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Brush Seals Used in Steam Environments-Chronological Wear Development and the Impact of Different Seal Designs

机译:蒸汽环境中使用的电刷密封件-按时间顺序磨损的发展以及不同密封件设计的影响

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摘要

During the last decades, turbo machine efficiency was considerably increased by using more efficient seals. Brush seals, as a compliant contacting filament seal, have become an attractive alternative to conventional labyrinth seals in the field of aircraft engines as well as in stationary gas and steam turbines. The aim of today's research related to brush seals is to understand the characteristics and their connections, in order to be able to make performance predictions, and to ensure the reliability over a defined operating period. The wear behavior is essentially influenced by frictional contacts at the seal-to-rotor interface during operation. For realistic investigations with representative circumferential velocities, the TU Braunschweig, Germany, operates a specially developed steam test rig which enables endurance investigations under varying operating steam conditions up to 50 bar and 450 ℃. Wear measurements and the determination of seal performance characteristics, such as blow down and bristle stiffness, are enabled by an additional test facility, using pressurized cold air up to 8 bar as a working fluid. This work presents the chronological wear development on both rotor and seal sides in a steam test lasting 25 days or 11 days, respectively. Interruptions after stationary and transient intervals were made in order to investigate the degree of wear. Two different seal arrangements, a single tandem seal, and a two-stage single seal arrangement, using different seal elements were considered. Besides a continuous wear development, the results clearly show that the abrasive wear of the brush seal and rotor is mainly caused by transient test operations, particularly by enforced contacts during shaft excursions. Despite the increasing wear to the brushes, all seals have shown a functioning radial-adaptive behavior over the whole test duration with a sustained seal performance. Thereby, it could be shown that the two-stage arrangement displays a load shift during transients, leading to a balanced loading and unloading status for the two single brush seals. From load sharing, and in comparison with the wear data of the tandem seal arrangement, it can be derived that the two-stage seal is less prone to wear. However, the tandem seal arrangement, bearing the higher pressure difference within one configuration, shows a superior sealing performance under constant load, i.e., under stationary conditions.
机译:在过去的几十年中,通过使用更有效的密封件,涡轮机的效率大大提高。在飞机发动机领域以及固定式燃气轮机和蒸汽轮机领域,电刷密封作为顺应性的接触式长丝密封已成为传统迷宫式密封的一种有吸引力的替代选择。今天有关刷式密封的研究的目的是了解其特性和它们的连接,以便能够进行性能预测,并确保在定义的运行期间内的可靠性。在运行过程中,磨损行为基本上受密封圈与转子界面处的摩擦接触影响。为了进行具有代表性的圆周速度的逼真的研究,德国不伦瑞克工业大学(TU Braunschweig)使用专门开发的蒸汽试验台,可以在高达50 bar和450℃的不同工作蒸汽条件下进行耐久性研究。磨损测试和确定密封性能特征(如吹气和刚毛刚度)可通过额外的测试设备实现,该设备使用高达8 bar的加压冷空气作为工作流体。这项工作提出了在持续25天或11天的蒸汽试验中转子和密封件两侧磨损的时间顺序。为了研究磨损程度,在固定和短暂间隔后进行了中断。考虑了使用不同密封元件的两种不同的密封布置,单级串联密封和两级单密封布置。除了持续的磨损发展,结果清楚地表明,电刷密封件和转子的磨料磨损主要是由瞬态测试操作引起的,尤其是由轴偏移期间的强制接触引起的。尽管电刷的磨损增加了,但所有密封件在整个测试过程中均显示出径向适应功能,并具有持续的密封性能。由此,可以示出,两级布置在瞬变期间显示出负载偏移,从而导致两个单刷密封件的平衡加载和卸载状态。从负载分担,并与串联密封装置的磨损数据进行比较,可以得出两级密封不太容易磨损。然而,在一种构造中承受较高压力差的串联密封装置在恒定载荷下,即在固定条件下,显示出优异的密封性能。

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  • 来源
    《Journal of Engineering for Gas Turbines and Power》 |2016年第5期|051901.1-051901.10|共10页
  • 作者单位

    Institute of Jet Propulsion and Turbomachinery, TU Braunschweig, Hermann-Blenk-Str. 37, Braunschweig 38108, Germany;

    Institute of Jet Propulsion and Turbomachinery, TU Braunschweig, Hermann-Blenk-Str. 37, Braunschweig 38108, Germany;

    Siemens AG, Power and Gas Division, Rheinstr. 100, Muelheim an der Ruhr 45478, Germany;

    Siemens AG, Power and Gas Division, Rheinstr. 100, Muelheim an der Ruhr 45478, Germany;

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