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Investigation of flow boiling instabilities in silicon microgap heat sink

机译:硅微间隙散热器中流动沸腾不稳定性的研究

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Flow boiling instabilities induce mechanical vibration in the system and deteriorate the heat transfer performances, for example- premature dryout, critical heat flux limitation etc. The two phase microgap heat sink has novel potential to mitigate these undesirable flow boiling instabilities and flow reversal issues inherent with two phase microchannel heat sink. This work is an experimental study of boiling instabilities in microgap heat sink for different microgap depths ranging from 80μm–1000μm, mass fluxes from 390kg/m²s–900kg/m²s, heat fluxes up to 85W/cm² and different microgap surface roughnesses, Ra=0.6−1μm. A series of systematic experiments have been carried out to investigate the inlet pressure and wall temperature oscillations during two phase flow boiling condition under uniform heating, with deionized water as a cooling liquid. Experimental result shows that pressure oscillation increases with the decreasing microgap depth. Temperature oscillation is observed lower for smaller gap than larger gap up to a certain heat flux condition before the dryout phase. In addition, inlet pressure instabilities increase with increasing heat flux and decreasing mass flux. Moreover, surface roughness has an adverse effect on the inlet pressure instability at larger depth microgap heat sink and inlet pressure fluctuation increases with increasing surface roughness.
机译:沸腾不稳定性会引起系统中的机械振动,并降低传热性能,例如过早干燥,临界热通量限制等。两相微间隙散热器具有缓解这些不希望的沸腾不稳定性和固有的逆流问题的新潜力。两相微通道散热器。这项工作是对不同深度的微间隙散热器的沸腾不稳定性的实验研究,深度范围为80μm–1000μm,质量通量为390kg / m²s–900kg /m²,热通量高达85W /cm²,并且不同的微间隙表面粗糙度为Ra = 0.6 -1μm。以去离子水为冷却液,在均匀加热下两相流沸腾条件下,进行了一系列系统实验,研究了入口压力和壁温振荡。实验结果表明,压力波动随着微间隙深度的减小而增大。观察到较小间隙的温度振荡低于较大间隙,直至在变干阶段之前达到一定的热通量条件。另外,入口压力不稳定性随着热通量的增加和质量通量的减少而增加。而且,表面粗糙度对较大深度的微间隙散热器的入口压力不稳定性有不利影响,并且入口压力波动会随着表面粗糙度的增加而增加。

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