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OPTIMIZATION OF A TWO-STAGE TRANSONIC AXIAL FAN TO ENHANCE AERODYNAMIC STABILITY

机译:优化两级跨轴流风机以增强气动稳定性

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In this paper, a multi-objective optimization of a transonic axial fan to enhance aerodynamic stability has been conducted using three-dimensional Reynolds-Averaged Navier-Stokes equations, surrogate modeling and multi-objective genetic algorithm (MOGA). Hub radius and first rotor chord length of the axial fan were chosen as design variables for the optimization. Peak adiabatic efficiency of the axial fan and stall margin at 60% of the designed rotational speed, were used as objective functions. Latin Hypercube Sampling (LHS) method was used to select design points in the design space. The objective functions were formulated using the response surface approximation (RSA) model. Three LHS samples with different distributions of twelve design points were tested to study their effects on prediction accuracy of the RSA model and optimization results. MOGA with the RSA models based on the best LHS sample, was used to obtain the Pareto-optimal front. As a result of optimization, an improvement of 17.2% in the stall margin at 60% of the designed rotational speed and 2.96% in peak adiabatic efficiency were obtained compared to the reference design. It was also found that distribution of the design points generated by LHS affects the effectiveness of the surrogate-based optimization.
机译:在本文中,使用三维雷诺平均Navier-Stokes方程,替代模型和多目标遗传算法(MOGA)对跨音速轴流风扇进行了多目标优化,以提高空气动力学稳定性。选择轴流风机的轮毂半径和第一转子弦长作为优化设计变量。将轴流风扇的绝热效率峰值和失速裕度(设计转速的60%)用作目标函数。使用拉丁超立方体采样(LHS)方法在设计空间中选择设计点。目标函数是使用响应表面近似(RSA)模型制定的。测试了三个具有十二个设计点不同分布的LHS样本,以研究它们对RSA模型的预测准确性和优化结果的影响。使用基于最佳LHS样本的RSA模型的MOGA来获得帕累托最优前沿。优化的结果是,与参考设计相比,在设计转速的60%时失速裕度提高了17.2%,在绝热效率方面达到了2.96%的提高。还发现由LHS生成的设计点的分布会影响基于代理的优化的有效性。

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