论文标题

由于磁性压力驱动的喷气机,灰尘弹出和准上的内部轮辋引起的红外变异性

Infrared Variability due to Magnetic Pressure Driven Jets, Dust Ejection and Quasi-Puffed-Up Inner Rims

论文作者

Liffman, Kurt, Bryan, Geoffrey, Hutchison, Mark, Maddison, Sarah T.

论文摘要

YSO恒星磁场及其原始圆盘之间的相互作用会导致恒星吸收流和从内盘边缘流出的流出。气体以垂直于圆盘中平面受试者的速度分量的气体流动到离心加速度,从蛋白粉上离心加速度,从而导致颗粒在圆盘的表面上弹射。弹出的材料可以产生“灰尘风扇”,该材料可能足够致密,可以模仿“膨化”内盘边缘的外观。我们得出分析方程,以依赖时间依赖的圆盘环形场,圆盘磁转换,稳定的环形盘区域的大小,射流速度和最大射流流速的盘区域。我们展示了如何通过尘埃驱动器风扇从圆盘的内部最多区域进行模拟的前过渡光盘系统LRLL 〜31的现象红外变异性,其高度部分取决于射流流速。射流流速越大,潜在的灰尘风扇尺度高度就越高。恒星上的质量积聚增加倾向于增加灰尘射血风扇的高度和光学深度,从而增加1--8〜 $ $ m辐射的量。随后的阴影减少了落在外盘上的光量,并减少了8--40〜 $μ$ m辐射。积聚率的降低会逆转这种情况,从而产生观察到的“锯齿”红外变异性。

The interaction between a YSO stellar magnetic field and its protostellar disc can result in stellar accretional flows and outflows from the inner disc rim. Gas flows with a velocity component perpendicular to disc midplane subject particles to centrifugal acceleration away from the protostar, resulting in particles being catapulted across the face of the disc. The ejected material can produce a "dust fan", which may be dense enough to mimic the appearance of a "puffed-up" inner disc rim. We derive analytic equations for the time dependent disc toroidal field, the disc magnetic twist, the size of the stable toroidal disc region, the jet speed and the disc region of maximal jet flow speed. We show how the observed infrared variability of the pre-transition disc system LRLL~31 can be modelled by a dust ejecta fan from the inner-most regions of the disc whose height is partially dependent on the jet flow speed. The greater the jet flow speed, the higher is the potential dust fan scale height. An increase in mass accretion onto the star tends to increase the height and optical depth of the dust ejection fan, increasing the amount of 1--8~$μ$m radiation. The subsequent shadow reduces the amount of light falling on the outer disc and decreases the 8-- 40~$μ$m radiation. A decrease in the accretion rate reverses this scenario, thereby producing the observed "see-saw" infrared variability.

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