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Collision Dynamics and Internal Mixing of Equal-size Droplets of Non-Newtonian Liquids

机译:非牛顿液体等尺寸液滴的碰撞动力学和内部混合

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The efficient internal mixing of colliding non-Newtonian droplets upon coalescence is critical to various technological processes, specifically involving the initiation of the liquid-phase reaction of gelled hypergolic propellants, which are promising fuels for next-generation rocket engines. However, most previous studies on droplet collision used Newtonian fluids, and the non-Newtonian fluids that can be highly nonlinear and even trend reversing are much less understood to date. Motzigemba et al. [1] experimentally found that the deformation of colliding droplets of shear-thinning fluids is substantially larger than that of the Newtonian fluid. In a previous work [2], we numerically studied the initially stationary equal-sized droplet coalescence between a Newtonian and non-Newtonian droplet. Because of the reduced local viscosity and thereby smaller viscous dissipation for shear-thinning fluids, the flow in the non-Newtonian droplet is faster than that in the Newtonian droplet, resulting in unsymmetrical, albeit small, mixing induced by the shear-thinning effect. The above findings are encouraging since the droplet internal motion is driven solely by the surface tension of the initially stationary droplets regardless of the impact inertia. However, as the published references of Newtonian fluid characteristics, internal mixing of non-Newtonian fluid definitely can be substantially augmented because of the correspondingly substantial internal motion generated through the impact inertia. Thus, in terms of the equal-sized head-on colliding droplets, efficient mixing must require breaking the collision symmetry by varying the impact inertia and the rheological properties as well.
机译:聚结时碰撞的非牛顿液滴的有效内部混合对于各种技术过程至关重要,特别是涉及胶凝的高离岸推进剂的液相反应的启动,这是下一代火箭发动机的有希望的燃料。但是,迄今为止,大多数有关液滴碰撞的研究都使用牛顿流体,而高度非线性甚至趋势逆转的非牛顿流体至今却鲜为人知。 Motzigemba等。 [1]通过实验发现,稀疏剪切液的碰撞液滴的变形显着大于牛顿流体的变形。在以前的工作中[2],我们用数值方法研究了牛顿和非牛顿液滴之间初始稳定的等尺寸液滴合并。由于剪切稀化流体的局部粘度降低,从而粘性耗散较小,因此非牛顿液滴中的流动要比牛顿液滴中的流动快,从而导致剪切稀化效应引起的不对称混合(尽管很小)。上述发现是令人鼓舞的,因为液滴内部运动仅由初始静止的液滴的表面张力驱动,而与冲击惯性无关。然而,作为已公开的关于牛顿流体特性的参考,由于通过冲击惯性产生的相应的相当大的内部运动,非牛顿流体的内部混合肯定可以显着增强。因此,就相等大小的正面碰撞液滴而言,有效的混合必须要求通过改变冲击惯性和流变性质来破坏碰撞对称性。

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