首页> 外文期刊>Transactions of the Indian Institute of Metals >Low cycle fatigue properties of modified 9Cr-lMo ferritic martensitic steel weld joints in sodium environment
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Low cycle fatigue properties of modified 9Cr-lMo ferritic martensitic steel weld joints in sodium environment

机译:钠环境下改性9Cr-lMo铁素体马氏体钢焊接接头的低周疲劳性能

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摘要

Mod.9Cr-lMo ferritic-martensitic steel is the material chosen for the steam generator of the Prototype Fast Breeder Reactor being built at Kalpakkam, India. The use of sodium as a heat transfer medium for Liquid Metal Fast Breeder Reactors (LMFBRs) necessitates a comprehensive understanding of the effects of dynamic sodium on the Low Cycle Fatigue (LCF) behaviour of structural components. Moreover welds being the weak links in any structure, it is necessary to evaluate the LCF behaviour of joints in sodium environment, more so in Mod.9Cr-lMo steel because of the well established Type - IV cracking in this material. With this aim in view, a programme has been initiated to evaluate the LCF properties of weld joints of this steel in dynamic sodium environment. A facility has been developed in-house for mechanical property evaluation in dynamic sodium. LCF tests conducted in flowing sodium environment at 823 and 873 K showed a similar trend in cyclic stress response in air and sodium environments exhibiting a continuous cyclic softening behaviour. The fatigue lives are significantly improved in sodium environment when compared to the data obtained under identical testing conditions in air environment. The lack of oxidation in sodium environment is considered to be responsible for the delayed crack initiation and consequent increase in fatigue life. Comparison with RCC-MR code shows that the design curve based on air tests is conservative.
机译:9Cr-1Mo型铁素体-马氏体钢是在印度卡尔帕卡姆建造的原型快速增殖反应堆蒸汽发生器的材料。将钠用作液态金属快中子反应堆(LMFBR)的传热介质,需要全面了解动态钠对结构部件的低周疲劳(LCF)行为的影响。此外,焊接是任何结构中的薄弱环节,因此必须评估接头在钠环境中的LCF行为,在Mod.9Cr-1Mo钢中则更是如此,因为这种材料中公认的IV型裂纹。鉴于此目的,已经启动了一个程序来评估在动态钠环境下该钢的焊接接头的LCF特性。内部已开发了一种用于动态钠力学性能评估的设备。在流动的钠环境中于823和873 K下进行的LCF测试显示,在空气和钠环境中,循环应力响应具有类似的趋势,并表现出连续的循环软化行为。与在空气环境中相同测试条件下获得的数据相比,在钠环境中的疲劳寿命得到了显着改善。钠环境中缺乏氧化被认为是造成裂纹扩展延迟和疲劳寿命增加的原因。与RCC-MR代码的比较表明,基于空气测试的设计曲线是保守的。

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