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Centrifugal blower volute optimization based on Taguchi method

机译:基于田口法的离心鼓风机蜗壳优化

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The performance of centrifugal blower is enhanced with an optimization process on the blower volute using Taguchi method and ANOVA approach. The important geometrical parameters of volute are prioritized by applying first level of analytic hierarchy process. The analytic hierarchy process (AHP) is a structured technique for organizing and analyzing complex decisions, based on mathematics and psychology. Based on review of literatures, three levels are defined for each geometrical parameter. Reduction in the percentage variation of static pressure at impeller outlet, minimization of losses inside volute and maximization of stagnation pressure at volute outlet are selected as quality characteristics to ensure the enhancement of centrifugal blower performance. In this process, numerical simulation of 3-D flow in single stage centrifugal blower volute is carried out by FLUENT software for matrix experiments. These matrix experiments are suggested by Minitab software. The simulation case is carried out by flow, turbulence and Energy equations using SIMPLE pressure-velocity coupling. Standard discretisation method is used to solve pressure whereas; others are solved by second order upwind discretisation method. The realizable k-epsilon is adapted as turbulence model. Stator-rotor interactions are defined by means of mixing plane model of multiple rotating reference frames. Impeller is situated in rotating reference frame whereas; volute is in fixed reference frame. The process reveals that optimization of the original geometry of blower, at 1.5 times width of impeller, 24 degrees tongue angle and 10% reduction in volute outer radial locations, pressure head and flow uniformity increases compared to other cases; this improvement takes place due to reduction in the non-uniformity of flow at impeller outlet and losses inside the volute passages. The experimental performance of optimized configuration is carried out and compared with existing centrifugal blower. The result indicates better performance in case of optimized volute than original configuration of volute. In case of optimized centrifugal blower, 7.4% higher efficiency is observed at the design rated speed compared to existing centrifugal blower. (C) 2015 Elsevier Ltd. All rights reserved.
机译:通过使用Taguchi方法和ANOVA方法对风机蜗壳进行优化处理,可以提高离心风机的性能。蜗壳的重要几何参数通过应用第一层次的层次分析法确定优先级。层次分析法(AHP)是一种基于数学和心理学的结构化技术,用于组织和分析复杂的决策。根据文献回顾,为每个几何参数定义了三个级别。选择降低叶轮出口静压百分比变化,最小化蜗壳内部损失和最大化蜗壳出口处的停滞压力作为质量特性,以确保提高离心鼓风机的性能。在此过程中,使用FLUENT软件对单级离心鼓风机蜗壳中的3-D流动进行了数值模拟,以进行基质实验。这些矩阵实验由Minitab软件提出。使用SIMPLE压力-速度耦合通过流量,湍流和能量方程式进行仿真。标准离散方法用于解决压力,而其他则通过二阶迎风离散化方法解决。可实现的k-ε被用作湍流模型。通过多个旋转参考系的混合平面模型定义定子-转子的相互作用。叶轮位于旋转参考系中,而;蜗壳位于固定参考系中。该过程表明,与其他情况相比,鼓风机原始几何形状的优化(叶轮宽度为1.5倍,舌角为24度,蜗壳外径向位置减小了10%,压头和流量均匀性提高了);由于减少了叶轮出口处的流动不均匀性以及蜗壳通道内部的损失,因此实现了这种改进。进行了优化配置的实验性能,并与现有的离心鼓风机进行了比较。结果表明,在优化蜗壳的情况下,其性能要优于原始蜗壳的配置。在使用优化的离心鼓风机的情况下,与现有的离心鼓风机相比,在设计额定转速下效率可提高7.4%。 (C)2015 Elsevier Ltd.保留所有权利。

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