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首页> 外文期刊>Journal of Fluid Mechanics >Mixed insulating and conducting thermal boundary conditions in Rayleigh-Benard convection
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Mixed insulating and conducting thermal boundary conditions in Rayleigh-Benard convection

机译:瑞利邦对流中的混合绝缘和导电热边界条件

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摘要

A series of direct numerical simulations of Rayleigh-Benard convection, the flow in a fluid layer heated from below and cooled from above, were conducted to investigate the effect of mixed insulating and conducting boundary conditions on convective flows. Rayleigh numbers between Ra = 10(7) and Ra = 10(9) were considered, for Prandtl numbers Pr = 1 and Pr = 10. The bottom plate was divided into patterns of conducting and insulating stripes. The size ratio between these stripes was fixed to unity and the total number of stripes was varied. Global quantities, such as the heat transport and average bulk temperature, and local quantities, such as the temperature just below the insulating boundary wall, were investigated. For the case with the top boundary divided into two halves, one conducting and one insulating, the heat transfer was found to be approximately two-thirds of that for the fully conducting case. Increasing the pattern frequency increased the heat transfer, which asymptotically approached the fully conducting case, even if only half of the surface is conducting. Fourier analysis of the temperature field revealed that the imprinted pattern of the plates is diffused in the thermal boundary layers, and cannot be detected in the bulk. With conducting-insulating patterns on both plates, the trends previously described were similar; however, the half-and-half division led to a heat transfer of about a half of that for the fully conducting case instead of two-thirds. The effect of the ratio of conducting and insulating areas was also analysed, and it was found that, even for systems with a top plate with only 25% conducting surface, heat transport of 60% of the fully conducting case can be seen. Changing the one-dimensional stripe pattern to a two-dimensional chequerboard tessellation does not result in a significantly different response of the system.
机译:进行了一系列直接数值模拟的瑞利奔跑对流,从下面加热并从上方冷却的流体层中的流动,研究了混合绝缘和导电边界条件对对流流的影响。考虑RA = 10(7)和RA = 10(9)之间的RAYLEIGH数量,对于PRANDTL编号PR = 1和PR = 10.底板被分成导电和绝缘条纹的图案。这些条纹之间的尺寸比固定为单位,条纹总数变化。研究了全局量,例如热传输和平均体积温度,以及局部量,例如绝缘边界壁下方的温度,如绝缘边界壁下方。对于分为两半的顶部边界的情况,一个导电和一个绝缘,传热被发现为完全导电情况的大约三分之二。增加图案频率增加了传热,即使只有一半的表面是导通的,也增加了渐近接近完全导电的情况。温度场的傅里叶分析显示,板的印迹图案在热边界层中扩散,并且不能在块状中检测到。通过在两个板上进行绝缘图案,前面描述的趋势是相似的;然而,半和半部门导致热传递约为完全导电箱而不是三分之二的一半。还分析了导电和绝缘区域的比率的影响,并且发现,即使对于具有仅25%导电表面的顶板的系统,也可以看到60%的热传输。将一维条带图案更改为二维Chequerboard曲面细分,不会导致系统的显着不同的响应。

著录项

  • 来源
    《Journal of Fluid Mechanics 》 |2018年第2018期| 共21页
  • 作者单位

    Univ Twente Max Planck UT Ctr Complex Fluid Dynam Mesa Inst Dept Sci &

    Technol Phys Fluids Grp NL-7500 AE Enschede Netherlands;

    Univ Twente Max Planck UT Ctr Complex Fluid Dynam Mesa Inst Dept Sci &

    Technol Phys Fluids Grp NL-7500 AE Enschede Netherlands;

    Univ Twente Max Planck UT Ctr Complex Fluid Dynam Mesa Inst Dept Sci &

    Technol Phys Fluids Grp NL-7500 AE Enschede Netherlands;

    Univ Twente Max Planck UT Ctr Complex Fluid Dynam Mesa Inst Dept Sci &

    Technol Phys Fluids Grp NL-7500 AE Enschede Netherlands;

    Univ Twente Max Planck UT Ctr Complex Fluid Dynam Mesa Inst Dept Sci &

    Technol Phys Fluids Grp NL-7500 AE Enschede Netherlands;

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

    Benard convection; turbulent convection;

    机译:贝纳特对流;动荡对流;

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