首页> 外文会议>ASME turbo expo: turbine technical conference and exposition >EXPERIMENTAL INVESTIGATION ON THE INFLUENCE OF GEOMETRICAL PARAMETERS ON THE FRICTIONAL HEAT INPUT AND LEAKAGE PERFORMANCE OF BRUSH SEALS
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EXPERIMENTAL INVESTIGATION ON THE INFLUENCE OF GEOMETRICAL PARAMETERS ON THE FRICTIONAL HEAT INPUT AND LEAKAGE PERFORMANCE OF BRUSH SEALS

机译:几何参数对摩擦热输入和刷子密封件渗漏性能影响的实验研究

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Because of the superior sealing characteristics compared to labyrinth seals, brush seals found an increased spread in tur-bomachinery in recent years. Their outstanding sealing performance results mainly from their flexibility. Thus, a very small gap between the rotor and bristle package can be obtained without running the risk of severe detrimental deterioration in case of rubbing. Rubbing between rotor and seal during operation might occur as a result of e.g. an unequal thermal expansion of the rotor and stator or a rotor elongation due to centrifugal forces or manoeuvre forces. Thanks to the flexible structure of the brush seal the contact forces during a rubbing event are reduced, however the frictional heat input can still be considerable. Particularly in aircraft engines with their thin and lightweight rotor structures the permissible material stresses can easily be exceeded by an increased heat input and thus harm the engine's integrity. The geometry of the seal has a decisive influence on the resulting contact forces and consequently the heat input. The complex interactions between the geometric parameters of the seal and the heat input and leakage characteristics are not yet fully understood. This paper presents the investigation of the influence of the geometric parameters of a brush seal on the heat input into the rotor and the leakage behaviour. Two seals with different packing densities were tested under relevant engine conditions with pressure differences ranging from 1 to 7 bar, relative surface speeds ranging from 30 to 180m/s and radial overlaps ranging from 0.1 to 0.4 mm. The transient temperature rise during the rub event was recorded with 24 thermocouples in close proximity to the rub contact embedded in the rotor structure. By comparing the temperature curves with the results of a thermal finite element analysis of the rotor the heat input into the rotor was calculated iteratively. It could be shown that the packing density has a decisive influence on the overall operating behaviour of a brush seal. Furthermore, results are obtained for the heat flux distribution between seal and rotor are shown.
机译:由于与迷宫式密封相比具有优越的密封特性,近年来,刷式密封在涡轮机械中的传播有所增加。它们出色的密封性能主要来自其灵活性。因此,可以在转子和刷毛组件之间获得非常小的间隙,而不会产生在摩擦的情况下严重有害恶化的风险。在运行过程中,转子和密封件之间可能会由于以下原因而发生摩擦:转子和定子的热膨胀不均,或者由于离心力或操纵力而导致的转子伸长率不均。由于刷式密封的柔性结构,在摩擦过程中的接触力减小了,但是摩擦热输入仍然是相当大的。特别是在具有轻薄转子结构的飞机发动机中,增加的热量输入很容易超过允许的材料应力,从而损害发动机的完整性。密封件的几何形状对所产生的接触力以及因此的热量输入具有决定性的影响。密封件的几何参数与热量输入和泄漏特性之间的复杂相互作用还没有被完全理解。本文介绍了电刷密封的几何参数对输入到转子的热量和泄漏行为的影响的研究。在相关的发动机工况下测试了两种具有不同填充密度的密封件,其压差范围为1至7 bar,相对表面速度范围为30至180m / s,径向重叠范围为0.1至0.4 mm。摩擦事件期间的瞬态温度升高是通过24个热电偶记录的,该热电偶紧邻嵌入转子结构的摩擦触点。通过将温度曲线与转子的热有限元分析结果进行比较,可以迭代地计算输入到转子中的热量。可以看出,填充密度对刷式密封的整体操作行为具有决定性的影响。此外,还显示了密封件和转子之间的热通量分布。

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