论文标题

混合喷气机周围的磁化进入惯性限制融合燃料

Magnetization around mix jets entering inertial confinement fusion fuel

论文作者

Sadler, James D., Li, Hui, Haines, Brian M.

论文摘要

已知工程功能会导致射击材料的喷射以惯性限制融合内爆燃料热点。 Biermann电池机构将它们包裹在自生成的磁场中。我们表明,高Z喷气机具有额外的热电磁源项,该项不存在于氢气,通过动力学模拟在此处进行了验证。它的大小与Biermann术语相似。然后,我们将其包括在扩展的磁融化方法中,用于后处理Xrage辐射流动力内爆模拟。该模拟包括胶囊填充管的精确模型,产生了在4000T磁场中包裹的密集碳射流。一个简单的球形碳混合模型表明,这可以绝缘电子传导,足以引起射流对光学较厚平衡的收缩。密集的磁化喷射流体动力学可能会改变其核心穿透力,因此最终混合物质量与融合产量降解相关。充分探索这将需要自洽的磁性流动力模拟。这种自磁化的实验特征可能会在高能量中子谱中出现。

Engineering features are known to cause jets of ablator material to enter the fuel hot-spot in inertial confinement fusion implosions. The Biermann battery mechanism wraps them in self-generated magnetic field. We show that higher-Z jets have an additional thermoelectric magnetic source term that is not present for hydrogen jets, verified here through a kinetic simulation. It has similar magnitude to the Biermann term. We then include this in an extended magneto-hydrodynamics approach to post-process an xRAGE radiation-hydrodynamic implosion simulation. The simulation includes an accurate model for the capsule fill tube, producing a dense carbon jet that becomes wrapped in a 4000T magnetic field. A simple spherical carbon mix model shows that this insulates the electron heat conduction enough to cause contraction of the jet to an optically thick equilibrium. The denser magnetized jet hydrodynamics could change its core penetration and therefore the final mix mass, which is known to be well correlated with fusion yield degradation. Fully exploring this will require self-consistent magneto-hydrodynamic simulations. Experimental signatures of this self-magnetization may emerge in the high energy neutron spectrum.

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