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Efficiency of Hydrodynamic Energy Transfer to an Arbitrarily Thick Flat Layer of Material during Pulsed Ablation

机译:脉冲烧蚀过程中流体动力能量转移至任意厚度的材料平坦层的效率

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摘要

We obtained a general analytical solution of the problem of hydrodynamic energy transfer to a flat layer of material with an arbitrary initial thickness when ablation-the evaporation of material and the formation of a pressure gradient under the action of an external pulsed energy source-takes place at one of its surfaces. The solution was obtained in the form of a dependence of the fraction of the source energy transferred to the nonevaporated part of the layer on the intensity and duration of the energy source as well as on the initial layer thickness and density. The solution includes, as limiting cases, the previously obtained solutions for the hydrodynamic transfer coefficient during the ablation acceleration of a thin layer, through which the travel time of a shock or acoustic wave is much shorter than the duration of the energy source, and for the ablation loading efficiency when a shock wave propagates through a semiinfinite layer.
机译:我们获得了一种一般的解析解决方案,用于解决在烧蚀时流体动力能量转移到具有任意初始厚度的材料的平坦层的问题,即在外部脉冲能量源的作用下发生材料的蒸发和压力梯度的形成在其表面之一。获得溶液的形式取决于转移到该层的未蒸发部分的源能量的分数取决于能量的强度和持续时间以及初始层的厚度和密度。作为极限情况,该解决方案包括先前获得的薄层烧蚀加速期间的流体动力传递系数解决方案,通过该解决方案,冲击波或声波的传播时间比能量源的持续时间短得多,并且冲击波传播通过半无限层时的消融负荷效率。

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