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首页> 外文期刊>The Journal of Chemical Thermodynamics >Calculating all local minima on liquidus surfaces using the FactSage software and databases and the Mesh Adaptive Direct Search algorithm
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Calculating all local minima on liquidus surfaces using the FactSage software and databases and the Mesh Adaptive Direct Search algorithm

机译:使用FactSage软件和数据库以及网格自适应直接搜索算法计算液相线表面上的所有局部最小值

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摘要

It is often of interest, for a multicomponent system, to identify the low melting compositions at which local minima of the liquidus surface occur. The experimental determination of these minima can be very time-consuming. An alternative is to employ the CALPHAD approach using evaluated thermodynamic databases containing optimized model parameters giving the thermodynamic properties of all phases as functions of composition and temperature. Liquidus temperatures are then calculated by Gibbs free energy minimization algorithms which access the databases. Several such large databases for many multicomponent systems have been developed over the last 40 years, and calculated liquidus temperatures are generally quite accurate. In principle, one could then search for local liquidus minima by simply calculating liquidus temperatures over a compositional grid. In practice, such an approach is prohibitively time-consuming for all but the simplest systems since the required number of grid points is extremely large. In the present article, the FactSage database computing system is coupled with the powerful Mesh Adaptive Direct Search (MADS) algorithm in order to search for and calculate automatically all liquidus minima in a multicomponent system. Sample calculations for a 4-component oxide system, a 7-component chloride system, and a 9-component ferrous alloy system are presented. It is shown that the algorithm is robust and rapid.
机译:对于多组分系统,通常很感兴趣的是确定液相线表面出现局部最小值的低熔点组合物。这些最小值的实验确定可能非常耗时。一种替代方法是使用CALPHAD方法,该方法使用已评估的热力学数据库,其中包含优化的模型参数,这些模型参数给出了所有相的热力学性质与成分和温度的函数关系。然后,通过访问数据库的吉布斯自由能最小化算法计算液相线温度。在过去的40年中,已经为许多多组分系统开发了几个这样的大型数据库,计算出的液相线温度通常非常准确。原则上,然后可以通过简单地计算组成网格上的液相线温度来搜索局部液相线最小值。实际上,由于所需的网格点数量非常大,因此,除了最简单的系统之外,这种方法都非常耗时。在本文中,FactSage数据库计算系统与功能强大的网格自适应直接搜索(MADS)算法结合在一起,以便在多组件系统中搜索和自动计算所有液相线最小值。给出了4组分氧化物体系,7组分氯化物体系和9组分铁合金体系的样品计算。结果表明,该算法具有鲁棒性和快速性。

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