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Performance improvement of a transonic centrifugal compressor impeller with splitter blade by three-dimensional optimization

机译:三维优化用分离器叶片分配刀片式的跨音质离心式压缩机叶轮的性能改进

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This paper presents a procedure for three-dimensional optimization of a transonic centrifugal compressor impeller with splitter blades by integrating 3D blade parameterization method, a genetic algorithm (GA), an artificial neural network, and a CFD solver. Because computational fluid dynamics (CFD) is a time-consuming method, an artificial neural network is coupled with GA to evaluate the objective function. SRV2-O, a typical high-pressure ratio centrifugal impeller, is selected as the test case. A good understanding of flow characteristics in the passage of SRV2-O is obtained using 3D Reynolds Averaged Navier-Stokes solver. Twenty-eight design variables defining the impeller blade angle distribution are used to parametrize the blade geometry. Isentropic efficiency of the impeller is selected as the objective function while the total pressure ratio and mass flow rate are defined as constraints. The optimization results indicate that the performance of the optimum geometry is improved in comparison with the original impeller at both design and off-design conditions. The isentropic efficiency is increased by 0.97% at the design point, and total pressure ratio and mass flow rate are increased by 0.74%, 0.65%, respectively.
机译:本文通过集成3D叶片参数化方法,遗传算法(GA),人工神经网络和CFD求解器,提供了一种具有分离器叶片的跨音质离心压缩机叶轮三维优化的过程。因为计算流体动力学(CFD)是一种耗时的方法,所以人工神经网络与GA耦合以评估目标函数。选择SRV2-O,典型的高压比离心式叶轮,作为测试用例。使用3D Reynolds平均Navier-Stokes求解器获得了对SRV2-O通过的流动特性的良好理解。定义叶轮叶片角度分布的二十八个设计变量用于参数化刀片几何形状。选择叶轮的等熵效率作为目标函数,而总压力比和质量流量被定义为约束。优化结果表明,与设计和非设计条件的原始叶轮相比,改善了最佳几何形状的性能。设计点等熵效率增加了0.97%,总压力比和质量流量分别增加0.74%,0.65%。

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