小型燃烧室优化的开源自主CFD元建模环境的开发-第二部分

A. Briones, B. Rankin
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引用次数: 0

摘要

本文提出了一种改进的开源自主CFD元建模环境(OpenACME),用于小型燃烧室设计优化。OpenACME结合了几个面向对象的编程开源代码,用于cfd辅助的工程设计元建模。OpenACME是全自动的,可以在PC工作站或HPC集群中使用。OpenACME采用基于多目标进化算法的全局元启发式优化算法(即NSGA-II)。首先使用拉丁超立方抽样计算初始设计种群,随后的迭代基于竞赛交配、均匀交叉和多项式突变产生后代。OpenACME能够同时计算多个并行CFD设计点,加快元模拟速度。CFD基于稳态、不可压缩的三维模拟,采用多相k-ω SST RANS和“冻结”火焰进程变量(FFPV)燃烧模型。这里有15个设计变量。有三种元模拟。元模拟报告了帕累托边界,可以根据热力学循环要求选择最优设计。共轭传热提供了最真实的内胆温度和燃烧室性能。当需要考虑衬垫耐久性时,仍然推荐使用critical作为成本函数。OpenACME被证明是一个可行的燃烧器设计优化工具。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Development of an Open-Source Autonomous CFD Meta-Modeling Environment for Small-Scale Combustor Optimization – Part II
This work presents an improved open-source autonomous CFD meta-modeling environment (OpenACME) for small-scale combustor design optimization. OpenACME couples several object-oriented programming open-source codes for CFD-assisted engineering design meta-modeling. OpenACME is fully automated and can be used in PC workstations or HPC clusters. OpenACME uses a global metaheuristic optimization algorithm based on multiple-objective evolutionary algorithm (i.e., NSGA-II). An initial design population is first computed with Latin Hypercube Sampling and subsequent iterations generate offspring based on tournament mating, uniform crossover, and polynomial mutation. OpenACME is capable of computing multiple parallel CFD design points concurrently, speeding up the meta-simulations. The CFD are based on steady-state, incompressible, three-dimensional simulations with multi-phase k-ω SST RANS and “frozen” flamelet progress variable (FFPV) combustion model. There are fifteen design variables. There are three meta-simulations. The meta-simulations report Pareto Frontier from which optimum designs can be selected based on thermodynamic cycle requirements. Conjugate heat transfer provides the most realistic liner temperature and combustor performance. Acritical is still recommended as a cost function when liner durability is a concern. OpenACME demonstrated to be a viable tool for combustor design optimization.
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