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Numerical analysis for design optimization of microcantilever beams for measuring Theological properties of viscous fluid

机译:用于测量粘性流体流变特性的微悬臂梁设计优化的数值分析

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摘要

The precise measurement of rheological properties is a demanding problem in various field of engineering. Occasionally the available sample volume of interest may be sufficiently small where the conventional methods of measuring rheological properties are inappropriate. Consequently, there is a growing interest in the use of MEMS devices to measure the required properties, especially with an aim of encouraging high throughput. During this research, the dynamic response of micro cantilever beams is demonstrated to characterize the rheological properties of viscous materials. First, the dynamic response of a mini cantilever beam partially submerged in air and water is measured experimentally for different configurations using a duel channel PolyTec scanning vibrometer. Next, finite element analysis (FEA) method is implemented to predict the dynamic response of the same cantilever beam in air and water, and then compared with corresponding experiments. Once the model is validated, further numerical analysis is conducted to investigate the variation in modal response with changing beam dimension and fluid properties. Results obtained from this parametric study can be used for sensitivity analysis and to design the optimized MEMS based test set up for measuring the rheological properties of viscous fluid and of any soft viscoelastic materials such as biofilm. Miniaturization of the measuring instrument is necessary so that small sample volume can be used to perform the desired test.
机译:在各种工程领域中,流变性质的精确测量是一个严峻的问题。有时,在传统的测量流变特性的方法不合适的情况下,可用的目标样品体积可能足够小。因此,人们越来越关注使用MEMS器件来测量所需的性能,特别是为了鼓励高通量。在这项研究过程中,微悬臂梁的动态响应被证明可表征粘性材料的流变特性。首先,使用双通道PolyTec扫描振动计,针对不同配置,通过实验测量了部分浸入空气和水中的微型悬臂梁的动力响应。接下来,采用有限元分析(FEA)方法预测同一悬臂梁在空气和水中的动力响应,然后与相应的实验进行比较。一旦模型通过验证,将进行进一步的数值分析,以研究随着梁尺寸和流体特性变化而引起的模态响应变化。从该参数研究中获得的结果可用于灵敏度分析,并可设计基于MEMS的优化测试装置,用于测量粘性流体和任何软黏弹性材料(如生物膜)的流变特性。必须将测量仪器小型化,以便可以使用较小的样品量来执行所需的测试。

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