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Optimizing parameters of CVI process for manufacturing carbon―carbon composites by genetic algorithms

机译:基于遗传算法的碳-碳复合材料CVI工艺参数优化

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摘要

In this paper, the genetic algorithms were used to realize optimization of the chemical vapor infiltration (CVI) process for manufacturing carbon―carbon composites for the first time. The density homogeneity, bulk density and infiltration time were selected as the optimizing objectives, and the density homogeneity was taken as the main optimizing objective. By combining selection, crossover and mutation operator of genetic algorithms with computer simulation technology, the CVI process parameters including deposition temperature and concentration of reacting gases had been optimized. After 30 generation evolutions, the fitness values were converged, and the optimized results were obtained. So, this paper has provided an effective optimization method for CVI process, which can solve the problem of difficulty of establishing a model for the process.
机译:本文采用遗传算法首次实现了碳-碳复合材料化学气相渗透(CVI)工艺的优化。选择密度均匀性,堆积密度和渗透时间为优化目标,以密度均匀性为主要优化目标。通过将遗传算法的选择,交叉和变异算子与计算机仿真技术相结合,优化了CVI工艺参数,包括沉积温度和反应气体浓度。经过30代的进化,适应度值收敛,并获得了优化的结果。因此,本文提供了一种有效的CVI过程优化方法,可以解决CVI过程难以建立模型的问题。

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