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Ice Accretion Simulation On Multi-element Airfoils Using Extended Messinger Model

机译:基于扩展梅辛格模型的多元素机翼积冰模拟

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摘要

In the current article, the problem of in-flight ice accumulation on multi-element airfoils is studied numerically. The analysis starts with flow field computation using the Hess-Smith panel method. The second step is the calculation of droplet trajectories and droplet collection efficiencies. In the next step, convective heat transfer coefficient distributions around the airfoil elements are calculated using the Integral Boundary-Layer Method. The formulation accounts for the surface roughness due to ice accretion. The fourth step consists of establishing the thermodynamic balance and computing ice accretion rates using the Extended Messinger Model. At low temperatures and low liquid water contents, rime ice occurs for which the ice shape is determined by a simple mass balance. At warmer temperatures and high liquid water contents, glaze ice forms for which the energy and mass conservation equations are combined to yield a single first order ordinary differential equation, solved numerically. Predicted ice shapes are compared with experimental shapes reported in the literature and good agreement is observed both for rime and glaze ice. Ice shapes and masses are also computed for realistic flight scenarios. The results indicate that the smaller elements in multielement configurations accumulate comparable and often greater amount of ice compared to larger elements. The results also indicate that the multilayer approach yields more accurate results compared to the one-layer approach, especially for glaze ice conditions.
机译:在本文中,数值研究了多元素机翼在飞行中的冰积聚问题。分析从使用Hess-Smith面板方法进行的流场计算开始。第二步是液滴轨迹和液滴收集效率的计算。下一步,使用积分边界层方法计算翼型元件周围的对流传热系数分布。该配方解决了因积冰导致的表面粗糙度。第四步包括建立热力学平衡并使用扩展梅辛格模型计算冰的积聚速率。在低温和低液态水含量下,会出现霜冰,其冰的形状由简单的质量平衡决定。在较高的温度和较高的液态水含量下,釉状冰形成,能量和质量守恒方程组合起来产生一个一阶常微分方程,将其数值求解。将预测的冰块形状与文献中报道的实验形状进行了比较,并且对于霜冰和釉冰都观察到了很好的一致性。还针对实际飞行场景计算了冰的形状和质量。结果表明,与较大的元素相比,多元素配置中的较小元素会积聚相当数量的冰,并且往往积冰量更大。结果还表明,与单层方法相比,多层方法可产生更准确的结果,尤其是在釉冰条件下。

著录项

  • 来源
    《Heat and mass transfer 》 |2009年第3期| 305-322| 共18页
  • 作者

    S. OEzgen; M. Canibek;

  • 作者单位
  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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