论文标题
粉末日:星系模拟的尘埃辐射传递
Powderday: Dust Radiative Transfer for Galaxy Simulations
论文作者
论文摘要
我们提出了粉末日,这是一种柔性,快速,开源的尘埃辐射转移包装,旨在与Galaxy形成模拟接口。 Powderday建立在FSPS人群合成模型,Hyperion Dust辐射转移的基础上,并采用YT在不同软件包之间的接口。我们将我们的恒星种群合成模型包括在当前的恒星物理学中,从而实现了显着的运行时灵活性。我们包括一个模型,用于使用预先计算的多云查找表(以提高效率)或所有年轻恒星的直接光电离计算(用于灵活性)。灰尘含量遵循观察动机的处方,来自星系形成模拟的直接建模,或者是通过从Simba宇宙星系形成模拟的基于学习的算法中包含灰尘含量的新方法。还可以通过一系列处方包含AGN。这些模型的输出是宽带SED,以及滤波器卷积的图像。 Founderday旨在消除采用不同流体力学星系形成模型的研究人员的最后一英里努力,并与Gizmo,Arepo,汽油,Changa和Enzo无缝接口。我们通过三个应用程序演示了代码的功能:星系中星系中的恒星形成率(SFR)模型(包括AGN的影响); AGB恒星周围的间隔灰尘对Galaxy SED的中红外发射的影响;银河倾斜角度对尘埃衰减定律的影响。
We present Powderday, a flexible, fast, open-source dust radiative transfer package designed to interface with galaxy formation simulations. Powderday builds on FSPS population synthesis models, Hyperion dust radiative transfer, and employs yt to interface between different software packages. We include our stellar population synthesis modeling on the fly, which allows for significant run-time flexibility in the assumed stellar physics. We include a model for nebular line emission that can employ either precomputed Cloudy lookup tables (for efficiency), or direct photoionization calculations for all young stars (for flexibility). The dust content follows either observationally-motivated prescriptions, direct modeling from galaxy formation simulations, or a novel approach that includes the dust content via learning-based algorithms from the SIMBA cosmological galaxy formation simulation. AGN can additionally be included via a range of prescriptions. The output of these models are broadband SEDs, as well as filter-convolved images. Powderday is designed to eliminate last-mile efforts by researchers that employ different hydrodynamic galaxy formation models, and seamlessly interfaces with GIZMO, AREPO, GASOLINE, CHANGA, and ENZO. We demonstrate the capabilities of the code via three applications: a model for the star formation rate (SFR) - infrared luminosity relation in galaxies (including the impact of AGN); the impact of circumstellar dust around AGB stars on the mid-infrared emission from galaxy SEDs; and the impact of galaxy inclination angle on dust attenuation laws.