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首页> 外文期刊>Physical review letters >Multiple States in Turbulent Large-Aspect-Ratio Thermal Convection: What Determines the Number of Convection Rolls?
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Multiple States in Turbulent Large-Aspect-Ratio Thermal Convection: What Determines the Number of Convection Rolls?

机译:湍流大纵横比热对流中的多个状态:什么决定了对流辊的数量?

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摘要

Wall-bounded turbulent flows can take different statistically stationary turbulent states, with different transport properties, even for the very same values of the control parameters. What state the system takes depends on the initial conditions. Here we analyze the multiple states in large-aspect ratio (Gamma) twodimensional turbulent Rayleigh-B ' enard flow with no-slip plates and horizontally periodic boundary conditions as model system. We determine the number n of convection rolls, their mean aspect ratios Gamma(r) = Gamma, and the corresponding transport properties of the flow (i.e., the Nusselt number Nu), as function of the control parameters Rayleigh (Ra) and Prandtl number. The effective scaling exponent beta in Nu similar to Ra-beta is found to depend on the realized state and thus Gamma(r), with a larger value for the smaller Gamma(r). By making use of a generalized Friedrichs inequality, we show that the elliptical shape of the rolls and viscous damping determine the Gamma(r) window for the realizable turbulent states. The theoretical results are in excellent agreement with our numerical finding 2/3 = Gamma(r) = 4/3, where the lower threshold is approached for the larger Ra. Finally, we show that the theoretical approach to frame Gr also works for free-slip boundary conditions.
机译:墙面缠绕的湍流流动可以采用不同的统计静止动荡状态,具有不同的传输属性,即使对于相同的控制参数值也是如此。系统所取出的状态取决于初始条件。在这里,我们将多个状态分析在大宽高比(GAMMA)两模湍流RAYLEIGH-B'檐型流动,无滑板和水平周期性边界条件作为模型系统。我们确定对流辊的数量n,它们的平均宽高比伽马(R)=伽马/ n,以及作为控制参数Rayleigh(RA)的功能的流量(即,诺斯数Nu)的相应传输特性,以及普朗特号码。发现与RA-β类似的NU中的有效缩放指数β依赖于实现的状态,从而取决于γ(R),具有较大的伽马(R)的值。通过使用广义的弗里德里奇不等式,我们表明辊子的椭圆形和粘性阻尼决定了可实现的湍流状态的伽马(R)窗口。理论结果与我们的数值查找2/3 <=γ(R)<= 4/3表示良好的一致性,其中较大的RA接近较低阈值。最后,我们表明框架GR的理论方法也适用于自由滑动边界条件。

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  • 来源
    《Physical review letters》 |2020年第7期|074501.1-074501.6|共6页
  • 作者单位

    Univ Twente Phys Fluids Grp MESA Inst POB 217 NL-7500 AE Enschede Netherlands|Univ Twente Max Planck Ctr Complex Fluid Dynam MESA Inst POB 217 NL-7500 AE Enschede Netherlands|Univ Twente JM Burgers Ctr Fluid Dynam POB 217 NL-7500 AE Enschede Netherlands|Univ Sci & Technol China Dept Modern Mech Hefei 230027 Peoples R China;

    Univ Twente Phys Fluids Grp MESA Inst POB 217 NL-7500 AE Enschede Netherlands|Univ Twente Max Planck Ctr Complex Fluid Dynam MESA Inst POB 217 NL-7500 AE Enschede Netherlands|Univ Twente JM Burgers Ctr Fluid Dynam POB 217 NL-7500 AE Enschede Netherlands|Univ Roma Tor Vergata Dipartimento Ingn Ind Via Politecn 1 I-00133 Rome Italy|Gran Sasso Sci Inst Viale F Crispi I-767100 Laquila Italy;

    Univ Twente Phys Fluids Grp MESA Inst POB 217 NL-7500 AE Enschede Netherlands|Univ Twente Max Planck Ctr Complex Fluid Dynam MESA Inst POB 217 NL-7500 AE Enschede Netherlands|Univ Twente JM Burgers Ctr Fluid Dynam POB 217 NL-7500 AE Enschede Netherlands|Max Planck Inst Dynam & Self Org D-37077 Gottingen Germany;

    Max Planck Inst Dynam & Self Org D-37077 Gottingen Germany;

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