旋涡流量计中不同钝体几何形状引起的旋涡脱落现象的实验研究

IF 2.5 3区 工程技术 Q2 MECHANICS
Saeed Farsad , Seyed Morteza Parpanchi , Mojtaba Rezaei
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引用次数: 0

摘要

研究和理解钝体尾流区的涡脱落现象在大多数流体系统中是至关重要的。本文采用风洞试验对三角形、矩形、方形、梯形和t形五种不同几何形状的钝体模型的下游流进行了评价和评价。目的是利用这些形状的流量计和角度传感器(作为一个新的创新)。研究了不同气流角下模型周围下游气流的速度场、湍流强度和旋涡脱落频率。结果表明,矩形和梯形钝体比其他几何形状更适合用于涡流流角传感器。根据结果,推荐使用t形模型而不是其他几何形状的涡流流量计。此外,107.5°角的矩形钝体提供了观测涡旋和测量或校准热线风速计探头的最合适区域。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Experimental study of vortex shedding phenomenon induced by various bluff body geometries for use in vortex flowmeters
Studying and understanding the vortex-shedding phenomenon in the wake region of bluff bodies is crucial in most fluid systems. This paper uses wind tunnel experiments to evaluate and assess the downstream flow of five bluff body models with various geometric shapes, including triangle, rectangle, square, trapezoid, and T-shape. The aim is to utilize these shapes in flowmeters and angle sensors (as a novel innovation). The velocity field, turbulence intensity, and vortex shedding frequency of the downstream airflow around these models were examined at different flow angles. Results indicate that rectangular and trapezoidal bluff bodies are more suitable for application in flow angle sensors using vortex than other geometries studied. Based on the results, recommend the T-shaped model over other geometries for use in vortex flow meters. Furthermore, the rectangular bluff body at a 107.5° angle provides the most suitable areas for observing vortices and measuring or calibrating hot-wire anemometer probes.
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来源期刊
CiteScore
5.90
自引率
3.80%
发文量
127
审稿时长
58 days
期刊介绍: The European Journal of Mechanics - B/Fluids publishes papers in all fields of fluid mechanics. Although investigations in well-established areas are within the scope of the journal, recent developments and innovative ideas are particularly welcome. Theoretical, computational and experimental papers are equally welcome. Mathematical methods, be they deterministic or stochastic, analytical or numerical, will be accepted provided they serve to clarify some identifiable problems in fluid mechanics, and provided the significance of results is explained. Similarly, experimental papers must add physical insight in to the understanding of fluid mechanics.
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