the combinatorial optimization strategy including Latin square design of experiment
three-order response surface approximated model and Hooke-Jeeves optimization method
aerodynamic optimization design of exhaust hood diffuser for steam turbine is established based on the software iSight. Aerodynamic optimization design of exhaust hood is conducted for the maximum of the static pressure recovery coefficient of exhaust hood. The design variables are specified by the exhaust diffuser profile parameterization method. The aerodynamic performance of the optimized exhaust hood and referenced design is numerically calibrated with consideration of the full last stage and rotor tip clearance. The validation of the presented optimization design system of the exhaust hood is demonstrated. The optimization design results show that the static pressure recovery coefficient of the optimized exhaust hood is higher by 61.1% than that of the referenced design with consideration of the upstream last stage influence. The static pressure loss coefficient of the optimized exhaust hood decreases significantly by comparison with the referenced design. The availability of the developed aerodynamic optimization design of the exhaust hood diffuser and necessity of the coupled with the last stage on the aerodynamic performance of the exhaust hood were also validated.
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references
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