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Design Guidelines for Thermally Driven Micropumps of Different Architectures Based on Target Applications via Kinetic Modeling and Simulations

机译:通过动力学建模和仿真基于目标应用的不同架构的热驱动微型泵设计指南

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摘要

The manufacturing process and architecture of three Knudsen type micropumps are discussed and the associated flow performance characteristics are investigated. The proposed fabrication process, based on the deposition of successive dry film photoresist layers with low thermal conductivity, is easy to implement, adaptive to specific applications, cost-effective, and significantly improves thermal management. Three target application designs, requiring high mass flow rates (pump A), high pressure differences (pump B), and relatively high mass flow rates and pressure differences (pump C), are proposed. Computations are performed based on kinetic modeling via the infinite capillary theory, taking into account all foreseen manufacturing and operation constraints. The performance characteristics of the three pump designs in terms of geometry (number of parallel microchannels per stage and number of stages) and inlet pressure are obtained. It is found that pumps A and B operate more efficiently at pressures higher than 5 kPa and lower than 20 kPa, respectively, while the optimum operation range of pump C is at inlet pressures between 1 kPa and 20 kPa. In all cases, it is advisable to have the maximum number of stages as well as of parallel microchannels per stage that can be technologically realized.
机译:讨论了三种Knudsen型微型泵的制造工艺和结构,并研究了相关的流动性能特征。所提出的制造工艺基于具有低热导率的连续干膜光致抗蚀剂层的沉积,易于实施,适用于特定应用,具有成本效益并显着改善了热管理。提出了三种目标应用设计,它们需要高质量流量(泵A),高压力差(泵B)以及相对较高的质量流量和压力差(泵C)。考虑到所有可预见的制造和操作约束,计算是基于通过无限毛细管理论的动力学建模进行的。获得了三种泵设计在几何形状(每级平行微通道数量和级数)和入口压力方面的性能特征。可以发现,泵A和B分别在高于5 kPa和低于20 kPa的压力下更有效地运行,而泵C的最佳运行范围是在1 kPa和20 kPa的入口压力之间。在所有情况下,建议具有最大数量的级数以及每个级可以通过技术实现的平行微通道数量。

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