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Magnetic fields of T Tauri stars and inner accretion discs

机译:T TAURI恒星和内部增压盘的磁场

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Magnetic fields play a key role in the early life of stars and their planets, as they form from collapsing dense cores that progressively flatten into large-scale accretion discs and eventually settle as young suns orbited by planetary systems. Pre-main-sequence phases, in which central protostars feed from surrounding planet-forming accretion discs, are especially crucial for understanding how worlds like our Solar System are born. Magnetic fields of low-mass T Tauri stars (TTSs) are detected through high-resolution spectroscopy and spectropolarimetry (e.g., Johns Krull 2007), whereas their large-scale topologies can be inferred from time series of Zeeman signatures using tomographic techniques inspired from medical imaging (Donati & Landstreet 2009). Large-scale fields of TTSs are found to depend on the internal structure of the newborn star, allowing quantitative models of how TTSs magnetically interact with their inner accretion discs, and the impact of this interaction on the subsequent stellar evolution (e.g., Romanova et al. 2002, Zanni & Ferreira 2013). With its high sensitivity to magnetic fields, SPIRou, the new near-infrared spectropolarimeter installed in 2018 at CFHT (Donati et al. 2018), should yield new advances in the field, especially for young embedded class-I protostars, thereby bridging the gap with radio observations.
机译:磁场在恒星及其行星的早期寿命中发挥着关键作用,因为它们形成逐渐变成大规模增生圆盘的沉着核心,最终将作为行星系统轨道的年轻太阳稳定。主序列阶段,其中来自周围的行星形成的增负键的中央矩阵饲料,对了解我们的太阳系诞生的世界是至关重要的。通过高分辨率光谱检测低质量T TAURI恒星(TTSS)的磁场(例如,约翰斯克鲁尔2007)检测到,而他们的大规模拓扑可以从使用来自医疗的断层扫描技术的塞曼签名的时间序列推断出来成像(Donati&Landstreet 2009)。发现TTSS的大规模领域取决于新生星的内部结构,允许TTSS如何与内部增空盘磁性相互作用的定量模型,以及这种相互作用对随后的恒星演化的影响(例如,Romanova等。2002,Zanni&Ferreira 2013)。凭借其对磁场的高度敏感性,斯波特,2018年在CFHT安装的新型近红外光谱仪(Donati等,2018),应在该领域产生新的进展,特别是对于年轻的嵌入式-I矩阵,从而弥合差距无线电观察。

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