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首页> 外文期刊>Applied thermal engineering: Design, processes, equipment, economics >Numerical method for the thermal analysis of a ceramic matrix composite turbine vane considering the spatial variation of the anisotropic thermal conductivity
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Numerical method for the thermal analysis of a ceramic matrix composite turbine vane considering the spatial variation of the anisotropic thermal conductivity

机译:考虑各向异性导热率的空间变化的陶瓷矩阵复合涡轮叶片热分析的数值方法

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HighlightsThermal analysis of CMC turbine vane with anisotropic thermal conductivity was investigated.Variations of ATC’s spatial distribution due to vane’s curved surface were accounted for.Three cases with different properties of thermal conductivities were simulated and compared in detail.Experiments on CMC turbine vane’s cooling efficiency were carried out to validate the present numerical method.AbstractA numerical method for the thermal analysis of Ceramic Matrix Composite (CMC) turbine vane was developed considering the Anisotropic Thermal Conductivity (ATC) and its spatial variation due to the vane’s curved surface. A turbine vane with a cooling configuration was used as an example of the simulations; 3 different cases (Isotropic Thermal Conductivity (ITC), constant ATC, and ATC with spatial variation) were examined using the Finite Element Method (FEM). The effects of the thermal conductivity and its variation on the temperature distribution of the CMC turbine vane were also discussed. The results showed that the ATC changed the heat transfer rates in different directions inside the turbine vane, leading to a non-uniform temperature distribution. The ATC’s spatial variation due to the vane’s curved surface led to additional changes in the temperature distribution, especially the location of the maximum temperature and the high-temperature region. With increasing the anisotropy level, a more significant difference between the temperature fields could be observed, regardless of whether the spatial variation of the ATC was considered. The largest difference between the maximum temperatures was found to be around 107.7K, when the ratio of the thermal conductivities in different directions was 20. The work indicates that the ATC’s spatial variation should be considered in the thermal analysis of a composite hot component with a complex curved surface (such as a nozzle vane or turbine blade). The present numerical method developed for the thermal analysis, which considers the ATC’s spatial variation, is of reasonable applicability and accuracy.]]>
机译:<![cdata [ 亮点 研究了具有各向异性导热率的CMC涡轮叶片的热分析。 ATC空间分配所在的变化符合符号的曲面。 具有不同性能的三种情况,并详细比较。 对CMC涡轮叶片的实验进行了冷却效率,以验证当前的数值方法。 抽象 陶瓷矩阵复合物(CMC)汽轮机叶片热分析的数值方法考虑到叶片弯曲表面引起的各向异性导热率(ATC)和其空间变化是开发的。使用具有冷却构型的涡轮叶片作为模拟的示例; 3使用有限元方法(FEM)检查3种不同的情况(各向同性导热率(ITC),恒定ATC和ATC,具有空间变化)。还讨论了导热率及其对CMC涡轮机叶片温度分布的变化。结果表明,ATC在涡轮叶片内部的不同方向改变了传热速率,导致不均匀的温度分布。由于叶片的弯曲表面引起的ATC的空间变化导致温度分布的额外变化,尤其是最大温度和高温区域的位置。随着各向异性水平的增加,无论是否考虑了ATC的空间变化,都可以观察到温度场之间更显着的差异。当不同方向的导热率的比例为20时,发现最大温度之间的最大差异为约107.7k。工作表明,应考虑ATC的空间变化在复合热部件的热分析中复杂的弯曲表面(例如喷嘴叶片或涡轮叶片)。为热分析开发的现有数值方法,其考虑ATC的空间变化,具有合理的适用性和准确性。 ]]>

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