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Numerical Investigations on the Sealing Effectiveness of Turbine Honeycomb Radial Rim Seal

机译:涡轮蜂窝径向轮辋密封效果的数值研究

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摘要

This paper presented a numerical comparison of the sealing performance between conventional radial rim seal and new-designed honeycomb radial rim seal with three sealing flow rates. Three-dimensional unsteady Reynolds-averaged Navier-Stokes (URANS) equations, coupled with a fully developed shear stress transport (SST) turbulent model from ansys-cfx, were utilized to investigate the sealing effectiveness of rim seal and flow characteristics in the wheel-space of gas turbines. First, the numerical method for analysis the sealing performance of the rim seal was validated on the basis of published experimental data. Pressure distributions on the vane hub, sealing effectiveness distributions on the stator disk surface and swirl ratio distributions in the wheel-space of the experimental models were numerically computed and compared to the experimental data. The additional scalar variable was adopted in calculation to simulate the distribution of tracer gas concentration in experiment. The numerical results were in excellent agreement with experimental data. Then the sealing effectiveness of conventional and new-designed honeycomb radial rim seal are compared. The flow field in the wheel-space of the new-designed honeycomb and conventional turbine radial rim seal was illustrated and analyzed. Furthermore, three cases with different honeycomb cell depths were selected to investigate the influence of honeycomb cell depth on sealing performance of honeycomb radial rim seal. Compared with conventional radial rim seal, the honeycomb radial rim seal could improve the sealing effectiveness by 9-14% at the same sealing flow rate. The honeycomb cell depth has a pronounced effect on sealing performance of honeycomb radial rim seal. It shows that sealing effectiveness of the honeycomb radial rim seal increases with the increase of the honeycomb cell depth, as honeycomb cell depth increases from 1.6mm to 4.8mm, the sealing effectiveness is increased by about 8% at most. In addition, the flow pattern of the rim seal and wheel-space is provided to describe sealing flow characteristics.
机译:本文给出了传统径向轮辋密封件与新型设计的蜂窝状径向轮辋密封件在三种密封流量下的密封性能的数值比较。利用三维非稳态雷诺平均Navier-Stokes(URANS)方程,以及来自ansys-cfx的充分发展的切应力传递(SST)湍流模型,来研究轮辋密封的密封效果和流动特性。燃气轮机的空间。首先,基于公开的实验数据验证了用于分析轮辋密封件的密封性能的数值方法。数值计算了实验模型的叶片轮毂上的压力分布,定子盘表面上的密封效率分布和叶轮空间中的涡流比分布,并与实验数据进行了比较。计算中采用了附加的标量变量来模拟实验中示踪气体浓度的分布。数值结果与实验数据吻合良好。然后比较了传统和新型蜂窝径向轮辋密封的密封效果。阐述并分析了新型蜂窝和常规涡轮径向轮缘密封件的叶轮空间内的流场。此外,选择了三个蜂窝孔深度不同的情况,以研究蜂窝孔深度对蜂窝径向轮辋密封性能的影响。与传统的径向轮辋密封相比,在相同的密封流量下,蜂窝径向轮辋密封可以将密封效率提高9-14%。蜂窝孔深度对蜂窝状径向边缘密封的密封性能有显着影响。结果表明,随着蜂窝孔深度的增加,蜂窝状径向轮辋密封的密封效果也随之提高,随着蜂窝孔深度从1.6mm增加到4.8mm,密封效率最多提高8%。另外,提供了轮辋密封件和叶轮空间的流动模式以描述密封流动特性。

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  • 来源
    《Journal of Engineering for Gas Turbines and Power》 |2016年第10期|102601.1-102601.16|共16页
  • 作者单位

    Institute of Turbomachinery, Xi'an Jiaotong University, No. 28 Xianning West Road, Xi'an 710049, China Collaborative Innovation Center of Advanced Aero-Engine, Beijing 100191, China;

    Institute of Turbomachinery, Xi'an Jiaotong University, No. 28 Xianning West Road, Xi'an 710049, China Energy Saving Center, Xi'an Thermal Power Research Institute Company Limited, Xi'an 710032, China;

    Institute of Turbomachinery, Xi'an Jiaotong University, No. 28 Xianning West Road, Xi'an 710049, China;

    Institute of Turbomachinery, Xi'an Jiaotong University, No. 28 Xianning West Road, Xi'an 710049, China;

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