IN617中的关键矿物替代:性能评估和可行性的计算和实验相结合的方法

IF 3 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Ankit Roy, Carolyne Burns, Steven Livers, Benjamin Lund, Subhashish Meher, Mohan Sai Kiran Kumar Yadav Nartu, Asif Mahmud, Tianhao Wang, David Garcia, Jorge Dos Santos, Pratikshya Meher, Chinthaka M Silva, Thomas Hartmann, Isabella J Van Rooyen
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引用次数: 0

摘要

为了解决全球气候变化倡议对关键矿物(CMs)不断增长的需求,本研究通过用不同原子百分比的锰取代钴,探索了对Inconel 617的成分修改。我们利用分子动力学(MD)模拟进行了计算可行性研究,为实验验证提供战略指导。模拟分析了五种改性成分(M1至M5)的抗拉强度和耐腐蚀性,以确定最佳性能。在立方模拟细胞上进行拉伸试验以生成应力-应变曲线,揭示了用锰取代Co对拉伸强度的影响-一个与硬度相关的指标。通过氧渗透模拟来评估耐蚀性,表明氧渗透深度降低对应于耐蚀性增强。有希望的组合物进行相图计算以评估相稳定性。采用感应熔炼和搅拌摩擦固结技术对具有高抗拉强度和最小氧渗透特性的最佳组合(M1)进行了实验验证。采用SEM-EDS、XRD和维氏硬度测试对材料进行了进一步表征。我们的研究结果表明,在能量关键应用中,IN617中的Mn替代可以产生与高co合金相当的机械性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Critical mineral substitutions in IN617: A combined computational and experimental approach to performance evaluation and feasibility

Critical mineral substitutions in IN617: A combined computational and experimental approach to performance evaluation and feasibility
Addressing the escalating demand for critical minerals (CMs) driven by global climate change initiatives, this study explores compositional modifications to Inconel 617 by substituting cobalt with manganese across various atomic percentages. We conducted a computational feasibility study employing molecular dynamics (MD) simulations to provide strategic guidance for experimental validation. The simulations analyzed tensile strength and corrosion resistance for five modified compositions (M1 to M5) to identify optimal properties. Tensile tests on cubic simulation cells were performed to generate stress-strain curves, revealing the impact of Co replacement with Mn on tensile strength—a metric correlated with hardness. Oxygen penetration simulations were conducted to evaluate corrosion resistance, indicating that reduced oxygen penetration depth corresponds to enhanced resistance. Promising compositions underwent phase diagram calculations for assessing phase stability. The optimal composition (M1), characterized by high tensile strength and minimal oxygen penetration, was chosen for experimental validation using induction melting and friction stir consolidation techniques. The materials were further characterized using SEM-EDS, XRD, and Vickers hardness testing. Our findings suggest that Mn substitution in IN617 can yield mechanical performance at par with high-Co alloys in energy-critical applications.
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来源期刊
Materialia
Materialia MATERIALS SCIENCE, MULTIDISCIPLINARY-
CiteScore
6.40
自引率
2.90%
发文量
345
审稿时长
36 days
期刊介绍: Materialia is a multidisciplinary journal of materials science and engineering that publishes original peer-reviewed research articles. Articles in Materialia advance the understanding of the relationship between processing, structure, property, and function of materials. Materialia publishes full-length research articles, review articles, and letters (short communications). In addition to receiving direct submissions, Materialia also accepts transfers from Acta Materialia, Inc. partner journals. Materialia offers authors the choice to publish on an open access model (with author fee), or on a subscription model (with no author fee).
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