首页> 外文会议>International Symposium on Fluid Machinery and Fluid Engineering >Comparative analysis of numerical methods for rotor blade unrunning design
【24h】

Comparative analysis of numerical methods for rotor blade unrunning design

机译:转子叶片不运转设计数值方法的比较分析

获取原文

摘要

In modern turbomachinery, accurate prediction of rotor blade shape for manufacture from its design shape is vital for performance, efficiency and aeroelastic stability. The manufacture “cold” blade shapes of a large-scale ratio transonic hollow fan and a NASA Rotor 67 fan were predicted from the design “hot” shapes utilised four kinds of numerical simulation methods, such as non-coupling, weak coupling, steady two-way coupling, and unsteady bidirectional coupling methods. The advantages and disadvantages of these methods were discussed by emphasizing on aerodynamic loading modes in the iterative procedure of blade unrunning design. The last numerical method employs a fluid-structure coupling scheme to determine blade deflections due to unsteady aerodynamic loads. The results show that there is a big difference between the “cold” blade shapes predicted using non-coupling method and the other three methods which conside aerodynamic coupling, this illustrates that the aerodynamic influence cannot be ignored. Comparison of the calculation “cold” shapes of the hollow swept and bowed fan with the conventional fan shows that improvements of the manufacture profile of the hollow fan blade can be made by including proper nonlinear aerodynamic effect on blade deflections in the numerical model. The results also illustrate that aerodynamic nonlinear effects should be included for a better blade unrunning design.
机译:在现代涡轮机械中,根据其设计形状准确预测要制造的转子叶片形状对于性能,效率和气动弹性稳定性至关重要。根据设计的“热”形状,利用非耦合,弱耦合,稳定两种四种数值模拟方法,预测了大型比例跨音速空心风扇和NASA Rotor 67风扇的制造“冷”叶片形状。双向耦合和非稳态双向耦合方法。通过在叶片不运转设计的迭代过程中着重于气动加载模式,讨论了这些方法的优缺点。最后一种数值方法采用流体-结构耦合方案来确定由于不稳定的空气动力学载荷而引起的叶片挠度。结果表明,使用非耦合方法预测的“冷”叶片形状与考虑空气动力学耦合的其他三种方法之间存在很大差异,这说明了对空气动力学的影响不可忽略。将中空扫掠和弓形风扇的计算“冷”形状与常规风扇进行比较表明,可以通过在数值模型中包括对叶片挠度的适当非线性气动效应来改善中空风扇叶片的制造轮廓。结果还表明,应包括空气动力学非线性效应,以实现更好的叶片不运转设计。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号