论文标题
α颗粒对内层内太阳风角动量通量的贡献
The Contribution of Alpha Particles to the Solar Wind Angular Momentum Flux in the Inner Heliosphere
论文作者
论文摘要
对太阳的角动量(AM)损耗率的准确评估是描述类似太阳恒星旋转演化的模型的独立限制。 Parker太阳能探针(PSP)在$ \ sim 28-55r _ {\ odot} $的径向距离处采取的太阳风的原位测量值用于约束太阳能风能 - 损失率。这是第一次使用PSP,包括对α粒子贡献的测量。确定太阳风质子(芯和束)和α颗粒中的机械AM通量以及通过星际磁场中的应力通过AM传输。太阳风通量在三个小时的增量中平均,因此我们的发现更准确地代表了整体流量。在PSP的第三和第四个周围通过时,α颗粒包含太阳风中机械AM通量的五分之一(其余由质子携带)。发现质子光束包含$ \ sim 10-50 \%$ $的质子AM通量。观察到α粒子AM通量的符号与质子芯相关。慢风的AM通量为正(如预期,从太阳上删除AM),并且快风的AM通量为负。与以前的工作一样,α颗粒和质子芯之间的差速度往往与星际磁场对齐。将来,通过利用Alpha-Proton差异速度的趋势,只有可用的质子核的测量值,就可以估计α粒子的贡献。基于这项工作的观察结果,α颗粒为仅考虑质子和磁场贡献的太阳风量损失率的估计额外贡献了$ 10-20 \%$。此外,质子束的AM通量可能与α颗粒一样重要,因此在以后的研究中不应忽略。
An accurate assessment of the Sun's angular momentum (AM) loss rate is an independent constraint for models that describe the rotation evolution of Sun-like stars. In-situ measurements of the solar wind taken by Parker Solar Probe (PSP), at radial distances of $\sim 28-55R_{\odot}$, are used to constrain the solar wind AM-loss rate. For the first time with PSP, this includes a measurement of the alpha particle contribution. The mechanical AM flux in the solar wind protons (core and beam), and alpha particles, is determined as well as the transport of AM through stresses in the interplanetary magnetic field. The solar wind AM flux is averaged over three hour increments, so that our findings more accurately represent the bulk flow. During the third and fourth perihelion passes of PSP, the alpha particles contain around a fifth of the mechanical AM flux in the solar wind (the rest is carried by the protons). The proton beam is found to contain $\sim 10-50\%$ of the proton AM flux. The sign of the alpha particle AM flux is observed to correlate with the proton core. The slow wind has a positive AM flux (removing AM from the Sun as expected), and the fast wind has a negative AM flux. As with previous works, the differential velocity between the alpha particles and the proton core tends to be aligned with the interplanetary magnetic field. In future, by utilising the trends in the alpha-proton differential velocity, it may be possible to estimate the alpha particle contribution when only measurements of the proton core are available. Based on the observations from this work, the alpha particles contribute an additional $10-20\%$ to estimates of the solar wind AM-loss rate which consider only the proton and magnetic field contributions. Additionally, the AM flux of the proton beam can be just as significant as the alpha particles, and so should not be neglected in future studies.