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Experimental and numerical investigation of thermocapillary effects in thin liquid layers.

机译:薄液层中热毛细管效应的实验和数值研究。

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摘要

Thin liquid layers have been proposed for heat extraction and protection of the solid surfaces of divertors in magnetic fusion reactors. A number of conceptual designs for plasma-facing components (PFC) use stationary and flowing liquid layers as a renewable first wall for reactor chambers to remove heat and shield solid surfaces from damaging radiation while maintaining acceptable plasma purity levels. Such liquid-protected PFC have the potential to make fusion more commercially attractive by increasing reactor lifetimes and decreasing failure rates. The results of this research will help identify the parameter ranges for successful operation of such protection schemes.; This thesis investigates the thermocapillary behavior of axisymmetric horizontal liquid layers with initial heights from 0.27 to 3.0 mm. A negative radial temperature gradient is imposed at the bottom of the liquid layer. Experimental, numerical and asymptotic analyses were carried out for "thin" layers where buoyancy forces are negligible. A novel asymptotic solution for this axisymmetric geometry was derived from the previous two-dimensional long-wave analysis by Sen et al. (1982). A numerical simulation using the level contour reconstruction method was used to follow the evolution of the liquid-gas interface above an axisymmetric non-isothermal solid surface. Experimental validation of the theoretical and numerical studies was performed using silicone oils of various viscosities (mu = 0.48 x 10 -2 - 9.6 x 10-2 N·s/m 2). Two measurement techniques, a needle contact method and laser-confocal displacement method, were employed to obtain height profiles for applied temperature differences up to 65°C. Finally, reflectance shadowgraphy was used to visualize free-surface deformation and classify flow regimes in "thick" layers, where the assumptions of negligible buoyancy and axisymmetric flow are no longer valid. The results of this investigation will allow designers to determine operating windows for successful implementation of liquid-protected PFC.
机译:已经提出了薄的液体层用于在磁聚变反应堆中吸热和保护偏滤器的固体表面。用于面向等离子体的组件(PFC)的许多概念设计都使用固定的流动层作为反应室的可再生第一壁,以去除热量并屏蔽固体表面免受有害辐射,同时保持可接受的血浆纯度。这样的液体保护的PFC具有通过增加反应器寿命和降低故障率而使熔合在商业上更具吸引力的潜力。研究结果将有助于确定成功实施此类保护方案的参数范围。本文研究了初始高度为0.27至3.0 mm的轴对称水平液层的热毛细管行为。在液体层的底部施加一个负的径向温度梯度。对浮力可忽略不计的“薄”层进行了实验,数值和渐近分析。由Sen等人先前的二维长波分析得出了这种轴对称几何的新渐近解。 (1982)。使用水平轮廓重建方法的数值模拟被用来跟踪轴对称非等温固体表面上方液-气界面的演化。使用各种粘度(μ= 0.48 x 10 -2-9.6 x 10-2 N·s / m 2)的硅油进行了理论和数值研究的实验验证。两种测量技术,即针接触法和激光-共焦位移法,用于获得高达65°C的施加温差的高度轮廓。最后,使用反射阴影摄影法可视化自由表面变形并在“厚”层中对流态进行分类,其中可忽略的浮力和轴对称流的假设不再成立。研究的结果将使设计人员能够确定成功实施液体保护PFC的操作窗口。

著录项

  • 作者

    Koehler, Timothy Philip.;

  • 作者单位

    Georgia Institute of Technology.;

  • 授予单位 Georgia Institute of Technology.;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 371 p.
  • 总页数 371
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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