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首页> 外文期刊>Journal of the Institution of Engineers (India), Series D. Metallurgical & Materials Engineering.Mining Engineering >Influence of Delta Wing on Wall Erosion Characteristics of Mitred Pipe Bends Handling Coal Slurries
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Influence of Delta Wing on Wall Erosion Characteristics of Mitred Pipe Bends Handling Coal Slurries

机译:三角翼对煤浆处理斜管弯管侵蚀特性的影响

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摘要

The present work investigates the influence of delta wing vortex generators placed inside circular mitred pipe bends, handling high density and erosive coal slurries. Coal slurry flowing at different Reynolds numbers ranging from 2000 < Re < 10,000 is tested. Mitred bends having a flow turning angle (a) of 45°, formed by joining segments of pipe, with varying number of joints (1, 2 and 3) were assessed numerically. Delta wing was positioned inside the pipe at different angles (β = 30°, 60°, 90°, 120° and 150°). Coal slurry viscosity and density varied to understand the influence of solids loading (φ = 30, 35, 41, 42, 43, 44) on the wall erosion characteristics. Computational studies are carried out on a 90° turning circular sectioned smooth pipe bend to study the impact of various turbulence models, and the results are validated with appropriate results from the literature. A turbulence model having good correlation with the literature results is identified and adopted in the present study. Highest turbulent mixing at the pipe outlet and reduced peak wall shear stress were considered as criterion for selecting best delta wing orientation, though with a higher pressure drop penalty. Unique delta wing induced vortex flow evolutions in the streamwise direction is reported.
机译:本工作研究了放置在圆形斜切管弯管内的三角翼涡流发生器对处理高密度和侵蚀性煤浆的影响。测试了从 2000 < Re < 10,000 的不同雷诺数流动的煤浆。通过数值评估了流动转弯角 (a) 为 45° 的斜角弯头,该弯头由连接管道段形成,具有不同数量的接头(1、2 和 3)。三角翼以不同的角度(β = 30°、60°、90°、120°和150°)定位在管道内。煤浆黏度和密度变化以了解固体负荷(φ=30%、35%、41%、42%、43%、44%)对壁面侵蚀特性的影响。对90°转弯圆截面光滑管弯进行了计算研究,研究了各种湍流模型的影响,并利用文献的适当结果验证了结果。本文确定并采用一种与文献结果具有较好相关性的湍流模型。管道出口处最高的湍流混合和降低的峰值壁剪应力被认为是选择最佳三角翼方向的标准,尽管压降损失更高。报道了独特的三角翼诱发的涡流流在流向上的演变。

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