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Rapid Reconfiguration of Engines for Dynamics Simulation

机译:动力学模拟的发动机快速重新配置

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In modern complex engine design, it is a common challenge to keep simulation in step with changes to component geometry, environmental conditions, and mission data - and this applies to both actual designs and those that belong to the hypothetical design space as explored in design of experiments (DOE). In this paper, an effective simulation process and data management (SPDM) approach is presented that hinges on a focus on components, their generalized connections and programmatic templating. This simulation approach improves the fidelity of engine analysis, engineering productivity, quality, scalability across the gas turbine engine organization, and HPC utilization. In addition to this new analysis machinery, gas turbine engine modeling fidelity is elevated by surpassing commonly used one-dimensional (1D) models of rotors. It is demonstrated how rotating components of complex aero engines can be modeled using two-dimensional (2D) axisymmetric harmonic elements and three-dimensional (3D) solid/shell elements as well as how the resulting rotor models can be easily coupled with the engine casing model. Comparisons of the results obtained for these models with traditional and 1D modeling approaches highlight the advantages and limitations of each of these approaches.
机译:在现代复杂的发动机设计中,在步骤中保持模拟,在组件几何形状,环境条件和任务数据的变化中保持模拟是共同的挑战 - 这适用于实际设计和属于假设设计空间的实际设计,如设计所探索实验(DOE)。在本文中,提出了一种有效的仿真过程和数据管理(SPDM)方法,即铰链对组件,其广义连接和程序化模板。该仿真方法提高了发动机分析,工程生产力,质量,膨胀机组织的缩放性的保真度,以及HPC利用率。除了这款新分析机械外,燃气轮机发动机建模保真度通过超越常用的一维(1D)转子型号而升高。结果证明了复杂航空发动机的旋转部件可以使用二维(2D)轴对称谐波元件和三维(3D)固体/壳元件来建模,以及所得到的转子模型如何容易地与发动机壳体耦合模型。具有传统和1D建模方法的这些模型获得的结果的比较突出了这些方法中的每种方法的优缺点。

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