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Aerodynamic and aeroacoustic optimization for design of a forward-curved blades centrifugal fan

机译:空气动力学和空气声学优化设计,用于前弯曲叶片离心风机

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This paper presents a multidisciplinary optimization procedure for enhancing the aerodynamic and aeroacoustic performance of a forward-curved blade centrifugal fan for residential ventilation. Flow analysis in a forward-curved blade centrifugal fan was conducted by solving three-dimensional steady and unsteady Reynolds-averaged Navier-Stokes equations using the shear stress transport turbulence model. On the basis of the aerodynamic sources extracted from the unsteady flow, aeroacoustic analysis was implemented in a finite/infinite element method by solving the variational formulation of Lighthill's analogy. Experiments were performed to obtain aerodynamic and aeroacoustic measurements for validation of numerical results. The single- and multi-objective optimizations were performed sequentially. The single-objective optimization was carried out to improve the efficiency of the fan using a radial basis neural network surrogate model with four design variables defining the scroll cut-off angle, scroll diffuser expansion angle, diameter ratio of the impeller, and blade exit angle. Multi-objective optimization based on the single-objective optimization result was carried out to simultaneously improve the efficiency and reduce the sound pressure through a hybrid multi-objective evolutionary algorithm coupled with a response surface approximation surrogate model with two design variables defining the scroll cut-off radius and distance. These objective functions were accessed numerically through three-dimensional aerodynamic and aeroacoustic analyses at the design points sampled by Latin hypercube sampling in the design space. Arbitrary selected optimum designs in the Pareto-optimal solutions yielded significant increases in efficiency and decreases in the sound pressure level compared to the reference design.
机译:本文提出了一种多学科的优化程序,以增强用于住宅通风的前弯叶片离心式风扇的空气动力学和空气声学性能。通过使用切应力传递湍流模型求解三维稳态和非稳态雷诺平均Navier-Stokes方程,进行了前弯叶片式离心风机的流动分析。基于从非恒定流中提取的空气动力源,通过求解Lighthill类比的变式,以有限/无限元方法进行了空气声学分析。进行实验以获得空气动力学和空气声学测量结果以验证数值结果。依次执行单目标和多目标优化。使用径向基神经网络替代模型进行单目标优化以提高风扇效率,该模型具有四个设计变量,这些变量定义了涡旋截止角,涡旋扩压器膨胀角,叶轮直径比和叶片出口角。结合单目标优化结果进行多目标优化,同时通过混合多目标进化算法结合响应面近似替代模型(具有两个设计变量来定义滚动切割),提高效率并降低声压。偏离半径和距离。通过在设计空间中通过拉丁超立方体采样所采样的设计点上的三维空气动力学和空气声学分析,以数字方式访问了这些目标函数。与参考设计相比,帕累托最优解决方案中的任意选择的最佳设计可显着提高效率,并降低声压级。

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