首页> 外文会议>ASME Turbo Expo: Turbomachinery Technical Conference and Exposition >NUMERICAL INVESTIGATION OF THE INFLUENCE OF FLOW DEFLECTION AT THE UPPER HOOD ON PERFORMANCE OF LOW PRESSURE STEAM TURBINE EXHAUST HOODS
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NUMERICAL INVESTIGATION OF THE INFLUENCE OF FLOW DEFLECTION AT THE UPPER HOOD ON PERFORMANCE OF LOW PRESSURE STEAM TURBINE EXHAUST HOODS

机译:高压汽轮机排气罩对上罩流动挠度影响的数值研究

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Most of the world's power is produced by large steam turbines using fossil fuel, nuclear and geothermal energy. The LP exhaust hoods of these turbines are known to contribute significantly to the losses within the turbine, hence a minor improvement in their performance, which results in a lower backpressure and thus higher enthalpy drop for the steam turbine, will give a considerable benefit in terms of fuel efficiency. Understanding the flow field and the loss mechanisms within the exhaust hood of LP steam turbines is key to developing better optimized exhaust hood systems. A detailed analysis of loss generation within the exhaust hood was done by the authors [1]. It was found that most losses occur at the upper hood and are caused by the swirling flows, which mostly start at the diffuser outlet, especially for the top diffuser inlet sector flows that have a complex path to the condenser. The authors further numerically investigated the influence of hood height variation on performance of an LP turbine exhaust hood [2], which further contributed to the knowledge of the loss mechanisms. With the loss mechanisms in exhaust hoods reasonably well understood, flow deflection at the upper hood is investigated in the current paper. The deflection is aimed at minimizing the intensity of the vortices formed thus reducing the exhaust losses. The deflector configurations analyzed are modifications of the walls of the reference configuration s outer casing. The numerical models of the reference configuration which are based on a scaled axial-radial diffuser test rig operated by ITSM have already been validated by the authors at design and overload operating conditions and three tip jet Mach numbers ( 0, 0.4 and 1.2) [1]. Deflector configurations investigated are found to re-direct the flow at the upper hood and minimize the intensity of the swirling flows hence leading to improvement in performance of LP steam turbine exhaust hoods. The best performing deflector configuration is found to give a considerable improvement in performance of 20% at design load and 40% at overload both at tip jet Mach number of 0.4 (corresponding to shrouded last stage blades). At design load and tip jet Mach number of 1.2 (corresponding to unshrouded last stage blades), the improvement is found to be moderate. About 7% performance increase is observed.
机译:世界上大多数的电力由使用化石燃料,核和地热能的大型汽轮机生产。已知这些涡轮机的LP排气罩对于涡轮机内的损耗显着贡献,因此性能的微小改善,这导致较低的背压并因此为蒸汽涡轮机的焓滴下降,将在术语中提供相当大的益处燃油效率。理解LP蒸汽轮机排气罩内的流场和损耗机构是开发更优化的排气罩系统的关键。作者通过作者进行了对排气罩内损失产生的详细分析[1]。发现大多数损失发生在上罩处,并且由旋流引起的,其主要从扩散器出口开始,特别是对于具有与冷凝器具有复杂路径的顶部扩散器入口扇区流动。作者进一步研究了罩高度变化对LP涡轮机排气罩的性能的影响[2],这进一步促进了丢失机制的知识。随着排气罩的损失机制合理地理解,在当前纸张中研究了上罩的流动偏转。偏转旨在最小化形成的涡流的强度,从而减少了排气损失。分析的偏转器配置是参考配置S外壳的壁的修改。基于ITSM操作的缩放轴向扩散器试验台的参考配置的数值模型已经通过设计和过载操作条件和三个尖端喷射马赫数(0,0.4和1.2)验证]。发现偏转器配置被发现重新引导上罩的流动,并最大限度地减少旋转流的强度,从而导致LP汽轮机排气罩的性能提高。最佳执行偏转器配置被发现在设计负载时具有相当大的性能,并且在尖端喷射马赫数为0.4(对应于笼罩的最后阶段叶片)时,在过载时进行40%。在设计负载和尖端喷射Mach的1.2(对应于未体验的最后阶段刀片),发现改进是适中的。观察到大约7%的性能增加。

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