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Vortex line density in counterflowing He II with laminar and turbulent normal fluid velocity profiles

机译:具有层流和湍流法向流体速度分布的逆流He II中的涡旋线密度

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Superfluid helium is an intimate mixture of a viscous normal fluid, with continuous vorticity, and an inviscid superfluid, where vorticity is constrained to thin, stable topological defects. One mechanism to generate turbulence in this system is through the application of a heat flux, so-called thermal counterflow. Of particular interest is how turbulence in the superfluid responds to both a laminar and turbulent normal fluid in the presence of walls. We model superfluid vortex lines as reconnecting space curves with fixed circulation, and consider both laminar (Poiseuille) and turbulent normal fluid flows in a channel configuration. Using high resolution numerical simulations we show that turbulence in the normal fluid sustains a notably higher vortex line density than a laminar flow with the same mean flow rate. We examine Vinen's relation, L=γv_(ns), between the steady state vortex line density L and the counterflow velocity vns. Our results support the hypothesis that transition to turbulence in the normal fluid is responsible for the TI to TII transition. We also consider the spectral properties of fluctuations of the superfluid vortices, which show a good agreement with previous experimental results.
机译:超流体氦是粘稠的正常流体的混合物,具有连续的涡旋性,而无粘性的超流体则是涡旋被约束为薄而稳定的拓扑缺陷的无粘性超流体。在该系统中产生湍流的一种机制是通过施加热通量,即所谓的热逆流。特别令人感兴趣的是,在存在壁的情况下,超流体中的湍流如何响应层流和湍流正常流体。我们将超流体涡旋线建模为具有固定循环的重新连接空间曲线,并考虑通道结构中的层流(Poiseuille)和湍流法向流体。使用高分辨率数值模拟,我们显示,与具有相同平均流速的层流相比,正常流体中的湍流比涡流具有更高的涡流密度。我们研究稳态涡流线密度L与逆流速度vns之间的Vinen关系L =γv_(ns)。我们的研究结果支持以下假设:从正常流体到湍流的过渡是TI到TII过渡的原因。我们还考虑了超流体涡旋波动的光谱特性,这与以前的实验结果显示出很好的一致性。

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