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Unstructured CFD and Noise Prediction Methods for Propulsion Airframe Aeroacoustics

机译:推进器航空声学的非结构化CFD和噪声预测方法

摘要

Using unstructured mesh CFD methods for Propulsion Airframe Aeroacoustics (PAA) analysis has the distinct advantage of precise and fast computational mesh generation for complex propulsion and airframe integration arrangements that include engine inlet, exhaust nozzles, pylon, wing, flaps, and flap deployment mechanical parts. However, accurate solution values of shear layer velocity, temperature and turbulence are extremely important for evaluating the usually small noise differentials of potential applications to commercial transport aircraft propulsion integration. This paper describes a set of calibration computations for an isolated separate flow bypass ratio five engine nozzle model and the same nozzle system with a pylon. These configurations have measured data along with prior CFD solutions and noise predictions using a proven structured mesh method, which can be used for comparison to the unstructured mesh solutions obtained in this investigation. This numerical investigation utilized the TetrUSS system that includes a Navier-Stokes solver, the associated unstructured mesh generation tools, post-processing utilities, plus some recently added enhancements to the system. New features necessary for this study include the addition of two equation turbulence models to the USM3D code, an h-refinement utility to enhance mesh density in the shear mixing region, and a flow adaptive mesh redistribution method. In addition, a computational procedure was developed to optimize both solution accuracy and mesh economy. Noise predictions were completed using an unstructured mesh version of the JeT3D code.
机译:使用非结构网格CFD方法进行推进飞机航空声学(PAA)分析具有明显的优势,即可以为复杂的推进和机身集成布置(包括发动机进气口,排气喷嘴,吊架,机翼,襟翼和襟翼展开机械零件)精确而快速地计算网格生成。然而,剪切层速度,温度和湍流的精确解值对于评估通常应用于商业运输飞机推进系统集成的潜在噪声差异非常重要。本文介绍了一套隔离计算的独立的流量旁通比为5的发动机喷嘴模型和带有塔架的相同喷嘴系统的一组校准计算。这些配置使用经过验证的结构化网格方法将测量数据与先前的CFD解决方案和噪声预测一起使用,可用于与本研究中获得的非结构化网格解决方案进行比较。这项数值研究利用了TetrUSS系统,该系统包括Navier-Stokes求解器,相关的非结构化网格生成工具,后处理实用程序以及最近在系统中添加的一些增强功能。这项研究所需的新功能包括在USM3D代码中添加两个方程式湍流模型,用于增强剪切混合区域中网格密度的h细化实用程序以及一种流量自适应网格重新分配方法。另外,开发了一种计算程序来优化求解精度和网格经济性。噪声预测是使用JeT3D代码的非结构化网格版本完成的。

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