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Analysis of Numerical Algorithms for Computing Rapid Momentum Transfers between the Gas and Dust in Simulations of Circumstellar Disks

机译:用于计算气体和灰尘的快速动量转移数值算法的分析

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Approaches used in modern numerical simulations of the dynamics of dust and gas in circumstellar disks are tested. The gas and dust are treated like interpenetrating continuous media that can exchange momentum. A stiff coupling between the gas and dust phases is typical for such disks, with the dust stopping time much less than the characteristic dynamical time scale. This imposes high demands on the methods used to simulate the dust dynamics. A grid-based, piecewise-parabolic method is used as the basic algorithm for solving the gas-dynamical equations. Numerical solutions obtained using various methods to compute the momentum exchanges are presented for the case of monodisperse dust. Numerical solutions are obtained for shock tube problem and the propagation of sound waves in a gas–dust medium. The studied methods are compared in terms of their ability to model media with (a) an arbitrary (short or long) dust stopping time, and (b) an arbitrary dust concentration in the gas (varying the dust to gas mass ratio from 0.01 to 1). A method for computing the momentum exchange with infinite-order accuracy in time is identified, which makes it possible to satisfy the conditions (a) and (b) with minimal computational costs. A first-order method that shows similar results in the test computations is also presented. It is shown that the proposed first-order method for monodisperse dust can be extended to a regime when the dust is polydisperse; i.e., a regime represented by several fractions with different stopping times. Formulas for computing the gas and dust velocities for polydisperse dust with each fraction exchanging momentum with the gas are presented.
机译:测试了现代数值模拟中使用的方法的灰尘和气体中的动态模拟。将气体和灰尘类似于可交换势头的互穿连续介质。气体和灰尘阶段之间的稳定耦合对于这种盘是典型的,灰尘停止时间远小于特征动态时间尺度。这对用于模拟粉尘动态的方法施加了高要求。基于网格的分段抛物线方法用作求解气体动力学方程的基本算法。呈现了使用各种方法来计算动量交换的数值溶液,用于单分散灰尘。用于减震管问题的数值溶液以及气尘介质中声波的传播。将研究的方法进行比较,以便它们使用(a)任意(短或长)灰尘停止时间和(b)气体中的任意粉尘浓度(改变灰尘从0.01到0.01而改变灰尘1)。识别用于计算具有无限顺序精度的动量交换的方法,这使得可以满足具有最小计算成本的条件(A)和(B)。还呈现了在测试计算中显示类似结果的一阶方法。结果表明,当灰尘是多分散的情况下,可以将所提出的单分散灰尘的一阶方法延伸到制度;即,由几个分数表示的制度,具有不同的停止时间。提供了用于计算多分散粉尘的气体和粉尘与气体交换动量的多分散灰尘的配方。

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