首页> 外文会议>International Conference on Mechanical and Manufacturing Engineering >Geometric Modeling of a Propeller Turbine Runner using ANSYS BladeGen, Meshing using ANSYS TurboGrid and Fluid Dynamic Simulation using ANSYS Fluent
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Geometric Modeling of a Propeller Turbine Runner using ANSYS BladeGen, Meshing using ANSYS TurboGrid and Fluid Dynamic Simulation using ANSYS Fluent

机译:使用ANSYS BLADEGEN的螺旋桨涡轮赛道的几何建模,使用ANSYS TURBOGRID和流体动态模拟使用ANSYS FLUENT的啮合

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This paper aims to demonstrate how to model, mesh and simulate a hydraulic propeller turbine runner based on the geometrical specification of the runner blade. Modeling process is divided into preparation and implementation phase. Preparation phase illustrates how to develop stream surfaces and passages, how to create and transform meanline and how to create an rtzt file. The profile in rtzt file has a certain fix thickness which has to be altered later. Implementation phase describes operations necessary in creating a propeller runner model in ANSYS BladeGen which consist of importing rtzt file, modifying the trailing edge properties and altering profile thickness distribution to that of 4 digits NACA airfoil standard. Grid is generated in ANSYS TurboGrid utilizing ATM Optimized topology. CFD simulation is done using the ANSYS Fluent with pressure inlet and pressure outlet boundary conditions and k-ε turbulence model. Hydraulic efficiency of the runner is calculated utilizing Turbo Topology module in ANSYS Fluent. The authors will share the advantages that may be obtained by using ANSYS BladeGen compared with the use of general CAD Systems.
机译:本文旨在展示如何基于转轮叶片的几何规格来模拟,网格和模拟液压螺旋桨涡轮转换器。建模过程分为准备和实施阶段。准备阶段说明了如何开发流曲面和段落,如何创建和转换意味着意义和如何创建RTZT文件。 RTZT文件中的配置文件具有一定的固定厚度,该厚度必须稍后改变。实施阶段描述了在ANSYS BLADEGEN中创建螺旋桨转发器模型所需的操作,该模型包括导入RTZT文件,修改后缘属性,并将配置文件厚度分布改为4位Naca翼型标准。使用ATM优化拓扑的ANSYS TurboGrid生成网格。 CFD仿真是使用流量的压力入口和压力出口边界条件和K-ε湍流模型进行的。运行器的液压效率利用涡轮拓扑模块在ansys流畅的情况下计算。作者将共享通过使用Ansys Bladegen与使用一般CAD系统相比可以获得的优点。

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