在有限体积溶解器中实现高阶空间离散:应用到轮机械测试案例,使用旋转粘度流闭合
Nicola Rosafio1, Simone Salvadori1, Daniela Anna Misul1
1Dipartimento Energia, Politecnico di Torino, Corso Duca degli Abruzzi 24, Torino, 10129, TO, Italy.
Heliyon
|December 16, 2024
概括
高级空间分离改进了使用有限体积方法提高轮机械空气动力学预测. 这种先进的技术提高了使用更少元素的精度,特别是在复杂的流量模拟中.
科学领域:
- 计算流体动力学 (CFD) 是一种计算流体动力学.
- 航空动力学工程 航空动力学
- 轮机设计设计 轮机设计
背景情况:
- 有限体积溶解器对于流体动力学模拟至关重要.
- 高阶方法比传统的低阶方案提供了潜在的准确性改进.
- 准确预测空气动力学和热传递对于轮机的效率至关重要.
研究的目的:
- 在有限体积解析器中实现和验证一个高阶空间分离化方法.
- 为了评估这种方法在轮机测试案例上的性能.
- 分析高阶重建对空气动力学和热传输预测的影响.
主要方法:
- 利用以细胞为中心的最小平方重建来实现高阶数值离散.
- 在公司内部的有限体积解析器HybFlow中实现了该方法.
- 在流式平板上验证了溶解器,随后在2D和3D轮机械测试案例上进行验证.
主要成果:
- 高级重建显著改善了使用较少元素的轮机械中的空气动力学预测.
- 对于高雷诺兹数的热传输预测的好处主要在于减少未解决区域的尖峰.
- 该方法在3D低压轮级联流中成功验证了该方法,并具有现实的输入条件.
结论:
- 实施的高阶空间离散方法增强了轮机械有限体积解决器的预测能力.
- 该研究展示了高阶方法在空气动力学和热传递分析中的权衡和优势.
- 这种方法为更高效,更准确的轮机模拟提供了途径.
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