首页> 外文会议>ASME turbo expo: turbine technical conference and exposition >SUPPORTING STRUCTURE PERFORMANCES ANALYSIS OF HEAVY-DUTY GAS TURBINE BASED ON FLUID-SOLID COUPLING METHOD
【24h】

SUPPORTING STRUCTURE PERFORMANCES ANALYSIS OF HEAVY-DUTY GAS TURBINE BASED ON FLUID-SOLID COUPLING METHOD

机译:基于流固耦合的重型燃气轮机支撑结构性能分析

获取原文

摘要

In order to achieve high working efficiency, modern gas turbines operate at high temperature which is close to the melting points of metal alloys. However, the support of turbine end suffers the thermal deformation. And the journal center position is also changed due to the effects of high temperature and shaft gravity. Tangential or radial supporting structures, which are composed of supporting struts, diffuser cones, hot and cooling fluid channel, are widely used in gas turbine hot end. Cooling technology is usually used to keep the bearing temperature in a reasonable range to meet requirements of strength and deformation of the supporting struts. In this paper, three major assumptions are proposed: (a) radiation is not considered, (b) cooling flow system is only partially modeled and analysis assumes significantly higher cooling flow that is not typical for current engines, and (c) only steady state heat transfer is considered. And a 3D fluid-solid coupled model based on finite-element method (FEM) is built to analyze the performances of both the tangential and the radial support. The temperature distribution, thermal deformation and stress of supports are obtained from CFD and strength analysis. The results show that either the tangential or radial support is used in a 270MW gas turbine; the thermal stress is about 90.3% of total stress which is produced by both thermal effects and shaft gravity. Comparing to the results from radial supports, it can be seen that the struts stress and position variation of journal center of tangential support are smaller. Due to a rotational effect of the bearing housing caused by the deformation of the tangential struts, the thermal stress in these tangential struts can be relieved to some extent. When both thermal effect and shaft gravity are considered, the stress of each tangential supporting strut is almost uniformly distributed, which is beneficial to the stability of rotor system in the gas turbine.
机译:为了实现高工作效率,现代燃气轮机在接近金属合金熔点的高温下运行。然而,涡轮机端部的支撑件遭受热变形。由于高温和轴重力的影响,轴颈中心位置也发生了变化。由支撑支柱,扩散锥,热和冷却流体通道组成的切向或径向支撑结构广泛用于燃气轮机热端。通常使用冷却技术将轴承温度保持在合理范围内,以满足支撑支柱的强度和变形的要求。在本文中,提出了三个主要假设:(a)不考虑辐射,(b)冷却流系统仅部分建模,分析假设冷却流明显更高,这对于当前发动机而言并不常见,以及(c)稳态考虑传热。建立了基于有限元法的3D流固耦合模型,分析了切向和径向支撑的性能。支架的温度分布,热变形和应力可通过CFD和强度分析获得。结果表明,在270MW燃气轮机中使用切向或径向支撑。热应力约为由热效应和轴重力产生的总应力的90.3%。与径向支撑的结果比较,可以看出,支撑应力和切向支撑轴颈中心的位置变化较小。由于切向支柱的变形引起的轴承箱的旋转作用,可以在一定程度上减轻这些切向支柱中的热应力。当同时考虑热效应和轴重力时,每个切向支撑杆的应力几乎均匀分布,这有利于燃气轮机中转子系统的稳定性。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号