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Time-resolved study of laser initiated shock wave propagation in superfluid He-4

机译:激光引发的冲击波在He-4超流体中传播的时间分辨研究

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摘要

Intense shock waves in superfluid He-4 between 1.7 and 2.1 K are generated by rapidly expanding confined plasma from laser ablation of a metal target immersed in the liquid. The resulting shock fronts in the liquid with initial velocities up to ca. Mach 10 are visualized by time-resolved shadow-graph photography. These high intensity shocks decay within 500 ns into less energetic shock waves traveling at Mach 2, which have their lifetime in the microsecond time scale. Based on the analysis using the classical Rankine-Hugoniot theory, the shock fronts created remain in the solid phase up to 1 mu s and the associated thermodynamic state appears outside the previously studied region. The extrapolated initial shock pressure of 0.5 GPa is comparable to typical plasma pressures produced during liquid phase laser ablation. A secondary shock originating from fast heat propagation on the metal surface is also observed and a lower limit estimate for the heat propagation velocity is measured as 7 x 10(4) m/s. In the long-time limit, the high intensity shocks turn into liquid state waves that propagate near the speed of sound. Published by AIP Publishing.
机译:通过快速浸没浸入液体中的金属靶材的受限等离子体,在超流体He-4中产生强烈的冲击波,范围在1.7和2.1 K之间。所产生的冲击波以高达约200的初始速度在液体中前沿。通过时间分辨阴影图摄影可以使10马赫可视化。这些高强度的冲击在500 ns内衰减成能量较低的冲击波,以2马赫的速度传播,其寿命在微秒级。根据经典兰金-休格尼奥特理论进行的分析,所产生的激波前沿固相最多保持1 s s,并且相关的热力学状态出现在先前研究的区域之外。外推的初始冲击压力为0.5 GPa,与液相激光烧蚀过程中产生的典型等离子体压力相当。还观察到由于在金属表面上快速传热引起的二次冲击,传热速度的下限估计为7 x 10(4)m / s。在长时间内,高强度的冲击变成液态波,以接近声速的速度传播。由AIP Publishing发布。

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