Improvements in Fixed-Valve Micropump Performance Through Shape Optimization of Valves

微型泵 流量(数学) 雷诺数 机械工程 空化 材料科学 控制理论(社会学) 机械 计算机科学 工程类 湍流 物理 人工智能 控制(管理)
作者
Adrian R. Gamboa,Christopher J. Morris,Fred K. Forster
出处
期刊:Journal of Fluids Engineering-transactions of The Asme [ASM International]
卷期号:127 (2): 339-346 被引量:108
标识
DOI:10.1115/1.1891151
摘要

The fixed-geometry valve micropump is a seemingly simple device in which the interaction between mechanical, electrical, and fluidic components produces a maximum output near resonance. This type of pump offers advantages such as scalability, durability, and ease of fabrication in a variety of materials. Our past work focused on the development of a linear dynamic model for pump design based on maximizing resonance, while little has been done to improve valve shape. Here we present a method for optimizing valve shape using two-dimensional computational fluid dynamics in conjunction with an optimization procedure. A Tesla-type valve was optimized using a set of six independent, non-dimensional geometric design variables. The result was a 25% higher ratio of reverse to forward flow resistance (diodicity) averaged over the Reynolds number range 0<Re⩽2000 compared to calculated values for an empirically designed, commonly used Tesla-type valve shape. The optimized shape was realized with no increase in forward flow resistance. A linear dynamic model, modified to include a number of effects that limit pump performance such as cavitation, was used to design pumps based on the new valve. Prototype plastic pumps were fabricated and tested. Steady-flow tests verified the predicted improvement in diodicity. More importantly, the modest increase in diodicity resulted in measured block-load pressure and no-load flow three times higher compared to an identical pump with non-optimized valves. The large performance increase observed demonstrated the importance of valve shape optimization in the overall design process for fixed-valve micropumps.
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