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Numerical Simulations of Fatigue Crack Growth in a Steam Turbine Rotor Blade Groove

机译:汽轮机转子叶片槽疲劳裂纹增长的数值模拟

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With increasing share of renewable energy sources in the electricity production strict demands are placed on thermal power plants that have to cover the power shortages more frequently. Increasing number of steam turbine (ST) start-ups and shutdowns, as well as requirements on higher ramping of operating conditions, has detrimental effect on the overall lifetime of ST components. In the ST design process, this situation has to be dealt by applying advanced prediction methodologies handling the thermo-mechanical fatigue mechanism, for instance. On the other hand, in the case of currently operating STs, regular inspection and maintenance schedule as well as technologies for turbine operation control have to be reconsidered or newly developed. To cope with these challenges, the international consortium of energetic turbine producers and research institutes initiated the TURBO-REFLEX project funded by EU's H2020 program. One of the principal aims of the project is development of a damage tolerance approach that may be suitable for scheduling the ST rotor maintenance, for instance. Decisive factors in this effort are ST rotor operating conditions, material fracture properties and geometry that constitute the crack initiation site and crack growth rate and direction. This forms a complex task that has to be handled numerically by using a Finite Element (FE)-based code accompanied by in-house scripts for detecting the most probable way of crack propagation. In this contribution, the adopted fracture-mechanics approach applied to low-pressure section of ST rotor and results that have been achieved are presented.
机译:随着可再生能源的份额增加,电力生产中的可再生能源严格地将需要更频繁地覆盖电力短缺的火电厂。越来越多的汽轮机(ST)启动和关闭,以及对操作条件较高的要求,对ST部件的整体寿命具有不利影响。在ST设计过程中,通过应用处理热机械疲劳机制的先进预测方法,必须进行这种情况。另一方面,在目前运行的STS,定期检查和维护计划以及用于涡轮机操作控制的技术必须重新考虑或新开发。为了应对这些挑战,电力充沛的涡轮机生产商和研究机构的国际联盟启动了由欧盟H2020计划资助的Turbo-Reflex项目。该项目的主要目的之一是开发损坏公差方法,该方法可能适用于安排ST转子维护。在这项努力中的决定性因素是ST转子操作条件,材料骨折性能和几何形状,构成裂纹启动位点和裂纹生长速度和方向。这表明了一种复杂的任务,它必须通过使用内部脚本附带的有限元(FE)代码来数值处理,以检测最可能的裂缝传播方式。在这一贡献中,呈现了应用于ST转子的低压部分的采用的骨折方法和已经实现的结果。

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