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Small dust grain dynamics on adaptive mesh refinement grids

机译:自适应网格细化网格上的小尘粒动力学

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Context . Small dust grains are essential ingredients of star, disk and planet formation. Aims . We present an Eulerian numerical approach to study small dust grain dynamics in the context of star and protoplanetary disk formation. It is designed for finite volume codes. We use it to investigate dust dynamics during the protostellar collapse. Methods . We present a method to solve the monofluid equations of gas and dust mixtures with several dust species in the diffusion approximation implemented in the adaptive-mesh-refinement code RAMSES . It uses a finite volume second-order Godunov method with a predictor-corrector MUSCL scheme to estimate the fluxes between the grid cells. Results . We benchmark our method against six distinct tests, DUSTYADVECT , DUSTYDIFFUSE , DUSTYSHOCK , DUSTYWAVE , SETTLING , and DUSTYCOLLAPSE . We show that the scheme is second-order accurate in space on uniform grids and intermediate between second- and first-order on non-uniform grids. We apply our method on various DUSTYCOLLAPSE simulations of 1? M _(⊙)cores composed of gas and dust. Conclusions . We developed an efficient approach to treat gas and dust dynamics in the diffusion regime on grid-based codes. The canonical tests were successfully passed. In the context of protostellar collapse, we show that dust is less coupled to the gas in the outer regions of the collapse where grains larger than ?100? μ m fall significantly faster than the gas.
机译:语境。小尘粒是恒星,圆盘和行星形成的重要成分。目的。我们提出了一种欧拉数值方法来研究恒星和原行星盘形成过程中的小尘埃颗粒动力学。它是为有限的体积代码而设计的。我们用它来研究原恒星塌陷期间的尘埃动力学。方法 。我们提出了一种方法来解决自适应网格细化代码RAMSES中实现的扩散近似中具有多种粉尘种类的气体和粉尘混合物的单流体方程。它使用带有预测校正器MUSCL方案的有限体积二阶Godunov方法来估计网格单元之间的通量。结果。我们以六种不同的测试为基准对我们的方法进行了测试:DUSTYADVECT,DUSTYDIFFUSE,DUSTYSHOCK,DUSTYWAVE,SETTLING和DUSTYCOLLAPSE。我们表明,该方案在均匀网格上的空间中是二阶精度的,而在非均匀网格上在二阶和一阶之间是中间的。我们将我们的方法应用于1的各种DUSTYCOLLAPSE模拟中? M _(⊙)芯由气体和灰尘组成。结论。我们开发了一种有效的方法来处理基于网格的代码在扩散状态下的气体和粉尘动力学。规范测试已成功通过。在原恒星坍塌的背景下,我们表明尘埃在塌陷的外部区域与气体的耦合较少,在该区域的晶粒大于?100?。 μm的下降速度明显快于气体。

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