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On the early and developed stages of surface condensation: competition mechanism between interfacial and condensate bulk thermal resistances

机译:在表面凝结的早期和发展阶段:界面和凝结水整体热阻之间的竞争机制

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摘要

We use molecular dynamics simulation to investigate the early and developed stages of surface condensation. We find that the liquid-vapor and solid-liquid interfacial thermal resistances depend on the properties of solid and fluid, which are time-independent, while the condensate bulk thermal resistance depends on the condensate thickness, which is time-dependent. There exists intrinsic competition between the interfacial and condensate bulk thermal resistances in timeline and the resultant total thermal resistance determines the condensation intensity for a given vapor-solid temperature difference. We reveal the competition mechanism that the interfacial thermal resistance dominates at the onset of condensation and holds afterwards while the condensate bulk thermal resistance gradually takes over with condensate thickness growing. The weaker the solid-liquid bonding, the later the takeover occurs. This competition mechanism suggests that only when the condensate bulk thermal resistance is reduced after it takes over the domination can the condensation be effectively intensified. We propose a unified theoretical model for the thermal resistance analysis by making dropwise condensation equivalent to filmwise condensation. We further find that near a critical point (contact angle being ca. 153°) the bulk thermal resistance has the least opportunity to take over the domination while away from it the probability increases.
机译:我们使用分子动力学模拟来研究表面凝结的早期和发展阶段。我们发现,液体-蒸汽和固-液界面的热阻取决于固体和流体的特性,这与时间无关,而凝结水的整体热阻取决于与时间有关的冷凝物厚度。在时间轴上,界面和凝结的整体热阻之间存在内在竞争,对于给定的气固温差,总的热阻决定了凝结强度。我们揭示了竞争机制,即界面热阻在凝结开始时占主导地位,之后一直保持,而凝结体的整体热阻随着凝结物厚度的增加而逐渐占据主导地位。固液结合越弱,接管发生的越晚。这种竞争机制表明,只有当冷凝物占据主导地位后降低其总体积热阻时,才能有效地增强冷凝作用。通过使滴状冷凝等效于膜状冷凝,我们提出了用于热阻分析的统一理论模型。我们进一步发现,在临界点附近(接触角约为153°),体热电阻接管主导地位的机会最少,而远离主导地位的可能性增加。

著录项

  • 期刊名称 Scientific Reports
  • 作者

    Jie Sun; Hua Sheng Wang;

  • 作者单位
  • 年(卷),期 -1(6),-1
  • 年度 -1
  • 页码 35003
  • 总页数 12
  • 原文格式 PDF
  • 正文语种
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