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首页> 外文期刊>Materials and Manufacturing Processes >Evolutionary Design of Nickel-Based Superalloys Using Data-Driven Genetic Algorithms and Related Strategies
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Evolutionary Design of Nickel-Based Superalloys Using Data-Driven Genetic Algorithms and Related Strategies

机译:基于数据驱动遗传算法的镍基高温合金的进化设计及相关策略

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摘要

Data-driven models were constructed for the mechanical properties of multi-component Ni-based superalloys, based on systematically planned, limited experimental data using a number of evolutionary approaches. Novel alloy design was carried out by optimizing two conflicting requirements of maximizing tensile stress and time-to-rupture using a genetic algorithm-based multi-objective optimization method. The procedure resulted in a number of optimized alloys having superior properties. The results were corroborated by a rigorous thermodynamic analysis and the alloys found were further classified in terms of their expected levels of hardenabilty, creep, and corrosion resistances along with the two original objectives that were optimized. A number of hitherto unknown alloys with potential superior properties in terms of all the attributes ultimately emerged through these analyses. This work is focused on providing the experimentalists with linear correlations among the design variables and between the design variables and the desired properties, non-linear correlations (qualitative) between the design variables and the desired properties, and a quantitative measure of the effect of design variables on the desired properties. Pareto-optimized predictions obtained from various data-driven approaches were screened for thermodynamic equilibrium. The results were further classified for additional properties.
机译:基于系统规划的有限实验数据,使用多种进化方法,建立了基于数据的模型,用于多组分镍基高温合金的力学性能。通过使用基于遗传算法的多目标优化方法来优化最大化拉伸应力和断裂时间这两个相互矛盾的要求,从而进行了新颖的合金设计。该程序产生了许多具有优异性能的优化合金。通过严格的热力学分析证实了该结果,并根据预期的抗硬性,蠕变和耐腐蚀水平以及经过优化的两个原始目标对发现的合金进行了进一步分类。通过这些分析,最终发现了许多迄今未知的,具有所有特性的潜在优越性能的合金。这项工作的重点是为实验人员提供设计变量之间以及设计变量与所需属性之间的线性相关性,设计变量与所需属性之间的非线性相关性(定性)以及设计效果的定量度量所需属性上的变量。从各种数据驱动的方法获得的帕累托优化预测被筛选为热力学平衡。将结果进一步归类为其他属性。

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