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Creep behavior of dissimilar metal weld joints between P91 and AISI 304

机译:P91和AISI 304之间异种金属焊接接头的蠕变行为

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Dissimilar welds between ferritic creep-resistant steels and austenitic stainless steels in power plant service are known to fail prematurely due to a large difference in their thermal coefficient of expansion. To address this problem, in the current work, modified 9Cr-1Mo steel (P91) and austenitic stainless steel (AISI 304) transition joints were produced using friction welding employing three interlayers: Inconel 625, Inconel 600, and Inconel 800 H. These interlayers were friction welded one over another on P91 alloy, which was finally friction welded to AISI 304. The joints produced with single and three interlayers were subjected to creep rupture tests at different temperatures and stress levels. The creep test results demonstrated that the proposed approach can help realize striking improvements in creep performance of P91/AISI304 dissimilar metal welds. Further, analysis of creep resulted in a stress exponent (n) of 3 by incorporating the concept of threshold stress which suggested the creep deformation mechanism to be viscous glide due to solute drag. Creep rupture data was also analyzed using Monkman-Grant relationship and creep damage tolerance factor (λ). Results indicated that the damage mechanism is due to cavity growth by the combined effect of power law and diffusion creep.
机译:众所周知,由于热膨胀系数的巨大差异,发电厂用铁素体抗蠕变钢与奥氏体不锈钢之间的异种焊缝会过早失效。为了解决此问题,在当前工作中,使用摩擦焊采用三层中间层(Inconel 625,Inconel 600和Inconel 800 H)生产了改性9Cr-1Mo钢(P91)和奥氏体不锈钢(AISI 304)过渡接头。在P91合金上进行摩擦焊接,最后将其摩擦焊接到AISI304。对单层和三层中间层生产的接头在不同温度和应力水平下进行蠕变断裂测试。蠕变测试结果表明,该方法可帮助实现P91 / AISI304异种金属焊缝蠕变性能的显着改善。此外,蠕变分析通过引入阈值应力的概念得出应力指数(n)为3,这表明蠕变变形机制是由于溶质阻力而产生的粘性滑移。还使用Monkman-Grant关系和蠕变损伤容忍因子(λ)分析了蠕变破裂数据。结果表明,损伤机理是由于幂律和扩散蠕变的共同作用而引起的。

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