论文标题
旋转4HE时量子涡流密度定律的直接可视化
Direct visualization of the quantum vortex density law in rotating 4He
论文作者
论文摘要
HE II中量子涡流动力学的研究具有完善量子流体模型的巨大希望。 Bose-Einstein冷凝,中子星甚至超导体表现出量子涡流,其相互作用是这些系统中耗散的关键要素。这些量子对象在核心周围具有速度循环,在HE II中,它们的核心像氦原子一样薄。通过间接均值观察到了它们,例如在光敏材料上的第二次声音衰减或电子气泡烙印,在过去的二十年中,用颗粒装饰低温流是研究这些涡旋的有力方法。但是,在这些最近的粒子可视化观察结果中,实验稳定性,初始条件,平稳性和可重复性是难以捉摸或分散的,尽管大多数考虑的流都是本质上是3D,但仍进行了2D动态分析。在这里,我们证明我们能够在固定的旋转超流体桶的规范和更高的对称情况下可视化这些涡旋。使用直接可视化,我们定量验证了Feynman的规则,将所得量子涡流密度与施加的旋转速度联系起来。我们的统计意义结果表明,正如Feynman所预测的那样,装饰的量子涡度的行为。因此,氢薄片是HE II中固定情况的量子涡流的良好示踪剂。观察到的涡旋晶格类似于超导体和玻色仁冷凝水中发现的Abrikosov晶格。此外,这些与旋转轴对齐的晶格可以在动态案例中发挥明确和控制的初始条件的作用。我们通过观察沿量子涡流的集体波模式传播和旋转He II中的量子涡流相互作用来充分利用这种稳定的配置。这些结果为模型提供了一个新的实验基线,以更好地描述所有量子流体。
The study of quantum vortex dynamics in He II holds great promise to refine quantum-fluid models. Bose-Einstein condensates, neutron stars or even superconductors exhibit quantum vortices, whose interactions are a key element of dissipation in these systems. These quantum objects have their velocity circulation around their core quantized and, in He II, a core as thin as a helium atom. They have been observed experimentally by indirect means, such as second sound attenuation or electron bubble imprints on photo sensitive material, and for the last twenty years, decorating cryogenic flows with particles has proved to be a powerful method to study these vortices. However, in these recent particle visualization observations, experimental stability, initial condition, stationarity and reproducibility are elusive or fragmented and 2d dynamical analysis are performed although most of the considered flows are inherently 3d. Here we show that we are able to visualize these vortices in the canonical and higher symmetry case of a stationary rotating superfluid bucket. Using direct visualization, we quantitatively verify Feynman's rule linking the resulting quantum vortex density to the imposed rotational speed. Our statistically meaningful results demonstrate that decorated quantum vortices behave as Feynman predicted. It follows that hydrogen flakes are good tracers of quantum vortices for stationary cases in He II. The observed vortex lattices are analogous to Abrikosov lattices found in superconductors and Bose-Einstein condensates. Moreover, these lattices aligned with the rotation axis can play the role of a well-defined and controlled initial condition for dynamical cases. We make the most of this stable configuration by observing collective wave mode propagation along quantum vortices and quantum vortex interactions in rotating He II. These results provide a new experimental baseline for models to evolve towards a better description of all quantum-fluids.