A novel measure for long-term sediment reduction inspired by dragonfly wings

Zhiwei Li, Bing Wang, Fei Wang, Bin Sun, Shuaikang Zhao
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Abstract

The sediment accumulation in drainage pipes has long been recognized as a significant concern in the environmental field. This study addresses sediment accumulation in drainage pipes by introducing an innovative bioinspired approach using various shapes and angles of plates for long-term sediment reduction. Through experiments and numerical simulations, the velocity field, the turbulent kinetic energy, the head loss, and the dynamic pressure distribution in the pipeline with plates are analyzed. Results demonstrate significant increases in local velocity, dynamic pressure, and turbulence energy due to the presence of plates. The sediment reduction performance shows a positive correlation with the angle for folded plates and a non-linear relation with curvature for curved plates. Notably, the superior performance of folded plates is attributed to their exceptional ability to induce vortex formation. The head loss due to sediment reduction measures increases linearly as the angle and the curvature increase. Furthermore, the intentional induction of strong eddies and high shear flow using the undulating topography created by the locally installed folding plates in the pipeline was the main cause of sediment reduction. This novel approach holds promise for more efficient and sustainable sediment reduction in drainage systems.
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受蜻蜓翅膀启发的长期减少泥沙新措施
长期以来,排水管道中的沉积物积累一直是环境领域的一个重要问题。本研究针对排水管道中的沉积物积聚问题,引入了一种创新的生物启发方法,利用不同形状和角度的板材来实现长期减少沉积物的目的。通过实验和数值模拟,分析了带板管道中的速度场、湍流动能、水头损失和动态压力分布。结果表明,由于板的存在,局部速度、动压和湍流能量都有明显增加。对于折叠板,沉积物减少性能与角度呈正相关,而对于弧形板,则与曲率呈非线性关系。值得注意的是,折叠板的卓越性能归因于其诱导涡流形成的特殊能力。随着角度和曲率的增加,沉积物减少措施导致的水头损失呈线性增加。此外,利用管道中局部安装的折叠板所形成的起伏地形有意诱发强涡流和高剪切流,也是沉积物减少的主要原因。这种新方法有望更有效、更可持续地减少排水系统中的沉积物。
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