Reliability based multidisciplinary design optimization of cooling turbine blade considering uncertainty data statistics

被引:1
作者
Lei Li
Huan Wan
Wenjing Gao
Fujuan Tong
Honglin Li
机构
[1] Northwestern Polytechnincal University,Department of Engineering Mechanics
来源
Structural and Multidisciplinary Optimization | 2019年 / 59卷
关键词
Cooling turbine blade; Reliability based multidisciplinary design optimization; Kriging surrogate model; Uncertainty data statistics;
D O I
暂无
中图分类号
学科分类号
摘要
Considering the coupling among aerodynamic, heat transfer and strength, a reliability based multidisciplinary design optimization method for cooling turbine blade is introduced. Multidisciplinary analysis of cooling turbine blade is carried out by sequential conjugated heat transfer analysis and strength analysis with temperature and pressure interpolation. Uncertainty data including the blade wall, rib thickness, elasticity Modulus and rotation speed is collected. Data statistics display the probability models of uncertainty data follow three-parameter Weibull distribution. The thickness of blade wall, thickness and height of ribs are chosen as design variables. Kriging surrogate model is introduced to reduce time-consuming multidisciplinary reliability analysis in RBMDO loop. The reliability based multidisciplinary design optimization of a cooling turbine blade is carried out. Optimization results shows that the RBMDO method proposed in this work improves the performance of cooling turbine blade availably.
引用
收藏
页码:659 / 673
页数:14
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