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Non-LTE radiation hydrodynamics in PLUTO ?

机译:PLUTO中的非LTE辐射流体动力学

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Context. Modeling the dynamics of most astrophysical structures requires an adequate description of the interaction of radiation and matter. Several numerical (magneto-) hydrodynamics codes were upgraded with a radiation module to fulfill this request. However, those that used either the flux-limited diffusion (FLD) or the M1 radiation moment approaches are restricted to local thermodynamic equilibrium (LTE). This assumption may not be valid in some astrophysical cases. Aims. We present an upgraded version of the LTE radiation-hydrodynamics (RHD) module implemented in the PLUTO code, which we have extended to handle non-LTE regimes. Methods. Starting from the general frequency-integrated comoving-frame equations of RHD, we have justified all the assumptions that were made to obtain the non-LTE equations that are implemented in the module under the FLD approximation. An operator-split method with two substeps was employed: the hydrodynamics part was solved with an explicit method by the solvers that are currently available in PLUTO, and the non-LTE radiation diffusion and energy exchange part was solved with an implicit method. The module was implemented in the PLUTO environment. It uses databases of radiative quantities that can be provided independently by the user: the radiative power loss, and the Planck and Rosseland mean opacities. In our case, these quantities were determined from a collisional-radiative steady-state model, and they are tabulated as functions of temperature and density. Results. Our implementation has been validated through different tests, in particular, radiative shock tests. The agreement with the semi-analytical solutions (when available) is good, with a maximum error of 7%. Moreover, we have proved that a non-LTE approach is of paramount importance to properly model accretion shock structures. Conclusion. Our radiation FLD module represents a step toward a general non-LTE RHD modeling.
机译:上下文。对大多数天体结构的动力学建模需要充分描述辐射与物质的相互作用。几个数字(磁)流体力学代码已升级为带有辐射模块,可以满足此要求。但是,那些使用通量限制扩散(FLD)或M1辐射矩方法的方法仅限于局部热力学平衡(LTE)。该假设在某些天体物理情况下可能无效。目的我们提供了以PLUTO代码实现的LTE辐射流体动力学(RHD)模块的升级版,我们已对其进行扩展以处理非LTE方案。方法。从RHD的一般频率积分同动框架方程开始,我们证明了为获得在FLD近似下在模块中实现的非LTE方程而做出的所有假设。采用了包含两个子步骤的操作员拆分方法:使用PLUTO中当前可用的求解器,通过显式方法求解流体力学部分,并通过隐式方法求解非LTE辐射扩散和能量交换部分。该模块是在PLUTO环境中实现的。它使用可以由用户独立提供的辐射量数据库:辐射功率损失以及普朗克和罗塞兰德平均不透明度。在我们的案例中,这些量是从碰撞辐射稳态模型确定的,并将它们作为温度和密度的函数制成表格。结果。我们的实施已通过各种测试(尤其是辐射冲击测试)进行了验证。与半分析解决方案(如果有)的一致性很好,最大误差为7%。此外,我们已经证明,非LTE方法对于正确模拟增生冲击结构至关重要。结论。我们的辐射FLD模块代表了迈向通用非LTE RHD建模的一步。

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