Numerical Analysis and Experimental Validation of Temperature Induced Creep and Fatigue life of Inconel 740H and Haynes 282

R. P A, AJITH RAMESH
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Abstract

The Nickel based super-alloys have gained lot of importance in the last decade or so owing to their applications in areas like power generation, military aircrafts, marine propulsion and nuclear reactors. Utilities worldwide are facing increased demand for additional electricity, reduced plant emissions and greater plant efficiency. To meet this challenge, it requires materials with very high temperature creep and fatigue strength and better coal ash corrosion resistance. For the realization of advanced ultra-supercritical (A-USC) thermal plant operating at service temperature and pressure about 700oC to 760oC and 24 MPa respectively, the use of Nickel based super alloys are indispensable. The two A-USC qualified alloys include Inconel 740H and Haynes 282. This study focus on improving the creep and fatigue life of the A-USC qualified alloys by predicting the optimum operating parameters through finite element modeling for temperature induced creep and fatigue analysis of the said A-USC alloys. The influence of various operating parameters like temperature, machining induced residual stress, surface finish, creep duration and fatigue loadings on output parameters like creep strain, elongation, creep and fatigue life were studied. Abaqus/Standard was used for the numerical simulation. Using ANOVA, the most influencing operating parameters were identified. It was observed that the machining induced residual stress and surface finish have greater influence on creep and fatigue life of alloys. Alloy with lower value of machining induced residual stress and better surface finish will have better creep and fatigue life. The proper validation of model was performed by comparing the results with relevant literature.
Inconel 740H 和 Haynes 282 的温度诱发蠕变和疲劳寿命的数值分析和实验验证
由于镍基超级合金在发电、军用飞机、船舶推进和核反应堆等领域的应用,它在过去十年左右的时间里获得了极大的重视。全球公用事业正面临着增加电力需求、减少工厂排放和提高工厂效率的挑战。为应对这一挑战,需要材料具有极高的高温蠕变强度和疲劳强度,以及更好的耐煤灰腐蚀性能。要实现先进的超超临界(A-USC)热电厂在工作温度和压力分别约为 700oC 至 760oC 和 24 MPa 的条件下运行,使用镍基超级合金是必不可少的。两种符合 A-USC 标准的合金包括 Inconel 740H 和 Haynes 282。本研究的重点是通过对上述 A-USC 合金进行温度诱导蠕变和疲劳分析的有限元建模,预测最佳操作参数,从而提高 A-USC 合金的蠕变和疲劳寿命。研究了温度、加工引起的残余应力、表面光洁度、蠕变持续时间和疲劳载荷等各种操作参数对蠕变应变、伸长率、蠕变和疲劳寿命等输出参数的影响。采用 Abaqus/Standard 进行数值模拟。通过方差分析,确定了影响最大的操作参数。结果表明,机加工引起的残余应力和表面光洁度对合金的蠕变和疲劳寿命影响较大。加工引起的残余应力值越小,表面光洁度越好,合金的蠕变和疲劳寿命就越长。通过将结果与相关文献进行比较,对模型进行了适当的验证。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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