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Weld repair of Grade 91 piping and components in power generation applications, creep performance of repair welds

机译:发电应用中91级管道和部件的焊缝修复,修复焊缝的蠕变性能

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摘要

Creep strength-enhanced ferritic steels, such as Grade 91, are the preferred material for much of the high-energy boiler tubing and piping components used in modern power generating plants. Weld repair techniques that achieve the necessary performance without the need for high-temperature post weld heat treatment (PWHT) offer particular benefits for Grade 91 steel. These benefits arise since there are many examples of poor heat treatment control which have resulted in component microstructures with below the minimum properties expected by design codes. Furthermore, even a controlled PWHT at temperatures at around 760 degrees C will further temper the base material. This is significant because excessive base metal tempering is one suggested criterion requiring component replacement. Successful demonstration of controlled welding techniques linked to minimal or no PWHT would alleviate these problems. This article presents results from a major project which is aimed at considering options for designing a 'well-engineered' repair. In this project, the creep performance of candidate repair methods was evaluated using large, feature test-type specimens containing the entire weldment including both fusion lines and heat-affected zones. The results show that the cross-weld life in Grade 91 steels does not appear to be a function of whether or not the welding procedures include PWHT. The results offer the potential to qualify 'cold' weld repairs in these steels.
机译:蠕变强度增强的铁素体钢(例如91级)是现代发电厂中使用的许多高能锅炉管道和管道组件的首选材料。无需进行高温焊后热处理(PWHT)即可达到必要性能的焊缝修复技术为91级钢带来了特殊的好处。这些好处之所以出现,是因为存在许多热处理控制不佳的示例,这些示例导致组件的微观结构低于设计规范预期的最低性能。此外,即使在约760摄氏度的温度下进行受控的PWHT,也将进一步回火基材。这很重要,因为过度的贱金属回火是一项建议的标准,要求更换组件。与最小或没有PWHT关联的受控焊接技术的成功演示将缓解这些问题。本文介绍了一个主要项目的结果,该项目旨在考虑设计“精心设计”的维修的选项。在该项目中,使用大型特征测试型样本(包括融合线和热影响区)对整个焊接件进行了评估,以评估候选修复方法的蠕变性能。结果表明,91级钢的交叉焊接寿命似乎与焊接程序是否包括PWHT无关。结果提供了对这些钢进行“冷”焊修复的资格。

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