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FILM COOLING CALCULATIONS WITH AN ITERATIVE CONJUGATE HEAT TRANSFER APPROACH USING EMPIRICAL HEAT TRANSFER COEFFICIENT CORRECTIONS

机译:使用经验传热系数校正的迭代共轭传热方法膜冷却计算

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An iterative conjugate heat transfer technique has been developed to predict the temperatures on film cooled surfaces such as flat plates and turbine blades. Conventional approaches using a constant wall temperature to calculate heat transfer coefficient and applying it to solid as a boundary condition can result in errors around 14% in uncooled blade temperatures. This indicates a need for conjugate heat transfer calculation techniques. However, full conjugate calculations also suffer from inability to correctly predict heat transfer coefficients in the near field of film cooling holes and require high computational cost making them impractical for component design in industrial applications. Iterative conjugate heat transfer (ICHT) analysis is a compromise between these two techniques where the external flow convection and internal blade conduction are loosely coupled. The solution obtained from solving one domain is used as boundary condition for the other. This process is iterated until convergence. Flow and heat transfer over a film cooled blade is not solved directly and instead convective heat transfer coefficients resulting from external convection on a similar blade without film cooling and under the same flow conditions are corrected by use of experimental data to incorporate the effect of film cooling in the heat transfer coefficients. The effect of conjugate heat transfer is taken into account by using this iterative technique. Unlike full conjugate heat transfer (CHT) the ICHT analysis doesn't require solving a large number of linear algebraic equations at once. It uses two separate meshes for external convection and blade conduction and thus problem can be solved in lesser time using less computational resources. A demonstration of this technique using a commercial CFD solver FLUENT is presented for simulations of film cooling on flat plates. Results are presented in form of film cooling heat transfer coefficients and surface temperature distribution which are compared with results obtained from conventional approach. For uncooled surfaces, the deviations were as high as 3.5% between conjugate and conventional technique results for the wall temperature. For film cooling simulations on a flat plate using the ICHT approach showed deviations up to 10% in surface temperature compared to constant wall temperature technique for a high temperature difference case and 3% for a low temperature difference case, since surface temperature is not constant over the surface when conjugate heat transfer is considered. Results show that conjugate heat transfer effect is significant for film cooling flows involving high temperature differences for the current blade materials and application of film cooling correction obtained from experimental data is very useful in obtaining realistic blade temperatures.
机译:已经开发了一种迭代共轭传热技术来预测薄膜冷却表面的温度,例如扁平板和涡轮机叶片。使用恒定壁温度计算传热系数并将其施加到固体的常规方法可以导致在未冷却的叶片温度下约为14%的误差。这表明需要共轭传热计算技术。然而,完全缀合格计算也遭受无法正确预测膜冷却孔的近场中的传热系数,并且需要高计算成本,使它们在工业应用中的组件设计不切实际。迭代缀合物传热(ICHT)分析是这两种技术之间的折衷,其中外流对流和内叶片传导松散地耦合。从溶解一个结构域获得的溶液用作另一个区域的边界条件。此过程迭代直到收敛。在薄膜冷却刀片上的流动和传热不会直接求解,而是由于没有薄膜冷却的类似刀片上的外部对流而导致的对流传热系数,并且在相同的流动条件下通过使用实验数据来掺入薄膜冷却的效果。在传热系数中。通过使用这种迭代技术考虑共轭热传递的影响。与完全共轭传热(CHT)不同,ICHT分析不需要立即求解大量线性代数方程。它使用两个单独的网格进行外部对流和刀片传导,因此使用较少的计算资源可以在较小的时间内解决问题。介绍了使用商业CFD求解器流畅的这种技术的演示,用于平板上的薄膜冷却模拟。结果以薄膜冷却传热系数和表面温度分布形式提出,与常规方法获得的结果进行比较。对于未冷却表面,偶联和常规技术在壁温的结果之间的偏差高达3.5%。对于使用ICHT方法的平板上的薄膜冷却模拟,与恒定壁温度技术相比,使用ICHT方法显示高达10%的偏差,对于高温差异,对于低温差异,3%,因此表面温度并不恒定考虑共轭热传递时的表面。结果表明,缀合物传热效果对于涉及电流叶片材料的高温差异的薄膜冷却流程具有重要效果,并且从实验数据获得的薄膜冷却校正在获得现实叶片温度方面非常有用。

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