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Efficient Numerical Solution of the Density Profile Equation in Hydrodynamics

机译:流体动力学中密度剖面方程的高效数值解

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We discuss the numerical treatment of a nonlinear second order boundary value problem in ordinary differential equations posed on an unbounded domain which represents the density profile equation for the description of the formation of microscopical bubbles in a non-homogeneous fluid. For an efficient numerical solution the problem is transformed to a finite interval and polynomial collocation is applied to the resulting boundary value problem with essential singularity. We demonstrate that this problem is well-posed and the involved collocation methods show their classical convergence order. Moreover, we investigate what problem statement yields favorable conditioning of the associated collocation equations. Thus, collocation methods provide a sound basis for the implementation of a standard code equipped with an a posteriori error estimate and an adaptive mesh selection procedure. We present a code based on these algorithmic components that we are currently developing especially for the numerical solution of singular boundary value problems of arbitrary, mixed order, which also admits to solve problems in an implicit formulation. Finally, we compare our approach to a solution method proposed in the literature and conclude that collocation is an easy to use, reliable and highly accurate way to solve problems of the present type.
机译:我们讨论了在无界域上提出的常微分方程中非线性二阶边界值问题的数值处理,该方程表示用于描述非均匀流体中微观气泡形成的密度剖面方程。对于有效的数值解,将问题转换为有限区间,并将多项式搭配应用于具有本质奇点的边界值问题。我们证明了这个问题的提出是正确的,并且所涉及的搭配方法显示了它们的经典收敛顺序。此外,我们研究了什么问题陈述产生了相关搭配方程的有利条件。因此,搭配方法为实现具有后验误差估计和自适应网格选择程序的标准代码提供了良好的基础。我们提出了一个基于这些算法组件的代码,我们目前正在开发该代码,特别是用于任意混合顺序的奇异边界值问题的数值解,该代码也允许在隐式公式中求解问题。最后,我们将我们的方法与文献中提出的求解方法进行了比较,并得出结论,搭配是一种易于使用、可靠且高度准确的方法来解决当前类型的问题。

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