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INTEGRATED WELD QUALITY CONCEPT: A HOLISTIC DESIGN APPROACH FOR STEAM TURBINE ROTOR WELD JOINTS

机译:集成的焊接质量概念:蒸汽轮机转子焊接接头的整体设计方法

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The today's energy market requires highly efficient power plants under flexible operating conditions. Especially, the fluctuating availability of renewables demands higher cycling of fossil fired power plants. The need for highly efficient steam turbines is driven by CO_2 reduction programs and depletion of fossil resources. Increased efficiency requires higher steam temperatures up to 630°C in today's units or even more for future steam power plants. The gap between material properties in the hot and cold running parts of a steam turbine rotor is widened by increased live steam temperatures and the increased demand for flexibility. These technical challenges are accompanied by economic aspects, i.e. the market requirements have to be met at reasonable costs. The welding of steam turbine rotors is one measure to balance required material properties and economical solutions. The rotor is a core component of the steam turbine and its long-term integrity is a key factor for reliable and safe operation of the power plant. An important aspect of weld quality is the determination of permissible size of weld imperfections assessed by fracture mechanics methods. The integrity of rotor weld joints is assured by ultrasonic inspection after the final post weld heat treatment with respect to fracture mechanics allowable flaw sizes. This procedure usually does not take credit from the quality measures applied during monitoring of the welding process. This paper provides an overview of an holistic design approach for steam turbine rotor weld joints comprising the welding process and its improved online monitoring, nondestructive evaluation, material technology, and its fracture mechanics assessment. The corresponding quality measures and their interaction with fracture mechanics design of the weld joint are described. The application of this concept allows to exploit the potentials of weld joints and to assure a safe turbine operation over life time.
机译:当今的能源市场需要在灵活的运行条件下运行高效的发电厂。尤其是,可再生能源供应的波动要求化石燃料发电厂的循环更高。减少CO_2的计划和化石资源的枯竭推动了对高效蒸汽轮机的需求。为了提高效率,以当今的设备为单位,需要更高的蒸汽温度,最高可达630°C,对于未来的蒸汽发电厂,甚至更高。汽轮机转子的热运行部分和冷运行部分的材料性能之间的差距随着新鲜蒸汽温度的升高和对柔性的需求的增加而扩大。这些技术挑战伴随着经济方面,即必须以合理的成本满足市场需求。汽轮机转子的焊接是一种平衡所需材料性能和经济解决方案的措施。转子是蒸汽轮机的核心部件,其长期的完整性是确保发电厂可靠,安全运行的关键因素。焊接质量的一个重要方面是通过断裂力学方法确定允许的焊接缺陷尺寸。在最后的焊后热处理后,根据断裂力学允许的缺陷尺寸,通过超声波检查来确保转子焊接接头的完整性。该过程通常不会在监视焊接过程中采用的质量措施中获得认可。本文概述了蒸汽轮机转子焊接接头的整体设计方法,包括焊接工艺及其改进的在线监控,无损评估,材料技术及其断裂力学评估。描述了相应的质量措施及其与焊接接头断裂力学设计的相互作用。该概念的应用允许开发焊接接头的潜力,并确保涡轮机在整个生命周期内安全运行。

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