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Dynamic Behavior of Non-Newtonian Droplets Impinging on Solid Surfaces

机译:非牛顿液滴撞击固体表面的动力学行为

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摘要

This article illustrates the spreading and receding characteristics of non-Newtonian droplets impinging on solid surfaces at different Weber numbers. A xanthan gum solution was used to generate non-Newtonian droplets. From digital images captured using a high speed camera, spreading diameters and dynamic contact angles (DCA) were measured during the impact process. Depending on impact velocity, distinct differences in spreading and receding motions were found between Newtonian and non-Newtonian droplets, which were highly associated with viscous energy dissipation. The maximum spreading diameters for Newtonian and non-Newtonian droplets were nearly the same, but a much slower receding motion was observed for non-Newtonian droplets because of the shear-thinning effect. Moreover, a rapid decrease of DCA in the spreading regime was observed for both non-Newtonian and Newtonian droplets, indicating that the inertial force became dominant. By contrast, measured DCAs for non-Newtonian fluid droplets in the receding regime were larger than those for Newtonian fluid droplets, demonstrating that cohesive surface forces were more dominant than inertial forces in this regime.
机译:本文说明了非牛顿液滴以不同韦伯数撞击固体表面时的扩散和后退特性。黄原胶溶液用于产生非牛顿液滴。从使用高速相机拍摄的数字图像中,可以测量冲击过程中的张开直径和动态接触角(DCA)。根据冲击速度,在牛顿液滴和非牛顿液滴之间发现了扩展运动和后退运动的明显差异,这与粘性能量耗散高度相关。牛顿和非牛顿液滴的最大散布直径几乎相同,但是由于剪切变稀效应,非牛顿液滴的后退运动要慢得多。此外,在非牛顿液滴和牛顿液滴中都观察到了DCA在扩散状态下的快速下降,这表明惯性力成为主导。相比之下,在后退状态下,非牛顿液滴的DCA值要大于在牛顿状态下液滴的DCA,这表明在此状态下,内聚表面力比惯性力更重要。

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