论文标题
旋转测量结构的功能具有高阶模板,作为小规模磁波动的探针,并应用于大小的麦哲伦云
Rotation measure structure functions with higher-order stencils as a probe of small-scale magnetic fluctuations and its application to the Small and Large Magellanic Clouds
论文作者
论文摘要
磁场和湍流是星形星系星际介质(ISM)的重要组成部分。测量小尺度ISM磁场的性能(比湍流驱动尺度小的尺度上的磁场)是一项挑战。使用数值模拟,我们演示了二阶旋转度量(RM,取决于热电子密度,$ n _ {\ rm e} $和磁场,$ b $)结构功能可以探测小规模$ b $的属性。然后,我们将结果应用于对大小的麦哲伦云(SMC和LMC)的观察。首先,使用高斯随机$ b $,我们证明了RM结构函数平坦的特征比例大约等于相关长度$ b $。我们还表明,对于准确估计结构函数的斜率,必须使用高阶模板计算RM结构函数(大于常用的两点模板)。然后,使用高斯随机$ b $和logNormal $ n _ {\ rm e} $带有已知的功率谱,我们得出了$ b $,$ n _ {\ rm e} $的功率谱之间的经验关系和RM。我们将这些结果应用于SMC和LMC,并估算SMC的小规模$ b $:相关长度的以下属性($ 160〜 \ pm 21〜 {\ rm pc} $,$ 87〜 \ pm〜17〜 {\ rm pc} $ for lmc for the lmc),强度($ 14〜 \ pm pm 2 〜pm 2〜 3〜μ {\ rm g} $用于LMC)和磁力谱的斜率(SMC的$ -1.3〜 \ pm 〜0.4 $,LMC的$ -1.6〜 \ pm〜0.1 $)。我们还发现,$ n _ {\ rm e} $在估计的$ b $相关量表上实际上是恒定的。
Magnetic fields and turbulence are important components of the interstellar medium (ISM) of star-forming galaxies. It is challenging to measure the properties of the small-scale ISM magnetic fields (magnetic fields at scales smaller than the turbulence driving scale). Using numerical simulations, we demonstrate how the second-order rotation measure (RM, which depends on thermal electron density, $n_{\rm e}$, and magnetic field, $b$) structure function can probe the properties of small-scale $b$. We then apply our results to observations of the Small and Large Magellanic Clouds (SMC and LMC). First, using Gaussian random $b$, we show that the characteristic scale where the RM structure function flattens is approximately equal to the correlation length of $b$. We also show that computing the RM structure function with a higher-order stencil (more than the commonly-used two-point stencil) is necessary to accurately estimate the slope of the structure function. Then, using Gaussian random $b$ and lognormal $n_{\rm e}$ with known power spectra, we derive an empirical relationship between the slope of the power spectrum of $b$, $n_{\rm e}$, and RM. We apply these results to the SMC and LMC and estimate the following properties of small-scale $b$: correlation length ($160~\pm 21~{\rm pc}$ for the SMC and $87~\pm~17~{\rm pc}$ for the LMC), strength ($14~\pm 2~μ{\rm G}$ for the SMC and $15~\pm 3~μ{\rm G}$ for the LMC), and slope of the magnetic power spectrum ($-1.3~\pm~0.4$ for the SMC and $-1.6~\pm~0.1$ for the LMC). We also find that $n_{\rm e}$ is practically constant over the estimated $b$ correlation scales.