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Investigation of Conjugate Heat Transfer in Brush Seals using Porous Media Approach under Local Thermal Non-Equilibrium Conditions

机译:局部热非平衡条件下采用多孔介质方法研究刷式密封中的共轭传热

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As a type of contacting seal technology, brush seals provide superior sealing performance and flexible behavior. Brush seals have found increasing application in more challenging high-temperature locations in recent years. Thus, the frictional heat generation between the seal bristles and mating surfaces is becoming another major concern for stable operation of brush seals. This study presents detailed investigations on the conjugate heat transfer behavior of brush seals using Computational Fluid Dynamics (CFD) and Finite Element Method (FEM) approaches. A dual-energy equation was proposed to describe the conjugate heat transfer in the porous bristle pack region under local thermal non-equilibrium conditions. The heat transfer CFD model was established with consideration of anisotropic thermal conductivity and a radius-dependent porosity of the bristle pack. The frictional heat generation was calculated from the product of the bristle-rotor frictional force and sliding velocity. The bristle-rotor frictional force was obtained from the brush seal FEM model with consideration of internal friction and aerodynamic load on the bristles. The temperature distribution of the brush seal was predicted at various operational conditions using the iterative CFD and FEM brush seal model. The effects of pressure ratios and rotational speeds on the temperature distribution and bristle maximum temperature of the brush seal were investigated based on the developed numerical approach. The effect of frictional heat generation on brush seal leakage was also analyzed.
机译:作为一种接触式密封技术,刷式密封具有出色的密封性能和柔韧性。近年来,刷式密封件已发现在更具挑战性的高温场所中的应用日益广泛。因此,在密封刷毛和配合表面之间产生的摩擦热正成为刷式密封件稳定运行的另一个主要问题。本研究使用计算流体动力学(CFD)和有限元方法(FEM)方法对刷式密封的共轭传热行为进行了详细研究。提出了一个双能方程来描述局部热非平衡条件下多孔刷毛束区域内的共轭传热。建立了传热CFD模型,考虑了各向异性导热系数和硬毛填充物的半径相关孔隙率。摩擦热的产生是根据刷毛-转子摩擦力与滑动速度的乘积来计算的。考虑到内部摩擦和刷毛上的气动载荷,从刷式密封FEM模型获得了刷毛-转子摩擦力。使用迭代CFD和FEM毛刷密封模型在各种操作条件下预测了毛刷密封的温度分布。基于开发的数值方法,研究了压力比和转速对刷式密封件温度分布和刷毛最高温度的影响。还分析了摩擦生热对电刷密封泄漏的影响。

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