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An optimal volute spiral case design for centrifugal fan: theoretical and experimental studies

机译:离心风机的最佳蜗壳蜗壳设计:理论和实验研究

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An inverse design problem in determining the optimal shape of volute spiral case for a centrifugal-flow fan is examined in the present study using the Levenberg-Marquardt method and a general purpose commercial code CFD-ACE+, and based on a desired airflow rate. The desired volume airflow rate can be obtained by multiplying the airflow rate of an existing fan by a constant number which is > 1. The shape of the redesigned volute case is generated using the equation of the trajectory of fluid particles in the volute, which enables the shape of the fan volute be constructed completely. Finally, prototypes of the original and optimized fan volutes as well as fan impellers are fabricated, thereafter the fan performance is tested based on the AMCA-210-85 standard to verify the validity of the design. The experimental results demonstrate that by utilizing the fabricated centrifugal optimal fan and operating at the design condition, the airflow rate can be increased by 6.5 % and the pressure drop, noise and input power of fan can be reduced by 1.6, 5.3 and 11.4 %, respectively, when compared with the original fan. As a result, the performance of optimal fan can be improved greatly.
机译:在本研究中,使用Levenberg-Marquardt方法和通用商业代码CFD-ACE +,并基于所需的气流速率,确定了确定离心流风扇的蜗壳螺旋壳体的最佳形状的逆设计问题。可以通过将现有风扇的空气流量乘以> 1的常数来获得所需的空气流量。重新设计的蜗壳的形状是使用蜗壳中的流体颗粒轨迹方程生成的,从而实现了风扇蜗壳的形状应完全构建。最后,制造出原始和优化的风扇蜗壳以及风扇叶轮的原型,然后根据AMCA-210-85标准测试风扇性能,以验证设计的有效性。实验结果表明,利用所制造的离心式最佳风扇并在设计条件下运行,可使风量增加6.5%,并降低风扇的压降,噪声和输入功率,分别为1.6%,5.3%和11.4%,与原始风扇相比。结果,可以极大地改善最佳风扇的性能。

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