首页> 外文会议>International Conference on Nanochannels, Microchannels and Minichannels >HOMOGENEOUS NUCLEATION OF VAPOR AT PREFERRED SITES DURING RAPID TRANSIENT HEATING OF LIQUID IN MICROPASSAGES
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HOMOGENEOUS NUCLEATION OF VAPOR AT PREFERRED SITES DURING RAPID TRANSIENT HEATING OF LIQUID IN MICROPASSAGES

机译:在微米液中液体快速加热期间优选位点的均匀成核

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Rapid heating of a liquid at the wall of a micropassage may produce homogenous nucleation of vapor in the liquid in contact with the surface. In such circumstances, nucleation is generally expected to be most likely to occur in the hottest liquid closest to the surface. It is known, however, that in many cases the liquid molecules closest to the surface will experience long-range attractive forces to molecules in the solid, with the result that the equation of state for the liquid near the surface will differ from that for the bulk liquid. In micro- and nanopassages, this wall-affected region may be a significant fraction of the passage interior volume. Recent investigations of wall force effects on the liquid indicate that these forces increase the spinodal temperature in the near-surface region. The results of these previous investigations suggest that for heated surfaces with nanoscale roughness, protrusion of bulk fluid into crevices in the surface may make them preferred sites for homogeneous nucleation during rapid heating. A detailed model analysis of the heat transfer in a model conical crevice is developed and used to explore the plausibility and apparent mechanisms of preferred site homogeneous nucleation. The analysis predicts that protrusion of bulk liquid into a conical cavity does, under some conditions, make the cavity a preferred site for the first occurrence of homogenous nucleation. The analysis is used to examine the range of conditions under which a crevice will be a preferred site. The implications of this increase for nucleation near a solid surface during rapid heating are also explored for circumstances similar to those for bubble nucleation adjacent to heaters in microheater reservoirs in inkjet printer heads.
机译:微疫苗壁上的液体的快速加热可以在与表面接触的液体中产生均匀的蒸汽核。在这种情况下,通常预期成核通常可能发生在最接近表面的最热液体中。然而,已知,在许多情况下,最接近表面的液体分子将对固体中的分子经验到固体中的远程吸引力,结果是,表面附近的液体状态的等式会与该结果不同散装液体。在微型和纳米宽计,该壁影响区域可以是通道内部容积的显着分数。最近对液体效应的研究表明,这些力增加了近表面区域中的纺丝镜温度。这些先前的研究结果表明,对于具有纳米级粗糙度的加热表面,将散装流体突出到表面中的裂缝中可以使它们在快速加热期间均匀成核的优选位点。显影锥形缝隙中的传热的详细模型分析,并用于探讨优选的位点均匀成核的合理性和表观机制。分析预测,在某些条件下,将散装液体突出到锥形腔中的腔体使腔成为第一次出现均匀成核的优选部位。分析用于检查缝隙是优选地点的条件范围。对于在快速加热期间,这种增加对固体表面附近的成核的影响也被探索了与喷墨打印机头中的微热器储存器中的加热器邻近的气泡成核相似的情况。

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