论文标题
YSO喷气机和Novae流出的绝热性冲击系统
Adiabatic-radiative shock systems in YSO jets and novae outflows
论文作者
论文摘要
在经典Novae中,原始恒星和超音速流出中非相关射流的终止区域是非热发射器。考虑到这些系统中的高密度,预计会形成辐射冲击。但是,在高速度的情况下,也可以形成绝热冲击。感兴趣的情况是同时发生两种冲击的情况。这些密集的喷气机/流出是MHD缩放证明的实验室实验的出色候选者。我们旨在研究这些系统中绝热和辐射冲击的组合。我们专注于确定这种组合可行的条件以及其物理含义。我们对一组参数的两种源中的冲击进行了分析研究。用2D数值模拟研究了与环境介质相撞的射流碰撞的流体动力学演化,从而证实了我们的初始理论估计值。我们表明,对于广泛的参数,在年轻恒星和Novae流出的喷气机的终端区域的工作表面上可能会结合绝热和辐射冲击。我们发现在接触不连续性时发展了不稳定性,并混合了震惊的材料。此外,我们还探讨了使用激光设施上的实验室实验研究原始喷气机和Novae流出所需的MHD参数缩放。预计在原始喷气机和Novae流出的终止区域,绝热和辐射冲击的共存。对于粒子加速和伽马射线发射,这种情况非常有前途。缩放实验室实验的参数与当前运行高功率激光设施可实现的血浆条件非常一致。这为研究Novae流出从未考虑过的新手段打开了大门。
The termination regions of non-relativistic jets in protostars and supersonic outflows in classical novae are nonthermal emitters. Given the high densities in these systems, radiative shocks are expected to form. However, in the presence of high velocities, the formation of adiabatic shocks is also possible. A case of interest is when the two types of shocks occur simultaneously. These dense jets/outflows are excellent candidates for laboratory experiments as demonstrated by MHD scaling. We aim at studying the combination of adiabatic and radiative shocks in these systems. We focus on determining the conditions under which this combination is feasible together with its physical implications. We perform an analytical study of the shocks in both types of sources for a set of parameters. The hydrodynamical evolution of a jet colliding with an ambient medium is studied with 2D numerical simulations confirming our initial theoretical estimates. We show that for a wide set of parameters the combination of an adiabatic and a radiative shock is possible at the working surface of the termination region in jets from young stars and novae outflows. We find that instabilities are developed at the contact discontinuity, mixing the shocked materials. Also, we explore the MHD parameter scaling required for studying protostellar jets and novae outflows using laboratory experiments on laser facilities. The coexistence of an adiabatic and a radiative shock is expected at the termination region of protostellar jets and novae outflows. This scenario is very promising for particle acceleration and gamma-ray emission. The parameters for scaled laboratory experiments are very much in line with plasma conditions achievable in currently operating high-power laser facilities. This opens the door to new means for studying novae outflows never considered before.