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The fluid dynamics of the chocolate fountain

机译:巧克力喷泉的流体动力学

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摘要

We consider the fluid dynamics of the chocolate fountain. Molten chocolate is a mildly shear-thinning non-Newtonian fluid. Dividing the flow into three main domains-the pumped flow up the centre, the film flow over each dome, and the freely falling curtain flow between the domes-we generate a wide-ranging study of Newtonian and non-Newtonian fluid mechanics. The central pumped flow is a benchmark to elucidate the effects of shear-thinning. The dome flow can be modelled as a thin-film flow with the leading-order effects being a simple balance of gravity and viscosity. Finally, the curtain flow is analytically intractable but is related to the existing theory of water bells (both inviscid and viscous). In pipe flow, Newtonian fluids exhibit a parabolic velocity profile; shear-thinning makes the profile more blunted. In thin-film flow over the dome, gravitational and viscous effects balance and the dome shape is not important beyond the local slope. We find that the chocolate thins and slows down as it travels down the dome. Finally, in the curtain flow, we predict the shape of the falling sheet for an inviscid fluid, and compare this with the literature to predict the shape for a viscous fluid, having shown that viscous forces are too great to ignore. We also find that the primary effect driving the shape of the curtain (which falls inwards towards the axis of the fountain) is surface tension. We find that the three domains provide excellent introductions to non-Newtonian mechanics, the important mathematical technique of scaling, and how to manipulate existing data to make our own predictions. We also find that the topic generates interest among the public in our engagement work.
机译:我们考虑了巧克力喷泉的流体动力学。熔融巧克力是一种适度剪切稀化的非牛顿流体。将流量分为三个主要区域-中心向上的泵送流量,每个圆顶上的薄膜流量以及圆顶之间的自由落幕式流量-我们对牛顿流体力学和非牛顿流体力学进行了广泛的研究。中央泵送流量是阐明剪切稀化效果的基准。圆顶流可以建模为薄膜流,其前导效应是重力和粘度的简单平衡。最后,幕流在分析上很难处理,但与水铃的现有理论(无粘性和粘性)有关。在管道流动中,牛顿流体表现出抛物线速度曲线;剪切变稀使轮廓更钝。在穹顶上的薄膜流动中,重力和粘性效应达到平衡,穹顶的形状在局部斜率之外并不重要。我们发现,巧克力沿圆顶移动时会变稀并减慢速度。最后,在幕流中,我们预测了粘性流体的下落片的形状,并将其与文献进行比较以预测粘性流体的形状,结果表明粘性力太大而不能忽略。我们还发现,驱动窗帘形状(朝着喷泉的轴线向内倾斜)的主要作用是表面张力。我们发现,这三个领域为非牛顿力学,缩放的重要数学技术以及如何操纵现有数据做出我们自己的预测提供了出色的介绍。我们还发现,该主题引起了公众对我们参与工作的兴趣。

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