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Experimental characterization of novel microdiffuser elements

机译:新型微型器材元素的实验表征

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Micropumps can play a significant role in thermal management applications, as a component of microfluidic cooling systems. For next-generation high density optical communication systems, in particular, heat flux levels are sufficiently high to require a microfluidic circuit for cooling. Valveless piezoelectrically-actuated micropumps are a particularly promising technology to be deployed for this application. These pumps exploit the asymmetric flow behaviour of microdiffusers to achieve net flow. They feature no rotating or contacting parts, which make them intrinsically reliable in comparison to micropumps with active valves. In this paper, two novel microdiffuser elements are reported and characterized. The micropumps were fabricated using a 3D Printer. Each single diffuser had a length of 1800 μm and a depth of 400 μm. An experimental characterization was conducted in which the flow rate and differential pressure were measured as a function of operating frequency. In comparison with standard difíuser, both elements showed an increase in differential pressure in the range of 40 - 280 %, but only one of the elements exhibited an improved flow rate, of about 85 %.
机译:MicroPumps可以在热管理应用中发挥重要作用,作为微流体冷却系统的组成部分。对于下一代高密度光通信系统,特别是热通量水平足够高,以便需要微流体回路进行冷却。 Valveless压电驱动的Micropumps是用于该应用的特别有前途的技术。这些泵利用Microdiffusers的不对称流动行为来实现净流量。它们没有旋转或接触零件,使其在与具有活性阀的微泵相比的情况下本质上可靠。本文报告并表征了两种新型微型器材元件。使用3D打印机制造微泵。每个单个漫射器的长度为1800μm,深度为400μm。进行实验表征,其中测量流速和差压作为操作频率的函数。与标准Difíuser相比,两种元素显示出差压的增加,范围为40-280%,但只有一个元素表现出提高的流速,其流速约为85%。

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