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Absolute Rheological Measurements of Model Suspensions: Influence and Correction of Wall Slip Prevention Measures

机译:悬架的绝对流变学测量:防墙滑措施的影响和修正

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摘要

Since suspensions (e.g., in food, cement, or cosmetics industries) tend to show wall slip, the application of structured measuring surfaces in rheometers is widespread. Usually, for parallel-plate geometries, the tip-to-tip distance is used for calculation of absolute rheological values, which implies that there is no flow behind this distance. However, several studies show that this is not true. Therefore, the measuring gap needs to be corrected by adding the effective gap extension to the prescribed gap height in order to obtain absolute rheological properties. In this paper, we determine the effective gap extension for different structures and fluids (Newtonian, shear thinning, and model suspensions that can be adjusted to the behavior of real fluids) and compare the corrected values to reference data. We observe that for Newtonian fluids a gap- and material-independent correction function can be derived for every measuring system, which is also applicable to suspensions, but not to shear thinning fluids. Since this relation appears to be mainly dependent on the characteristics of flow behaviour, we show that the calibration of structured measuring systems is possible with Newtonian fluids and then can be transferred to suspensions up to a certain particle content.
机译:由于悬浮液(例如在食品,水泥或化妆品工业中的悬浮液)倾向于显示出壁滑,因此在流变仪中广泛使用结构化的测量表面。通常,对于平行板几何形状,尖端到尖端的距离用于计算绝对流变值,这意味着在该距离之后没有流动。但是,一些研究表明这是不正确的。因此,为了获得绝对的流变性质,需要通过将有效的间隙延伸量加到规定的间隙高度上来校正测量间隙。在本文中,我们确定了不同结构和流体(牛顿,剪切稀化和可以根据实际流体的行为进行调整的模型悬浮液)的有效间隙扩展,并将校正后的值与参考数据进行了比较。我们观察到,对于牛顿流体,可以为每个测量系统导出与间隙和材料无关的校正函数,该函数也适用于悬浮液,但不适用于剪切稀化流体。由于这种关系似乎主要取决于流动特性,因此我们证明了牛顿流体可以对结构化测量系统进行校准,然后可以将其转移至一定颗粒含量的悬浮液中。

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