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Meshless point collocation for the numerical solution of Navier-Stokes flow equations inside an evaporating sessile droplet

机译:无汽点液滴内Navier-Stokes流动方程数值解的无网格点配置

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The Navier-Stokes flow inside an evaporating sessile droplet is studied in the present paper, using sophisticated meshfree numerical methods for the computation of the flow field. This problem relates to numerous modern technological applications, and has attracted several analytical and numerical investigations that expanded our knowledge on the internal microflow during droplet evaporation. Two meshless point collocation methods are applied here to this problem and used for flow computations and for comparison with analytical and more traditional numerical solutions. Particular emphasis is placed on the implementation of the velocity-correction method within the meshless procedure, ensuring the continuity equation with increased precision. The Moving Least Squares (MLS) and the Radial Basis Function (RBF) approximations are employed for the construction of the shape functions, in conjunction with the general framework of the Point Collocation Method (MPC). An augmented linear system for imposing the coupled boundary conditions that apply at the liquid-gas interface, especially the zero shear-stress boundary condition at the interface, is presented. Computations are obtained for regular, Type-I embedded nodal distributions, stressing the positivity conditions that make the matrix of the system stable and convergent. Low Reynolds number (Stokes regime), and elevated Reynolds number (Navier-Stokes regime) conditions have been studied and the solutions are compared to those of analytical and traditional CFD methods. The meshless implementation has shown a relative ease of application, compared to traditional mesh-based methods, and high convergence rate and accuracy.
机译:本文研究了无蒂液滴内的Navier-Stokes流,并使用复杂的无网格数值方法计算了流场。这个问题涉及许多现代技术应用,并且已经引起了一些分析和数值研究,这些研究和扩展了我们对液滴蒸发过程中内部微流的认识。此处将两种无网格点配置方法应用于此问题,并用于流量计算以及与解析和更传统的数值解进行比较。特别强调在无网格过程中执行速度校正方法,以确保连续性方程式具有更高的精度。结合点配置方法(MPC)的一般框架,采用移动最小二乘(MLS)和径向基函数(RBF)近似来构造形状函数。提出了一种增强的线性系统,用于施加在液-气界面处施加的耦合边界条件,尤其是在界面处的零剪切应力边界条件。计算得到规则的,I型嵌入的节点分布,从而强调使系统矩阵稳定和收敛的正性条件。研究了低雷诺数(Stokes态)和升高的雷诺数(Navier-Stokes态)条件,并将解决方案与分析和传统CFD方法进行了比较。与传统的基于网格的方法相比,无网格实现已显示出相对易用的特性,并且具有较高的收敛速度和准确性。

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