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首页> 外文期刊>Current Forestry Reports >Numerical Study of Nonlinear Heat Transfer from a Wavy Surface to a High Permeability Medium with Pseudo-Spectral and Smoothed Particle Methods
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Numerical Study of Nonlinear Heat Transfer from a Wavy Surface to a High Permeability Medium with Pseudo-Spectral and Smoothed Particle Methods

机译:具有伪光谱和平滑颗粒方法的波状表面与高渗透培养基的非线性传热的数值研究

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AbstractMotivated by petro-chemical geological systems, we consider the natural convection boundary layer flow from a vertical isothermal wavy surface adjacent to a saturated non-Darcian high permeability porous medium. High permeability is considered to represent geologically sparsely packed porous media. Both Darcian drag and Forchheimer inertial drag terms are included in the velocity boundary layer equation. A high permeability medium is considered. We employ a sinusoidal relation for the wavy surface. Using a set of transformations, the momentum and heat conservation equations are converted from an (x,?y) coordinate system to an ($$x, eta )$$x,η)dimensionless system. The two-point boundary value problem is then solved numerically with a pseudo-spectral method based on combining the Bellman–Kalaba quasi linearization method with the Chebyschev spectral collocation technique (SQLM). The SQLM computations are demonstrated to achieve excellent correlation with smoothed particle hydrodynamic (SPH) Lagrangian solutions. We study the effect of Darcy number (Da), Forchheimer number (Fs), amplitude wavelength (A) and Prandtl number (Pr) on the velocity and temperature distributions in the regime. Local Nusselt number is also computed for selected cases. The study finds important applications in petroleum engineering and also energy systems exploiting porous media and undulating (wavy) surface geometry. The SQLM algorithm is shown to be exceptionally robust and achieves fast convergence and excellent accuracy in nonlinear heat transfer simulations.]]>
机译:<![CDATA [<标题>抽象 由石油化学地质系统的动机,我们认为自然对流边界层从邻近饱和的非DARCIAN的垂直等温波浪表面流动高渗透性多孔介质。认为高渗透性是代表地质稀疏的多孔介质。 Darcian拖累和前瞻性惯性拖动术语都包含在速度边界层方程中。考虑了高渗透培养基。我们采用了波浪表面的正弦关系。使用一组变换,动量和节热方程从(<重点类型=“斜体”> x ,?<重点类型=“斜体”> Y )坐标系到一个( $$ x, eta)$$ x η 无量纲系统。然后,基于基于Chebyschev谱串联技术(SQLM)的Bellman-Kalaba准线性化方法的伪光谱法以数字方式解决了两点边值问题。证明SQLM计算以实现与平滑粒子流体动力学(SPH)拉格朗日解决方案的优异相关性。我们研究达西数(<重点类型=“斜体”> DA ),学生编号(<强调类型=“斜体”> FS ),幅度波长(<重点类型=“斜体“> )和Prandtl号(<强调类型=”斜体“> PR )在制度的速度和温度分布上。对于所选案例,也计算了本地营销号码。该研究发现石油工程中的重要应用以及利用多孔介质和波状(波浪)表面几何的能源系统。 SQLM算法显示为非常稳健,实现了非线性传热模拟中的快速收敛性和优异的准确性。]]>

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