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(110241)Low cycle fatigue behavior and microstructural evolution of nickel-based superalloy M951G at elevated temperatures

机译:(110241)高温下镍高超合金M951G的低循环疲劳行为和微观结构演化

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摘要

Low cycle fatigue (LCF) tests of the newly developed nickel-based superalloy M951G have been conducted at 900 and 1000 °C under different total strain amplitudes. Results show that the fatigue properties, fracture mechanisms as well as coarsening of γ' precipitates are dependent on testing temperatures and strain amplitudes. Fatigue life and cyclic stress response under the same total strain amplitude at 1000 °C are lower than that at 900 °C, which is due to the degradation of microstructures, shearing of γ' precipitates by dislocations and serious oxidation. Fracture modes change from intergranular cracking to the mixed mode cracking as the strain amplitude increases. At low strain amplitudes, M951G alloy fails in the form of intergranular cracking owing to the oxidation of surface carbides and the relatively low deformation rate. At higher strain amplitudes, the strain localization in grain interior, the distribution of broken carbides and eutectics as well as the relatively higher strain rate are the main reasons for the formation of transgranular microcracks. Ultimately, the effects of fatigue conditions on coarsening of cubic γ' precipitates are also analyzed from the aspect of γ' volume fraction, fatigue life and flow stress difference between the γ/γ' interfaces.
机译:在不同的总应变幅度下,新开发的镍基超合金M951G的低循环疲劳(LCF)试验在900和1000℃下进行。结果表明,疲劳性能,断裂机制以及γ'沉淀物的粗化取决于测试温度和应变幅度。在1000℃的相同总应变幅度下的疲劳寿命和循环应力反应低于900℃的循环应力反应,这是由于微结构的降解,γ'通过位错析出和严重氧化而沉淀。随着应变幅度的增加,骨折模式从晶间裂缝变为混合模式裂缝。在低应变幅度下,由于表面碳化物氧化和相对较低的变形率,M951G合金以晶间裂化的形式失效。在较高的应变幅度下,晶粒内部的应变定位,破碎的碳化物和共肠的分布以及相对较高的应变率是形成跨晶微裂纹的主要原因。最终,还从γ'体积分数,疲劳寿命和γ'界面之间的流量应力差异分析了疲劳条件对立方γ'沉淀的粗化的影响。

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