弹道尘粒团聚体的辐射扭矩自旋效率

IF 5.8 2区 物理与天体物理 Q1 ASTRONOMY & ASTROPHYSICS
Jonathan A. Jäger, Stefan Reissl, Ralf S. Klessen
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引用次数: 0

摘要

目标。对观测到的尘埃偏振信号进行分析是了解星际尘埃颗粒旋转动力学的关键。此外,高转速会使晶粒发生旋转破坏,从而影响晶粒的粒度分布。我们的目的是约束一组参数,以便准确描述由辐射扭矩(RATs)驱动的弹道尘埃颗粒聚集体的旋转自旋上升过程。我们将尘埃颗粒建模为由不同大小的均匀球形颗粒(单体)的弹道聚集而成的复杂分形聚集体。在不同辐射源的存在下,研究了粉尘材料、形状和大小的广泛变化。我们发现扭矩效率的正则参数化过高估计了由反作用于弹道颗粒聚集体引起的最大角速度ωRAT。为了解决这个问题,我们提出了一种新的参数化方法,可以更准确地预测ωRAT。我们发现rat对于较大的晶粒和较低的单体密度是最有效的。这在参数化的常数部分表现为尺寸和单体密度的依赖。在常数部分之后,参数化有两个不同斜率的幂律,它们对所有粒度都具有普适性。最大晶粒旋转不与辐射强度成线性比例,因为不同的阻力机制占主导地位,取决于晶粒材料和环境。单个尘埃颗粒的角速度ωRAT分布很广,甚至可能与平均值相差两个数量级。尽管弹道聚集体的RAT效率较低,但强辐射源(强于典型星际辐射场的约100倍)仍然可能产生足够高的旋转速度,从而导致尘埃颗粒的旋转破坏。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The radiative torque spin-up efficiency of ballistic dust-grain aggregates
Aims. It is quintessential for the analysis of the observed dust polarization signal to understand the rotational dynamics of interstellar dust grains. Additionally, high rotation velocities may rotationally disrupt the grains, which impacts the grain-size distribution. We aim to constrain the set of parameters for an accurate description of the rotational spin-up process of ballistic dust grain aggregates driven by radiative torques (RATs).Methods. We modeled the dust grains as complex fractal aggregates grown by the ballistic aggregation of uniform spherical particles (monomers) of different sizes. A broad variation of dust materials, shapes, and sizes were studied in the presence of different radiation sources.Results. We find that the canonical parameterization for the torque efficiency overestimates the maximum angular velocity ωRAT caused by RATs acting on ballistic grain aggregates. To resolve this problem, we propose a new parameterization that predicts ωRAT more accurately. We find that RATs are most efficient for larger grains with a lower monomer density. This manifests itself as a size- and monomer-density dependence in the constant part of the parameterization. Following the constant part, the parameterization has two power laws with different slopes that retain universality for all grain sizes. The maximum grain rotation does not scale linearly with radiation strength because different drag mechanisms dominate, depending on the grain material and environment. The angular velocity ωRAT of individual single dust grains has a wide distribution and may even differ from the mean by up to two orders of magnitude. Even though ballistic aggregates have a lower RAT efficiency, strong sources of radiation (stronger than ≈100 times the typical interstellar radiation field) may still produce rotation velocities high enough to cause the rotational disruption of dust grains.
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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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