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STEADY CONJUGATE HEAT TRANSFER METHOD FOR HIGH TEMPERATURE GRADIENT IN TURBOMACHINERY APPLICATIONS

机译:涡轮机中高温梯度的稳态共轭传热方法

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The high-pressure (HP) turbine and compressor blades are subjected to severe aero-thermal loads either caused by high inlet temperature resulting from the combustion chamber or by the shock wave at the blade surface. In this paper, a partitioned conjugate heat transfer (CHT) approach is used to assess 3D cases with high temperature gradient. On one hand, the high temperature resulting from the combustion chamber generates high azimuthal and radial non uniformities on the nozzle guide vane (NGV), known as hot streak. Since the engine efficiency is directly related to the turbine inlet temperature, manufacturers are seeking to improve thermal barrier coatings (TBC) to allow higher temperature. On the other hand, compressor rotor blades are also subjected to high thermal loads caused by the shock waves. Since the shock wave substantially contributes to the heat transfer, an accurate prediction of the wall temperature is thus required in order to properly estimate the rotor efficiency. However, the thermal load gradient caused by the hot streak, the use of thermal barrier coating or the shock wave have an impact on the overall computation stability. This paper assess the stability for a Dirichlet-Robin interface condition. Indeed an optimal relaxation parameter value is given for the Robin condition to provide a stable CHT computation. The impact on stability of the transient coupling time-step, the coupling frequency and the thermal conductivity is also assessed and the new transient coupling time-step defined allows to correctly stabilize the coupled simulation.
机译:高压(HP)涡轮和压缩机叶片承受着严重的空气热负荷,这可能是由于燃烧室产生的高入口温度或叶片表面的冲击波引起的。在本文中,采用分区共轭传热(CHT)方法评估具有高温梯度的3D情况。一方面,燃烧室产生的高温会在喷嘴导叶(NGV)上产生很高的方位角和径向不均匀性,称为热条纹。由于发动机效率与涡轮机进口温度直接相关,因此制造商正在寻求改进隔热涂层(TBC)以允许更高的温度。另一方面,压缩机转子叶片也承受由冲击波引起的高热负荷。由于冲击波基本上有助于热传递,因此需要准确预测壁温,以便正确估算转子效率。但是,由热条纹,热障涂层的使用或冲击波引起的热负荷梯度会影响整体计算的稳定性。本文评估Dirichlet-Robin界面条件的稳定性。实际上,针对罗宾条件给出了最佳的松弛参数值,以提供稳定的CHT计算。还评估了对瞬态耦合时间步长,耦合频率和热导率的稳定性的影响,定义的新瞬态耦合时间步长可以正确稳定耦合仿真。

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