首页> 外文会议>AIAA aerospace sciences meeting including the new horizons forum and aerospace exposition >Design Optimization Methods for Improving HPT Vane Pressure Side Cooling Properties Using Genetic Algorithms and Efficient CFD
【24h】

Design Optimization Methods for Improving HPT Vane Pressure Side Cooling Properties Using Genetic Algorithms and Efficient CFD

机译:使用遗传算法提高HPT叶片压力侧冷却性能的设计优化方法和高效CFD

获取原文

摘要

Typical modern-day high pressure turbine (HPT) durability design methods in industry utilize dated correlations and spreadsheet methods based on "rules of thumb". Of the over 2,700 film cooling references in existence, no known efforts have been made towards an optimized overall film cooling design for a realistic HPT vane geometry in proper flow conditions. Nor has there been a major attempt in open literature to improve component cooling design methods in general. This work invests greater effort in the design and optimization of a HPT vane film cooling array by way of considering numerous configurations, variables, and variable value ranges within the design space. Cooling hole surface location, size, injection orientation, and row patterns are varied in the design space. Optimization occurs by way of Latin hypercube sampling (LHS) and multi-objective genetic algorithms (GAs) to maximize the cooling effectiveness and minimize area-averaged heat transfer over the pressure surface (PS) of a baseline nozzle guide vane currently being tested experimentally within a full-scale blowdown facility. Full-map PS heat transfer predictions from 3-D computational fluid dynamics (CFD) simulations that efficiently approximate the cooling hole physics are used with prescribed fitness functions to arrive at a much improved PS cooling array design. 1,300 cooling designs were evaluated within design-space exploration that allows an extremely high number (0.32 × 10~(552)) of cooling array possibilities.
机译:典型的现代高压涡轮机(HPT)行业耐用性设计方法利用了基于“拇指规则”的日期相关和电子表格方法。在出现超过2,700件薄膜冷却参考文献中,在适当的流动条件下,没有针对优化的整体薄膜冷却设计进行了优化的整体薄膜冷却设计。在公开文学中也没有重大尝试,以改善组件冷却设计方法。通过考虑设计空间内的多种配置,变量和可变值范围,这项工作在设计和优化的设计和优化方面投入了更大的努力。在设计空间中,冷却孔表面定位,尺寸,注射方向和行图案变化。优化通过拉丁超立体采样(LHS)和多目标遗传算法(气体)进行,以最大化冷却效果,并最大限度地减少当前在实验测试的基线喷嘴导向叶片的压力表面(PS)上的区域平均传热全尺寸排污设施。从3-D计算流体动力学(CFD)模拟的全映射PS传热预测有效地近似冷却孔物理学的仿真与规定的健身功能用于到达大大改进的PS冷却阵列设计。在设计空间探索范围内评估了1,300个冷却设计,允许极高的电流(0.32×10〜(552))的冷却阵列可能性。

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