论文标题
研究磁制动对太阳和太阳型恒星锂丰度的影响
Study of the effects of magnetic braking on the lithium abundances of the Sun and solar-type stars
论文作者
论文摘要
在当今场景中似乎异常异常的锂(Li)表面丰度的研究,以及旋转和磁制动(MB)对预梅因序列(PMS)和主序列(MS)期间其耗竭的影响。在这项工作中,通过模拟PMS的几个网格和MS旋转和非旋转模型,研究了旋转混合和旋转静液压效应对LI丰度的影响。这些影响与MB的其他影响(磁场强度在3.0到5.0 g之间)相结合。通过比较不同的恒星参数来面对从模拟获得的数据。结果表明,当包括旋转效应时,在PMS结束时以及MS的整个MS的表面含量丰度降低,即,旋转模型的LI耗竭速率高于非旋转模型的耗尽率。当存在磁场产生的MB时,这种效果会减弱。这种物理现象还会影响星级有效温度($ t _ {\ mathrm {eff}} $)及其在HR图中的位置。 MB在LI耗竭中的影响对磁场强度敏感:它越高,LI破坏越低。观察到磁场和对流区(CZ)大小之间的直接连接:更强的磁场会产生较浅的CZ。该结果表明,如果我们旨在重现年轻簇中的li丰度,则必须在PM中考虑MB效应。
The study of lithium (Li) surface abundance in the Sun and young stellar globular clusters which are seemingly anomalous in present-day scenarios, as well as the influence of rotation and magnetic braking (MB) on its depletion during pre-main sequence (PMS) and main sequence (MS). In this work, the effects of rotational mixing and of the rotational hydrostatic effects on Li abundances are studied by simulating several grids of PMS and MS rotating and non-rotating models. Those effects are combined with the additional impact of the MB (with magnetic field intensities ranging between 3.0 and 5.0 G). The data obtained from simulations are confronted by comparing different stellar parameters. The results show that the surface Li abundance for the Sun like models at the end of the PMS and throughout the MS decreases when rotational effects are included, i.e. the Li depletion rate for rotating models is higher than for non-rotating ones. This effect is attenuated when the MB produced by a magnetic field is present. This physical phenomena impacts also the star effective temperature ($T_{\mathrm{eff}}$) and its location in the HR diagram. The impact of MB in Li depletion is sensitive to the magnetic field intensity: the higher it is, the lower the Li destruction. A direct link between the magnetic fields and the convective zone (CZ) size is observed: stronger magnetic fields produce shallower CZ's. This result suggests that MB effect must be taken into consideration during PMS if we aim to reproduce Li abundances in young clusters.