...
首页> 外文期刊>Nanoscale and microscale thermophysical engineering >Thermodynamic analysis of wall effects on phase stability and homogeneous nucleation in Nanochannels containing superheated liquid
【24h】

Thermodynamic analysis of wall effects on phase stability and homogeneous nucleation in Nanochannels containing superheated liquid

机译:壁对含过热液体的纳米通道中相稳定性和均相成核作用的热力学分析

获取原文
获取原文并翻译 | 示例

摘要

Rapid heating or sudden depressurization can create highly superheated liquid conditions in stationary or flowing liquid in nanochannels. In these situations, the phase stability of the liquid and the conditions for the onset of bubble nucleation are important factors in the fluid behavior and heat transfer in applications. In the investigation summarized here, a statistical thermodynamics analysis is used to derive a modified version of the Redlich-Kwong fluid property model that accounts for attractive forces between the solid wall surface atoms and liquid molecules in the fluid within a high aspect ratio (parallel plate) nanochannel. In this model, the wall-fluid attractive forces are quantified in terms of Hamaker constants, which makes it possible to assess the effect of wall-fluid force interactions on the spinodal conditions for a variety of fluid and surface material combinations. At large channel widths the fluid properties exhibit wall effects very near each wall, with bulk fluid property values being predicted in the center of the channel. As the channel width decreases, the fluid in the center of the channel begins to feel the effects of both walls and the properties deviate from the bulk values throughout the channel; importantly, the spinodal temperature increases significantly above the bulk fluid value. The results of this analysis imply that in nano- and micropassages and near walls with nano- to microscale roughness, fluid may experience a stabilizing effect due to its proximity to nearby walls, which may, in turn, inhibit bubble nucleation.
机译:快速加热或突然降压会在纳米通道的固定或流动液体中产生高度过热的液体条件。在这些情况下,液体的相稳定性和气泡成核的发生条件是应用中流体行为和传热的重要因素。在这里总结的研究中,使用统计热力学分析来得出Redlich-Kwong流体特性模型的修改版本,该模型说明了高纵横比下流体中固体壁表面原子与液体分子之间的吸引力(平行平板)纳米通道。在此模型中,根据Hamaker常数对壁流体吸引力进行了量化,这使得有可能评估壁流体力相互作用对多种流体和表面材料组合的旋节线条件的影响。在较大的通道宽度下,流体特性在每个壁附近都表现出壁效应,并且在通道中心预测了总体流体特性值。随着通道宽度的减小,通道中心的流体开始感觉到两个壁的作用,并且其特性会偏离整个通道的体积值。重要的是,旋节线管的温度显着升高到高于体液值。该分析的结果表明,在纳米通道和微通道以及具有纳米级到微米级粗糙度的壁附近,由于流体靠近附近的壁,因此可能会遇到稳定作用,从而可能会抑制气泡成核。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号