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A unified view of energetic efficiency in active drag reduction, thrust generation and self-propulsion through a loss coefficient with some applications

机译:主动减阻,推力产生和通过损失系数的自推进的能量效率的统一视图以及某些应用

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摘要

An analysis of the energy budget for the general case of a body translating in a stationary fluid under the action of an external force is used to define a power loss coefficient. This universal definition of power loss coefficient gives a measure of the energy lost in the wake of the translating body and, in general, is applicable to a variety of flow configurations including active drag reduction, self-propulsion and thrust generation. The utility of the power loss coefficient is demonstrated on a model bluff body flow problem concerning a two-dimensional elliptical cylinder in a uniform cross-flow. The upper and lower boundaries of the elliptic cylinder undergo continuous motion due to a prescribed reflectionally symmetric constant tangential surface velocity. It is shown that a decrease in drag resulting from an increase in the strength of tangential surface velocity leads to an initial reduction and eventual rise in the power loss coefficient. A maximum in energetic efficiency is attained for a drag reducing tangential surface velocity which minimizes the power loss coefficient. The effect of the tangential surface velocity on drag reduction and self-propulsion of both bluff and streamlined bodies is explored through a variation in the thickness ratio (ratio of the minor and major axes) of the elliptical cylinders.
机译:对于在外力作用下在静止流体中平移的物体的一般情况下的能量预算进行分析,以定义功率损耗系数。功率损耗系数的这种通用定义给出了在平移体尾流中损失的能量的量度,并且通常适用于各种流动配置,包括主动减阻,自推进和推力产生。功率损耗系数的效用在关于均匀椭圆形流中二维椭圆圆柱的模型钝体流问题上得到了证明。由于规定的反射对称恒定切向表面速度,椭圆圆柱体的上下边界经历连续运动。可以看出,由于切向表面速度强度的增加而导致的阻力减小导致功率损耗系数的初始减小和最终增大。对于减小切向表面速度的阻力,可实现最大的能量效率,从而使功率损耗系数最小。通过改变椭圆圆柱体的厚度比(短轴和长轴之比)来探索切向表面速度对钝体和流线形体的减阻和自推进的影响。

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