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首页> 外文期刊>The Astrophysical journal >BIPOLAR JETS LAUNCHED FROM MAGNETICALLY DIFFUSIVE ACCRETION DISKS. I. EJECTION EFFICIENCY VERSUS FIELD STRENGTH AND DIFFUSIVITY
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BIPOLAR JETS LAUNCHED FROM MAGNETICALLY DIFFUSIVE ACCRETION DISKS. I. EJECTION EFFICIENCY VERSUS FIELD STRENGTH AND DIFFUSIVITY

机译:从磁扩散吸积盘中推出双极型弹射器。一,喷射效率与场强和扩散率

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We investigate the launching of jets and outflows from magnetically diffusive accretion disks. Using the PLUTO code, we solve the time-dependent resistive magnetohydrodynamic equations taking into account the disk and jet evolution simultaneously. The main question we address is which kind of disks launch jets and which kind of disks do not? In particular, we study how the magnitude and distribution of the (turbulent) magnetic diffusivity affect mass loading and jet acceleration. We apply a turbulent magnetic diffusivity based on α-prescription, but also investigate examples where the scale height of diffusivity is larger than that of the disk gas pressure. We further investigate how the ejection efficiency is governed by the magnetic field strength. Our simulations last for up to 5000 dynamical timescales corresponding to 900 orbital periods of the inner disk. As a general result, we observe a continuous and robust outflow launched from the inner part of the disk, expanding into a collimated jet of superfast-magnetosonic speed. For long timescales, the disk's internal dynamics change, as due to outflow ejection and disk accretion the disk mass decreases. For magnetocentrifugally driven jets, we find that for (1) less diffusive disks, (2) a stronger magnetic field, (3) a low poloidal diffusivity, or (4) a lower numerical diffusivity (resolution), the mass loading of the outflow is increased—resulting in more powerful jets with high-mass flux. For weak magnetization, the (weak) outflow is driven by the magnetic pressure gradient. We consider in detail the advection and diffusion of magnetic flux within the disk and we find that the disk and outflow magnetization may substantially change in time. This may have severe impact on the launching and formation process—an initially highly magnetized disk may evolve into a disk of weak magnetization which cannot drive strong outflows. We further investigate the jet asymptotic velocity and the jet rotational velocity in respect of the different launching scenarios. We find a lower degree of jet collimation than previous studies, most probably due to our revised outflow boundary condition.
机译:我们研究了射流的发射和磁扩散积积盘的流出。使用PLUTO代码,我们同时考虑了磁盘和射流的演化,从而求解了与时间相关的电阻磁流体动力学方程。我们要解决的主要问题是哪种类型的磁盘可以发射喷射,而哪种类型的磁盘却不能喷射?特别是,我们研究了(湍流)磁扩散率的大小和分布如何影响质量负载和射流加速度。我们基于α处方应用了湍流磁扩散率,但还研究了扩散率标度高度大于磁盘气压的标高的示例。我们进一步研究了如何通过磁场强度来控制喷射效率。我们的仿真可以持续多达5000个动态时标,对应于内部磁盘的900个轨道周期。作为一般结果,我们观察到从磁盘内部连续不断地流出,并扩展为超快磁速的准直射流。对于较长的时间尺度,磁盘的内部动力学会发生变化,因为由于流出弹出和磁盘积聚,磁盘的质量会降低。对于磁离心驱动的射流,我们发现,对于(1)扩散盘较少,(2)磁场较强,(3)极谱扩散率较低或(4)数值扩散率(分辨率)较低,流出物的质量负荷增加了流量,从而产生了具有更高质量通量的更强大的射流。对于弱磁化,(弱)流出是由磁压力梯度驱动的。我们详细考虑了磁盘内磁通量的对流和扩散,我们发现磁盘和流出磁化强度可能随时间变化。这可能会对发射和形成过程产生严重影响-最初高度磁化的磁盘可能演变为弱磁化的磁盘,从而无法驱动强烈的流出。我们将进一步针对不同的发射情况研究射流的渐近速度和射流的旋转速度。我们发现喷射准直度比以前的研究低,这很可能是由于我们修改了流出边界条件。

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