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Formalizing the Movement of Microparticles in a Continuous Flow Microfluidic Device for Field Flow Fractionation

机译:将微粒在连续流动微流体装置中的运动进行正常化,用于现场流量分级

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摘要

The movement of microparticles in a continuous flow microfluidic device employing dielectrophoresis for purposes of field-flow fractionation is a challenging problem since there are several forces incorporated. For instance, forces due to inertia, gravity, buoyancy, dielectrophoresis and virtual mass are accounted for in this system. The governing equations for particle movement are solved conventionally using finite difference method. This device is designed to be used in biomedical engineering for separation of cancer cells from blood. As per the model, the levitation height is independent of the radius, volumetric flow rate and microchannel height, under steady state conditions, of the microparticles when subjected to dielectrophoresis. On the other hand, it is dependent on the applied voltage and electrode/gap length. While the levitation height, under transient conditions, is dependent on all these parameters. This shows that understanding the particle movement at high level of abstraction is necessary in order to avoid fundamental errors in the design of systems that can make use of this behavior. In this paper we use Event-B formal methods in order to formalize and validate the movement of microparticles under DEP. This is achieved by modeling the dynamic behavior that can predict the trajectory of microparticles as a transition state based system. The proposed model can provide early understanding of the behavior of the system at high level of abstraction, and therefore, can help validating several aspects of the design which is beneficial to designers of DEP-FFF microdevice at early stages of the design process.
机译:微粒在连续流微流体装置采用介电电泳用于场流分级的目的,运动是一个具有挑战性的问题,因为有几个并入力。举例来说,由于惯性作用,重力,浮力,介电电泳和虚拟质量力在这个系统中都占了。粒子运动的控制方程使用有限差分法求解常规。此装置被设计为用于从血液癌细胞的分离生物医学工程中使用。按照该模型,悬浮高度独立于半径,体积流率和微通道的高度的,稳态条件下,微粒的当经受介电电泳。在另一方面,它是依赖于所施加的电压和电极/间隙长度。虽然悬浮高度,在瞬态条件下,依赖于所有这些参数。这表明,在了解高层次的抽象的粒子运动是必要的,以避免在系统中,可以利用这种行为的设计基本错误。在本文中,我们使用DEP为了在正式和验证微粒的运动事件-B形式化方法。这是通过建模,可以预测微粒的轨迹作为过渡状态的系统动态行为来实现的。该模型可以在高层次的抽象提供系统行为的早期理解,因此,可以帮助确认这是在设计过程的早期阶段DEP-FFF微的设计有利于设计的几个方面。

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