液敏感,而不是对悬浮介质敏感。 | eta * |在高频(> 1MHz)下运行的TSM-QCR的频率响应显示出与在低频(<100 Hz)下运行的旋转流变仪的响应相同的持续下降趋势。 | eta * |与高压毛细管流变仪的剪切速率相关的稳态剪切粘度的比较作为TSM-QCR角频率的函数,它显示出Cox-Merz规则所期望的一致趋势。浓度对| eta * |的影响涂料配方的遵循Krieger-Daugherty类型关系。直通操作显示| eta * |当NRe从0变到500时下降25%,而当NRe达到2100时下降到40--60%。这项研究表明TSM-QCR有望用于表征实际胶体分散体在静态和流动状态下的高频复数粘度。通过条件。

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