轴对称环星包层内连续辐射传递问题的非连续伽勒金有限元法

IF 5.4 2区 物理与天体物理 Q1 ASTRONOMY & ASTROPHYSICS
J. Perdigon, M. Faurobert, G. Niccolini
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引用次数: 0

摘要

背景。研究环星包层内部的连续辐射传递问题既是理论上的挑战,也是数值上的挑战,尤其是在频率相关和多维的情况下。虽然近似方法更易于数值处理,但往往无法准确描述复杂几何内部的辐射场。对于这些情况,有必要直接对辐射传递方程进行数值求解。我们研究了将非连续伽勒金有限元法(以下简称 DGFEM)应用于频率相关的二维辐射传递问题并与辐射平衡方程耦合的精度。接下来,我们在轴对称环绕恒星包层中使用了这种方法。DGFEM 是有限元方法的一种变体。它采用非连续元素和沿其边界的通量积分,确保局部通量守恒。然而,与经典的有限元方法不同,DGFEM 的求解在元素边缘是不连续的。我们在代码中实施了这种方法,并通过将我们的结果与文献中的基准进行比较来测试其准确性。在所有测试案例中,温度曲线的一致性都在百分之一以内。此外,根据 DGFEM 发射率通过光线追踪技术获得的新光谱能量分布 (SED) 和图像的平均吻合度分别为 5%和 10%。我们的研究表明,DGFEM 可以准确地描述轴对称环绕星包层内部的连续辐射传递问题。连续出现的 SED 和图像也得到了很好的再现。DGFEM 为求解辐射传递方程提供了另一种方法(例如蒙特卡洛方法),可用于其他方法难以处理的情况。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Discontinuous Galerkin finite element method for the continuum radiative transfer problem inside axis-symmetric circumstellar envelopes
Context. The study of the continuum radiative transfer problem inside circumstellar envelopes is both a theoretical and numerical challenge, especially in the frequency-dependent and multi-dimensional case. While approximate methods are easier to handle numerically, they often fail to accurately describe the radiation field inside complex geometries. For these cases, it is necessary to directly solve the radiative transfer equation numerically.Aims. We investigate the accuracy of the discontinuous Galerkin finite element method (DGFEM hereafter) applied to the frequency-dependent two-dimensional radiative transfer problem, and coupled with the radiative equilibrium equation. We next used this method in the context of axis-symmetric circumstellar envelopes.Methods. The DGFEM is a variant of finite element methods. It employs discontinuous elements and flux integrals along their boundaries, ensuring local flux conservation. However, as opposed to the classical finite element methods, the solution is discontinuous across element edges. We implemented this approach in a code and tested its accuracy by comparing our results with the benchmarks from the literature.Results. For all the tested cases, the temperatures profiles agree within one percent. Additionally, the emerging spectral energy distributions (SEDs) and images, obtained by ray-tracing techniques from the DGFEM emissivity, agree on average within 5% and 10%, respectively.Conclusions. We show that the DGFEM can accurately describe the continuum radiative transfer problem inside axis-symmetric circumstellar envelopes. Consecutively the emerging SEDs and images are also well reproduced. The DGFEM provides an alternative method (other than Monte-Carlo methods for instance) for solving the radiative transfer equation, and it could be used in cases that are more difficult to handle with the other methods.
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来源期刊
Astronomy & Astrophysics
Astronomy & Astrophysics 地学天文-天文与天体物理
CiteScore
10.20
自引率
27.70%
发文量
2105
审稿时长
1-2 weeks
期刊介绍: Astronomy & Astrophysics is an international Journal that publishes papers on all aspects of astronomy and astrophysics (theoretical, observational, and instrumental) independently of the techniques used to obtain the results.
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