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Interaction between active particles and quantum vortices leading to Kelvin wave generation

机译:活性粒子与量子涡旋之间的相互作用导致开尔文波的产生

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摘要

One of the main features of superfluids is the presence of topological defects with quantised circulation. These objects are known as quantum vortices and exhibit a hydrodynamic behaviour. Nowadays, particles are the main experimental tool used to visualise quantum vortices and to study their dynamics. We use a self-consistent model based on the three-dimensional Gross-Pitaevskii (GP) equation to explore theoretically and numerically the attractive interaction between particles and quantized vortices at very low temperature. Particles are described as localised potentials depleting the superfluid and following Newtonian dynamics. We are able to derive analytically a reduced central-force model that only depends on the classical degrees of freedom of the particle. Such model is found to be consistent with the GP simulations. We then generalised the model to include deformations of the vortex filament. The resulting long-range mutual interaction qualitatively reproduces the observed generation of a cusp on the vortex filament during the particle approach. Moreover, we show that particles can excite Kelvin waves on the vortex filament through a resonance mechanism even if they are still far from it.
机译:超流体的主要特征之一是存在定量循环的拓扑缺陷。这些物体被称为量子涡旋,并表现出流体动力学行为。如今,粒子是用于可视化量子涡旋并研究其动力学的主要实验工具。我们使用基于三维Gross-Pitaevskii(GP)方程的自洽模型,从理论和数值上探讨了在非常低的温度下粒子与量化涡旋之间的吸引相互作用。粒子被描述为耗尽超流体并遵循牛顿动力学的局部势。我们能够分析得出一个简化的中心力模型,该模型仅取决于粒子的经典自由度。发现该模型与GP仿真一致。然后,我们将模型推广到包括涡旋丝的变形。在粒子接近过程中,所得的远程相互相互作用定性地再现了在涡旋丝上观察到的尖点的产生。此外,我们证明了粒子可以通过共振机制激发涡旋丝上的开尔文波,即使它们离它还很远。

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