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Design, modeling and characterization of microfluidic devices for ultrasonic manipulation

机译:用于超声处理的微流控设备的设计,建模和表征

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摘要

An ultrasonic micropositioning system which is capable of separating particles into distinct and observable lines has been modeled using a finite element approach. The use of such a contactless manipulation method is believed to have many applications in the fields of microtechnology, life-sciences and lab-on-a-chip devices, one example would be in cell assays. The device consists of an etched silicon wafer which is bonded to a piece of glass the etched area can thus be filled with a fluid containing suspended particles. When the system is excited to vibration by the macro-piezoelectric plate attached on the underside of the silicon wafer, a pressure field is established throughout the fluid volume. When an inhomogeneity in a fluid is exposed to an ultrasonic field the acoustic radiation force results, this is found by integrating the pressure, retaining second order terms, over the surface of the field and taking the time average. Consequently, due to the presence of a pressure field in the fluid in which the particles are suspended, a force field is created. The finite element model is shown to be able to predict the frequencies at which resonance occurs, and the resulting modal shapes.
机译:使用有限元方法对能够将颗粒分离为清晰可见线的超声微定位系统进行了建模。据信这种非接触操纵方法的使用在微技术,生命科学和芯片实验室设备领域中有许多应用,一个例子是细胞测定法。该设备由一个蚀刻的硅晶片组成,该晶片被粘合到一块玻璃上,因此蚀刻区域可以填充有包含悬浮颗粒的流体。当系统通过附着在硅片下表面的大压电板激发振动时,在整个流体体积中都会建立压力场。当流体的不均匀性暴露在超声场中时,会产生声辐射力,这是通过对声场表面上的压力(保留二阶项)进行积分并取时间平均值来发现的。因此,由于在其中悬浮有颗粒的流体中存在压力场,所以产生了力场。有限元模型显示出能够预测共振发生的频率以及所产生的模态形状。

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