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熵判别粒子群优化算法在发动机模型修正中的应用

王永华 杨欣毅 苏珉 李冬 王星博

王永华, 杨欣毅, 苏珉, 李冬, 王星博. 熵判别粒子群优化算法在发动机模型修正中的应用[J]. 航空动力学报, 2013, 28(1): 74-81.
引用本文: 王永华, 杨欣毅, 苏珉, 李冬, 王星博. 熵判别粒子群优化算法在发动机模型修正中的应用[J]. 航空动力学报, 2013, 28(1): 74-81.
WANG Yong-hua, YANG Xin-yi, SU Min, LI Dong, WANG Xing-bo. Engine model correction based on entropy criterion PSO[J]. Journal of Aerospace Power, 2013, 28(1): 74-81.
Citation: WANG Yong-hua, YANG Xin-yi, SU Min, LI Dong, WANG Xing-bo. Engine model correction based on entropy criterion PSO[J]. Journal of Aerospace Power, 2013, 28(1): 74-81.

熵判别粒子群优化算法在发动机模型修正中的应用

基金项目: 国家自然科学基金(61102167); 航空科学基金(20095584006)

Engine model correction based on entropy criterion PSO

  • 摘要: 因生产、安装工艺差别导致单台发动机部件特性的差异,使得模型计算结果与单台发动机的性能差异较大,提出了一种基于熵判别粒子群优化算法.通过判别粒子群的熵值,调整种群的多样性,对适应度差的粒子进行迁移,克服了易陷入局部极小点的缺陷.从仿真结果可知:基于熵判别粒子群优化算法的修正效果显然优于影响系数矩阵的修正方法.经验证,模型修正后的低压涡轮出口温度等8个目标性能参数的误差在1%以内,达到较好的修正效果,使单台发动机模型能够与真实发动机进行匹配.

     

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出版历程
  • 收稿日期:  2011-12-12
  • 刊出日期:  2013-01-28

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