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Designing nanoprecipitation strengthened UHS stainless steels combining genetic algorithms and thermodynamics

机译:结合遗传算法和热力学设计纳米沉淀强化UHS不锈钢

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摘要

A computational method for the design of precipitation hardened stainless steel is presented which combines genetic algorithms and thermodynamic computations. The aim of the algorithm is finding compositional scenarios for stainless steels displaying yield strength values exceeding those of their existing commercial counterparts. Strengthening results from ensuring the presence of fine lath martensite and a variety of nanoprecipitates. Using no less than 13 alloying elements, constrained by realistic minimum and maximum levels, the model leads to the design of four alloys for which strengthening is the result of either MC carbides, Cu, Ni rich intermetallics, or a combination of all of them. The model predictions are also compared to a variety of existing commercial high-end engineering steels, showing that the design strategy presented here may potentially lead to significant improvements in strength, while at the same time keeping the Cr level in the matrix above the critical corrosion protection level of 12 wt%. (C) 2008 Elsevier B.V. All rights reserved.
机译:提出了一种结合遗传算法和热力学计算的沉淀硬化不锈钢设计计算方法。该算法的目的是找到显示出屈服强度值超过其现有商业对应物的不锈钢的成分方案。确保细板条马氏体和各种纳米沉淀物的存在可增强强度。该模型使用了不少于13种合金元素,并受现实的最小和最大水平限制,导致了四种合金的设计,这些合金的强化是MC碳化物,富Cu,Ni的金属间化合物或所有元素的组合的结果。还将模型预测结果与各种现有的商用高端工程钢进行了比较,表明此处介绍的设计策略可能潜在地导致强度显着提高,同时将基体中的Cr含量保持在临界腐蚀以上防护等级为12 wt%。 (C)2008 Elsevier B.V.保留所有权利。

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