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Two-phase flow operational maps for multi-microchannel evaporators

机译:多微通道蒸发器的两相流运行图

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The current paper presents new operational maps for several different multi-microchannel evaporators, with and without any inlet restrictions (micro-orifices), for the two-phase flow of refrigerants R245fa, R236fa, and R1234ze(E). The test fluids flowed in 67 parallel channels, each having a cross-sectional area of 100 × 100 μm~2. In order to emulate the power dissipated by active components in a 3D CMOS CPU chip, two aluminium microheaters were sputtered onto the back-side of the test section providing a 0.5 cm~2 each. Without any inlet restrictions in the micro-evaporator, significant parallel channel flow instabilities, vapor back flow, and flow maldistribution led to high-amplitude and high-frequency temperature and pressure oscillations. Such undesired phenomena were then prevented by placing restrictions at the inlet of each channel. High-speed flow visualization distinguished eight different operating regimes of the two-phase flow depending on the tested operating conditions. Therefore, the preferred operating regimes can be easily traced. In particular, flashing two-phase flow without back flow appeared to be the best operating regime without any flow and temperature instabilities.
机译:本文针对制冷剂R245fa,R236fa和R1234ze(E)的两相流动,提供了几种不同的多微通道蒸发器的新运行图,这些蒸发器有无入口限制(微孔)。测试流体在67个平行通道中流动,每个通道的横截面积为100×100μm〜2。为了模拟3D CMOS CPU芯片中有源组件的功耗,将两个铝制微型加热器溅射到测试部分的背面,每个提供0.5 cm〜2。在微型蒸发器中没有任何入口限制,明显的平行通道流动不稳定性,蒸气回流和流动分配不均会导致高振幅和高频温度和压力振荡。然后通过在每个通道的入口处设置限制来防止此类不良现象。高速流量可视化根据测试的运行条件区分了两相流的八种不同的运行方式。因此,可以容易地找到优选的操作方式。特别是,没有回流的闪蒸两相流似乎是最佳的运行方式,没有任何流动和温度不稳定性。

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