首页> 外文会议>ASME turbo expo: turbomachinery technical conference and exposition >NOVEL TEST FACILITY FOR INVESTIGATION OF THE IMPACT OF THERMALLY INDUCED STRESS GRADIENTS ON FATIGUE LIFE OF COOLED GAS TURBINE COMPONENTS
【24h】

NOVEL TEST FACILITY FOR INVESTIGATION OF THE IMPACT OF THERMALLY INDUCED STRESS GRADIENTS ON FATIGUE LIFE OF COOLED GAS TURBINE COMPONENTS

机译:研究热诱导应力梯度对冷却燃气轮机组件疲劳寿命的影响的新型试验设施

获取原文

摘要

A novel test facility has been designed and set up for the investigation of the influence of stationary temperature, and thus thermally induced stress gradients with respect to the damage evolution of cooled gas turbine components. Thermally induced stress gradients differ from geometrically induced stress gradients. From the point of view of stress mechanics, they are independent from external loads. From the perspective of material mechanics, their impact on service life is influenced by locally different material properties and strength. However, the impact of thermally induced stress gradients on the cyclic life of high loaded, cooled components is not precisely known. In order to increase knowledge surrounding these mechanisms, a research project was launched. To achieve high temperature gradients and extended mechanical stress gradients, large heat fluxes are required. The authors developed a test bench with a unique radiant heating to achieve very high heat fluxes of q≥1.6 MW/m~2 on cylindrical specimen. Special emphasis has been placed on homogenous temperature and loading conditions in order to achieve valid test results comparable to standard low cycle or thermo-mechanical fatigue tests. Different test concepts of the literature were reviewed and the superior performance of the new test rig concept was demonstrated. The austenitic stainless steel 316L was chosen as the model material for commissioning and validation of the test facility. The investigation of thermally induced stress gradients and, based on this analysis, low-cycle fatigue tests with superimposed temperature gradients were conducted. Linear elastic finite element studies were performed to calculate the local stress-strain field and the service life of the test specimens. The test results show a considerable influence of the temperature gradient on the low-cycle fatigue life of the investigated material. Both the temperature variation over the specimen wall and thermally induced stresses are stated to be the main drivers for the change in low-cycle fatigue life. The test results increase the understanding of fatigue damage mechanisms under local unsteady conditions and can serve as a basis for improved lifetime calculation methods.
机译:已经设计并建立了一种新颖的测试设备,用于研究固定温度的影响,从而研究与冷却燃气轮机部件的损坏演变有关的热应力梯度。热引起的应力梯度不同于几何引起的应力梯度。从应力力学的角度来看,它们独立于外部载荷。从材料力学的角度来看,它们对使用寿命的影响受局部不同的材料特性和强度影响。然而,尚不清楚热诱导应力梯度对高负载,冷却部件的循环寿命的影响。为了增加有关这些机制的知识,启动了一个研究项目。为了实现高温梯度和扩展的机械应力梯度,需要大的热通量。作者开发了一种具有独特辐射加热的试验台,以在圆柱样品上实现q≥1.6MW / m〜2的非常高的热通量。为了获得与标准的低循环或热机械疲劳测试相当的有效测试结果,特别强调了均匀的温度和负载条件。审查了文献中不同的测试概念,并展示了新测试台概念的卓越性能。选择奥氏体不锈钢316L作为测试设备的调试和验证的模型材料。对热应力梯度进行了研究,并在此分析的基础上,进行了温度梯度叠加的低周疲劳测试。进行了线性弹性有限元研究,以计算局部应力应变场和试样的使用寿命。测试结果表明温度梯度对所研究材料的低周疲劳寿命有很大影响。试样壁上的温度变化和热应力都被认为是改变低周疲劳寿命的主要驱动力。测试结果使人们对局部不稳定条件下的疲劳损伤机理有了更深入的了解,并且可以作为改进寿命计算方法的基础。

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