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Abstract
A three-stage axial turbine was redesigned by jointly applying S2 flow surface direct problem calculation methods and multistage local optimization methods. A genetic algorithm and artificial neural network were jointly adopted during optimization. A three-dimensional viscosity Navier–Stokes equation solver was applied for flow computation. H-O-H-topology grid was adopted as computation grid, that is, an H-topology grid was adopted for inlet and outlet segment, whereas an O-topology grid was adopted for stator zone and rotor zone. Through the optimization design, the total efficiency increases 1.1%, thus indicating that the total performance is improved and the design objective is achieved.
Keywords
turbine, optimization design, S2 flow surface direct problem calculation, genetic algorithm, artificial neural network
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Aerodynamic design by jointly applying S2 flow
surface calculation and modern optimization methods on multistage
axial turbine.
Front. Energy, 2008, 2(1): 93-98 DOI:10.1007/s11708-008-0007-4