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Convective Heat Transfer in an Impinging Synthetic Jet: A Numerical Investigation of a Canonical Geometry

机译:撞击合成射流中的对流传热:典型几何的数值研究

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摘要

Synthetic jets are generated by an equivalent inflow and outflow of fluid into a system. Even though such a jet creates no net mass flux, net positive momentum can be produced because the outflow momentum during the first half of the cycle is contained primarily in a vigorous vortex pair created at the orifice edges; whereas in the backstroke, the back-flow momentum is weaker, despite the fact that mass is conserved. As a consequence of this, the approach can be potentially utilized for the impingement of a cooling fluid onto a heated surface. In previous studies, little attention has been given to the influence of the jet's origins; hence it has been difficult to find reproducible results that are independent of the jet apparatus or actuators utilized to create the jet. Furthermore, because of restrictions of the resonators used in typical actuators, previous investigations have not been able to independently isolate effects of jet frequency, amplitude, and Reynolds number. In the present study, a canonical geometry is presented, in order to study the flow and heat transfer of a purely oscillatory jet that is not influenced by the manner in which it is produced. The unsteady Navier-Stokes equations and the convection-diffusion equation were solved using a fully unsteady, two-dimensional finite volume approach in order to capture the complex time dependent flow field. A detailed analysis was performed on the correlation between the complex velocity field and the observed wall heat transfer. Scaling analysis of the governing equations was utilized to identify nondimensional groups and propose a correlation for the space-averaged and time-averaged Nusselt number. A fundamental frequency, in addition to the jet forcing frequency, was found, and was attributed to the coalescence of consecutive vortex pairs. In terms of time-averaged data, the merging of vortices led to lower heat transfer. Point to point correlations showed that the instantaneous local Nusselt number strongly correlates with the vertical velocity v although the spatial-temporal dependencies are not yet fully understood.
机译:合成射流是由流体等效流入和流出系统而产生的。即使这样的射流不产生净质量通量,也可以产生净正动量,因为循环前半部分的流出动量主要包含在节流孔边缘形成的强劲涡流对中。而在仰泳中,尽管保持了质量,但回流势头较弱。因此,该方法可以潜在地用于将冷却流体撞击到加热的表面上。在以前的研究中,很少关注喷气式飞机起源的影响。因此,很难找到与喷射装置或用于产生喷射器的致动器无关的可再现结果。此外,由于典型致动器中使用的谐振器的限制,先前的研究还不能独立地隔离射流频率,振幅和雷诺数的影响。在本研究中,提出了一种规范的几何形状,以便研究不受其产生方式影响的纯振荡射流的流动和传热。为了捕获复杂的与时间相关的流场,使用了完全非定常的二维有限体积方法求解了非定常的Navier-Stokes方程和对流扩散方程。对复数速度场与观察到的壁传热之间的相关性进行了详细分析。利用控制方程的比例分析来识别无量纲族,并提出空间平均和时间平均努塞尔数的相关性。除了射流强迫频率外,还发现了一个基本频率,并且该基本频率归因于连续涡流对的合并。就时间平均数据而言,涡流的融合导致较低的热传递。点对点的相关性表明,尽管尚不完全了解时空相关性,但瞬时局部Nusselt数与垂直速度v密切相关。

著录项

  • 来源
    《Journal of Heat Transfer》 |2013年第8期|082201.1-082201.11|共11页
  • 作者

    Luis A. Silva; Alfonso Ortega;

  • 作者单位

    Laboratory for Advanced Thermal and Fluid Systems, Villanova University, 800 East Lancaster Avenue, Villanova, PA 19085;

    Laboratory for Advanced Thermal and Fluid Systems, Villanova University, 800 East Lancaster Avenue, Villanova, PA 19085;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    forced convection; synthetic jets; computational fluid dynamics; impingement;

    机译:强制对流合成射流计算流体动力学;撞击;
  • 入库时间 2022-08-18 00:23:56

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