首页> 外文会议>Asia-Pacific international symposium on aerospace technology >Design and Unsteady Numerical Simulation of Variable Geometry Inlet Using Dynamic Meshes
【24h】

Design and Unsteady Numerical Simulation of Variable Geometry Inlet Using Dynamic Meshes

机译:使用动态网格的变几何入口的设计和不稳定数值模拟

获取原文

摘要

The fixed geometric inlet only has better performance near the design Mach number, and it is difficult to meet the demand of the combined cycle engine. A multistage adjustable variable geometry inlet with rotating cowl and ramp is proposed. The numerical simulation of variable geometry inlet with rotating cowl and ramp is performed by solving Reynolds Averaged Navier-Stokes (RANS) equations with dynamic mesh technique. The cowl and ramp rotating angular velocity have been modified using a parametric user defined function (UDF) that covers the whole range of operating points. Two methods (Spring-based Smoothing and Local Re-meshing) have been used to achieve the mesh deformation and re-meshing. The general performance of rotating cowl and ramp are investigated, respectively. The variable geometry scheme for the hypersonic inlet under different flow conditions has been studied by two-dimensional numerical simulation. Results indicate that both the cowl and the ramp rotating with constant angular velocity can help to enhance the self-starting ability. The variable geometry inlet with rotating cowl and ramp has better performance in the entire operating range. Especially, it can effectively reduce the inlet start Mach number and the inlet can self-start at Ma2. The variable geometry inlet has better flow capture ability. The mass flow rate coefficient comes to 0.53 at Ma2. The multistage adjustable variable geometry inlet scheme effectively solves the contradiction between the start and flow capture capability at low Mach number. Moreover, the variable geometry scheme for hypersonic inlet is simple and feasible in engineering application.
机译:固定几何入口仅在设计马赫数附近具有更好的性能,并且难以满足组合循环发动机的需求。提出了一种具有旋转罩和斜坡的多级可调变形几何入口。通过用动态网格技术求解Reynolds平均Navier-Stokes(RANS)方程来执行可变几何入口与旋转罩和斜坡的数值模拟。使用涵盖整个操作点范围的参数化用户定义的功能(UDF)修改了COWL和斜坡旋转角速度。已经使用了两种方法(基于弹簧平滑和本地重新啮合)来实现网格变形和重新啮合。研究了旋转罩和斜坡的一般性能。通过二维数值模拟研究了不同流动条件下的超音速入口的变量几何方案。结果表明,具有恒定角速度旋转的罩和斜坡可以有助于提高自启动能力。具有旋转罩和斜坡的可变几何入口在整个工作范围内具有更好的性能。特别是,它可以有效地减小入口开始马赫数,并且入口可以在MA2处自动启动。变量几何入口具有更好的流动捕获能力。 MA2的质量流速系数达到0.53。多级可调变形几何入口方案有效解决了低马赫数的起始和流动捕获能力之间的矛盾。此外,在工程应用中,超音速入口的可变几何方案简单可行。

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