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Numerical Study of Drag Reduction on Grooved Surface

机译:沟槽表面减阻的数值研究

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摘要

In recent decade, research on drag reduction by bionic surface technology has become a hot issue in the scope of marine engineering. Grooved surfaces is considered as the most effective method to improve the efficiency of vessel navigation. In this paper, based on the theory of computational fluid dynamics (CFD), a numerical model on the flow characteristics of the groove surface was established, which was compared with smooth surface. The results indicate that behaviors of flow field on grooved surfaces have been obviously improved. The boundary layer thickness are increased, while the velocity gradient, the shear stress and the turbulent kinetic energy are decreased. These verify the effectiveness of grooved surfaces for drag reduction. Series of groove size were introduced to further analyze on the drag reduction effect. The maximum and minimum of turbulent kinetic energy are proportion to the maximum and minimum of shear stress respectively. The narrower and deeper groove leads to higher ratio of drag reduction with the lower minimum of turbulent kinetic energy.
机译:在最近的十年中,通过仿生表面技术减少阻力的研究已经成为海洋工程领域中的热点问题。沟槽表面被认为是提高船只航行效率的最有效方法。本文基于计算流体力学(CFD)理论,建立了沟槽表面流动特性的数值模型,并与光滑表面进行了比较。结果表明,沟槽表面的流场行为得到了明显改善。边界层厚度增加,而速度梯度,剪切应力和湍动能减小。这些验证了带凹槽的表面对于减少阻力的有效性。介绍了一系列沟槽尺寸,以进一步分析减阻效果。湍动能的最大值和最小值分别与剪切应力的最大值和最小值成比例。较窄和较深的凹槽导致较高的减阻比,而湍流动能的最小值较低。

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