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A numerical study for thermocapillary induced patterning of thin liquid films

机译:薄液膜热量诱导图案化的数值研究

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摘要

The underlying mechanism of thermal induced patterning is investigated using a numerical phase-field model. Research on the subject has been mostly restricted to lubrication approximation, which is only valid for the cases that the initial film thickness is smaller than the characteristic wavelength of induced instabilities. Since the long-wave approximation is no longer valid in the later stages of pattern evolution, we employed the full governing equations of fluid flow and the thermally induced Marangoni effect to track the interface between the polymer film and the air bounding layer. Conducting a systematic study on the impact of influential parameters, we found that an increase in the temperature gradient, thermal conductivity ratio, and initial thickness of the thin film resulted in shorter processing time and faster pattern formation. Additionally, the contact angle between the polymer film and the bounding plates showed a significant effect on the shape of created features. Compared to the reported experimental observation by Dietzel and Troian ["Mechanism for spontaneous growth of nanopillar arrays in ultrathin films subject to a thermal gradient," J. Appl. Phys. 108, 074308 (2010)], our numerical modeling provided a more accurate prediction of the characteristic wavelength against the linearized model currently used in the literature. The numerical findings in this study provide valuable insight into thermal-induced patterning, which can be a useful guide for future experimental works. Published under license by AIP Publishing.
机译:使用数值相场模型研究了热感应图案化的底层机制。对受试者的研究大多限于润滑近似,这对于初始膜厚度小于诱导的稳定性的特征波长的情况仅是有效的。由于长波近似在图案进化的后期不再有效,因此我们采用了流体流动的全控制方程和热诱导的Marangoni效应,以跟踪聚合物膜和空空间之间的界面。对影响有影响性参数的影响进行系统研究,我们发现薄膜的温度梯度,导热比率和初始厚度的增加导致了更短的处理时间和更快的图案形成。另外,聚合物膜和边界板之间的接触角对产生特征的形状显示出显着影响。与饮食和培养型纳米玻璃阵列自发生长的机制相比,超薄膜受到热梯度的实验观察,“J.Phant。物理。 108,074308(2010)],我们的数值建模提供了更准确地预测对目前在文献中使用的线性化模型的特征波长的预测。该研究中的数值发现提供了对热引起的图案化的有价值的洞察力,这可以是未来实验工程的有用指南。通过AIP发布在许可证下发布。

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  • 来源
    《Physics of fluids》 |2020年第2期|共13页
  • 作者单位

    Univ Alberta Dept Mech Engn Adv Water Res Lab Edmonton AB T6G 1H9 Canada;

    Univ Alberta Dept Mech Engn Adv Water Res Lab Edmonton AB T6G 1H9 Canada;

    Univ Alberta Dept Mech Engn Adv Water Res Lab Edmonton AB T6G 1H9 Canada;

    Univ Alberta Dept Mech Engn Computat Fluid Engn Lab Edmonton AB T6G 1H9 Canada;

    Univ Alberta Dept Mech Engn Adv Water Res Lab Edmonton AB T6G 1H9 Canada;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 流体力学;
  • 关键词

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