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MULTI-PHASE FLOW AND HEAT TRANSFER OF A MICRO-PUMP THERMALLY-DRIVEN BY PULSE LASER

机译:脉冲激光热驱动微泵的多相流动和传热

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This paper presents an experimental study of multi-phase flow and heat transfer in a micro-pump thermally driven by a multi-output pulse laser. The test-section is a copper micro-tube with inner diameter less than 1 mm. Distilled water is used as the working fluid. The pumping power is provided by phase change of the fluid in the copper tube due to surface heating by a multi-output pulse laser. The pulse laser is a diode embattling type laser with a high-power GaAs/AlGaAs/InGaAsP quanta trap. The laser wavelength is λ = 940 nm, the pulse width, the pulse-interval and the output-power are adjustable within the range of 50 ~ 1000 ms, -10 ~ +10 ms and 0 ~ 40W, respectively. The laser has five output channels with each delivering a beam of linear geometry of 12 mm x 1 mm. With each channel of the laser targeting a segment of the test section, the micro-pump can be driven with a controlled energy distribution along the tube. Extensive flow and heat transfer measurements and visualization experiments have been carried out to characterize the micro-pump behavior under various conditions. The experiments reveal extremely unsteady and complex flow patterns in the microtube with the flow correlating closely with the bubbles' generation and collapse. It is found that the flow rates are controlled by the heating and condensation condition within the tube. The laser pulse width, pulse interval and output-power as well as the tube diameter all show a strong influence on the flow rate of the micro-pump. This study provides a basis for the design of thermally-driven micro-pump induced by pulse-laser.
机译:本文提出了一个由多输出脉冲激光器热驱动的微型泵中多相流动和传热的实验研究。测试部分是内径小于1毫米的铜微管。蒸馏水用作工作流体。泵浦功率是由铜管中的流体由于多输出脉冲激光的表面加热而产生的相变而提供的。脉冲激光器是具有高功率GaAs / AlGaAs / InGaAsP量子阱的二极管激发型激光器。激光波长为λ= 940 nm,脉冲宽度,脉冲间隔和输出功率分别在50〜1000 ms,-10〜+10 ms和0〜40W的范围内可调。激光器具有五个输出通道,每个输出通道均发出12 mm x 1 mm的线性几何光束。通过将激光的每个通道对准测试部分的一部分,可以沿管子以受控的能量分布来驱动微型泵。已经进行了广泛的流动和传热测量以及可视化实验,以表征各种条件下的微型泵性能。实验揭示了微管中极其不稳定和复杂的流动模式,其流动与气泡的产生和破裂密切相关。发现流速受管内的加热和冷凝条件控制。激光脉冲宽度,脉冲间隔和输出功率以及管子直径都对微型泵的流量产生很大影响。该研究为脉冲激光诱导的热驱动微型泵的设计提供了基础。

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