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ELECTROTHERMAL PUMPING WITH THIN FILM RESISTIVE HEATERS

机译:薄膜电阻加热器的电热泵

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The ability to manipulate small amounts of fluid is important for a variety of lab-on-a-chip applications. Electrokinetic microfluidic actuation methods, such as electrothermal pumping, are popular due to their simple implementation and reliability from no moving parts. Electrothermal motion in aqueous solutions results from the electric field acting upon dielectric inhomogeneities in the liquid induced by temperature gradients. The most traditional method of inducing temperature gradients is through direct Joule heating of the fluid itself, which is a function of the electrical conductivity of the liquid. In this case, the microelectrode geometry controls both the location of the Joule heating and the nature of the electric field. Therefore, it is impossible to independently control temperature and electric field with a single set of electrodes. A novel electrothermal microfluidic pump is demonstrated herein. The distinguishing feature of this electrothermal pump is an independent heating source using resistive heating of microfabricated metal traces. A second set of electrodes for electrothermal pumping have been layered on top of the electrically isolated heating elements. An arrangement of coplanar electrode strips with an additional resistive heating electrode was used to demonstrate electrothermal pumping. Fluid motion results were compared to established theory.
机译:处理少量流体的能力对于各种片上实验室应用都很重要。电动微流体致动方法(例如电热泵)由于其实现简单且无活动部件而具有可靠性,因此很受欢迎。水溶液中的电热运动是由电场引起的,该电场作用于温度梯度引起的液体中的介电不均匀性。引起温度梯度的最传统方法是通过直接对流体本身进行焦耳加热,这是液体电导率的函数。在这种情况下,微电极的几何形状既控制焦耳加热的位置,又控制电场的性质。因此,不可能通过单组电极来独立地控制温度和电场。本文展示了一种新颖的电热微流体泵。这种电热泵的显着特征是使用电阻加热微型金属迹线的独立加热源。用于电热泵送的第二组电极已层叠在电绝缘的加热元件上。共面电极条与附加电阻加热电极的布置用于演示电热泵送。将流体运动结果与已建立的理论进行了比较。

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