论文标题

带有梯度亚网格尺度模型的GRMHD大型涡流模拟

GRMHD large eddy simulations with gradient subgrid-scale model

论文作者

Viganò, Daniele, Aguilera-Miret, Ricard, Carrasco, Federico, Miñano, Borja, Palenzuela, Carlos

论文摘要

二进制中子恒星合并的检测是近年来最重要的天体物理发现之一。由于极端的物质和重力条件以及发展的丰富动态,因此在碰撞过程中准确模拟所有尺度的数字尺度是一个巨大的挑战。在这里,我们介绍了如何通过使用具有自洽子网尺度梯度模型的大型涡流模拟来研究此类系统,我们将其推广到先前工作中的特殊相对论案例,现在扩展到一般的相对论案例。所谓的梯度模型是根据非依赖性场景的改编而来,可以通过物理不稳定的,基于数学的泰勒的泰勒扩展在保守性进化方程式中,可以通过物理上不稳定的,基于数学的泰勒的taylor扩展来捕获隐藏动力学对已解决量表的影响的一部分。我们评估了这种方法在磁性盒磁盒模拟中的有效性。为了在三个关键方面仔细测试模型的性能:(i)高度弯曲的背景,(ii)在流体密度剖面和(iii)强烈的冲击下跳跃。结果表明,我们将梯度亚网格尺度模型扩展到一般相对论磁性水力动力学是研究二进制中子星合并的一种有前途的方法,并且有可能与其他相关的天体物理场景。

The detection of binary neutron star mergers represents one of the most important astrophysical discoveries of the recent years. Due to the extreme matter and gravity conditions and the rich dynamics developed, it becomes a tremendous challenge to accurately simulate numerically all the scales present during the collision. Here we present how to study such systems by using large eddy simulations with a self-consistent subgrid-scale gradient model, that we generalized to the special relativistic case in a previous work and now extend to the general relativistic case. Adapted from nonrelativistic scenarios, the so-called gradient model allows to capture part of the effects of the hidden dynamics on the resolved scales, by means of a physically-agnostic, mathematically-based Taylor expansion of the nonlinear terms in the conservative evolution equations' fluxes. We assess the validity of this approach in bounding-box simulations of the magnetic Kelvin-Helmholtz instability. Several resolutions and a broad range of scenarios are considered in order to carefully test the performance of the model under three crucial aspects: (i) highly curved backgrounds, (ii) jumps on the fluid density profiles and (iii) strong shocks. The results suggest our extension of the gradient subgrid-scale model to general relativistic magnetohydrodynamics is a promising approach for studying binary neutron stars mergers, and potentially to other relevant astrophysical scenarios.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源