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The role of particle ripening on the creep acceleration of Nimonic 263 superalloy

机译:粒子熟化对Nimonic 263高温合金蠕变加速的作用

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Physically based constitutive equations need to incorporate the most relevant microstructural features of materials to adequately describe their mechanical behaviour. To accurately model the creep behaviour of precipitation hardened alloys, the value and the evolution of strengthening particle size are important parameters to be taken into account. In the present work, creep tests have been run on virgin and overaged (up to 3500 h at 800 ∘C) Nimonic 263, a polycrystalline nickel base superalloy used for combustion chambers of gas turbines. The experimental results suggest that the reinforcing particle evolution is not the main reason for the creep acceleration that seems to be better described by a strain correlated damage, such as the accumulation of mobile dislocations or the grain boundary cavitation. The coarsened microstructure, obtained by overageing the alloy at high temperature before creep testing, mainly influences the initial stage of the creep, resulting in a higher minimum creep rate and a corresponding reduction of the creep resistance.
机译:基于物理的本构方程需要结合材料的最相关的微观结构特征,以充分描述其机械性能。为了准确地模拟沉淀硬化合金的蠕变行为,其值和强化粒度的演变是需要考虑的重要参数。在目前的工作中,蠕变测试已经在原始和过时的条件下(在800°C时高达3500 h)进行了测试,Nimonic 263是一种多晶镍基高温合金,用于燃气轮机燃烧室。实验结果表明,增强颗粒的演化并不是蠕变加速的主要原因,而蠕变加速似乎可以通过应变相关的损伤来更好地描述,例如移动位错的积累或晶界空化。通过在蠕变测试之前在高温下对合金进行过时效处理而获得的粗化组织,主要影响蠕变的初始阶段,从而导致更高的最小蠕变速率和相应的抗蠕变性降低。

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