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首页> 外文期刊>Modern Physics Letters, B. Condensed Matter Physics, Statistical Physics, Applied Physics >Numerical simulation and performance optimization of the centrifugal fan in a vacuum cleaner
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Numerical simulation and performance optimization of the centrifugal fan in a vacuum cleaner

机译:真空吸尘器中离心风扇的数值模拟与性能优化

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This paper focuses on the efficiency improvement of a centrifugal fan used in a vacuum cleaner. In order to check the performance of the centrifugal fan system, computational fluid dynamics (CFD) analysis is used. The numerical simulation with CFD tool is carried out with RNG k ? ?? two-equation turbulence model based on Reynolds-averaged Navier–Stokes equations. To perform the coupling between rotating impeller and stationary area, the multiple reference frame (MRF) model is used. The numerical results of the fan are validated against with experimental results and are found to be highly reliable. The design and optimization of diffuser and impeller of a centrifugal fan are realized by using numerical investigations. For reducing the kinetic energy loss inside the fan, a guide baffle is added to optimize diffuser. The optimization results show that overall efficiency of the fan is improved by 5.27% and considering the lower efficiency of impeller caused by blockage at the blade inlet, etc., the design of impeller with long-short blades is proposed. Several cases of affecting factors under different operating conditions are simulated. Relative length (denoted as σ) and circumferential position of short blades are chosen as design variables. It is found that the efficiency of a fan with a relative length of 0.7 can be increased by 9.34%, and the best circumferential position of short blades is between two adjacent long blades.
机译:本文重点介绍了真空吸尘器中使用的离心式风扇的效率。为了检查离心风扇系统的性能,使用计算流体动力学(CFD)分析。使用RNG K进行CFD工具的数值模拟?当基于Reynolds平均Navier-Stokes方程的两方程湍流模型。为了在旋转叶轮和静止区域之间执行耦合,使用多个参考帧(MRF)模型。风扇的数值结果与实验结果验证,发现是高度可靠的。通过使用数值研究实现了离心式风扇的扩散器和叶轮的设计和优化。为了减少风扇内的动能损失,添加引导挡板以优化扩散器。优化结果表明,风扇的整体效率提高了5.27%,并考虑叶片入口堵塞等叶轮效率等,提出了长短叶片的叶轮设计。模拟了几个影响不同操作条件的因素的病例。选择相对长度(表示为σ)和短叶片的圆周位置作为设计变量。发现具有0.7的相对长度为0.7的风扇的效率可以增加9.34%,并且短叶片的最佳圆周位置在两个相邻的长叶片之间。

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