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The importance of force terms modeling within the streamline curvature through-flow method

机译:流线曲率直通法中力项建模的重要性

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Gas turbine engine performance simulation goes hand in hand with gas turbine engine development, as well as with operational improvement aspects of existing engines. The increasing availability of computational power at an affordable cost is the main drive behind the investment in the development of computer-based, gas turbine engine performance simulation techniques. The current paper refers to through-flow methods. The study is particularly focused on the force terms appearing in the inviscid set of flow equations as a means of balancing explicitly modeled effects. The influence of each force term on the solution stability and accuracy is addressed, as well as the way such terms can be optimally included in the equations causing the least possible numerical discrepancies. The flow simulation tool used for the current study was "SOCRATES," a through-flow simulation code based on the streamline curvature method. A two-stage axial flow fan was the basis for this study, the findings though stand generally for turbomachinery flow simulation using the streamline curvature method. The main drive behind the current study was the fact that the increasing complexity of the radial equilibrium equation is reflected on the convergence behavior of the flow model and thus on the robustness and computational power consumption of the underlying simulation tool. The paper is structured in two main sections. The first one covers the theoretical background and the description of the simulation tool. The second section presents flow simulation results compared against experimental data. The paper is concluded by summarizing the main findings of this study.
机译:燃气涡轮发动机性能模拟与燃气涡轮发动机的开发以及现有发动机的运行改进方面息息相关。以负担得起的成本增加计算能力的可用性是投资开发基于计算机的燃气涡轮发动机性能模拟技术的主要动力。当前的论文涉及通流方法。该研究特别关注于不流动的流动方程组中出现的力项,以平衡明确建模的效果。解决了每个力项对解决方案稳定性和精度的影响,以及可以将这些项最佳地包含在等式中的方式,从而使数值误差最小。当前研究中使用的流动模拟工具是“ SOCRATES”,它是基于流线曲率方法的贯穿流动模拟代码。两阶段轴流风机是该研究的基础,尽管该发现通常代表使用流线曲率法进行涡轮机械流动模拟。当前研究背后的主要动力是这样一个事实,即径向平衡方程的日益复杂性反映在流动模型的收敛行为上,从而反映在基础仿真工具的鲁棒性和计算功耗上。本文分为两个主要部分。第一部分介绍了仿真工具的理论背景和描述。第二部分介绍了与实验数据相比的流动模拟结果。通过总结本研究的主要结论,得出本文的结论。

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