首页> 外文期刊>Microchemical Journal: Devoted to the Application of Microtechniques in all Branches of Science >Genetic Algorithms Applied to Pattern Recognition Analysis of High-Speed Gas Chromatograms of Aviation Turbine Fuels Using an lntegrated Jet-A/JP-8 Database
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Genetic Algorithms Applied to Pattern Recognition Analysis of High-Speed Gas Chromatograms of Aviation Turbine Fuels Using an lntegrated Jet-A/JP-8 Database

机译:遗传算法集成Jet-A / JP-8数据库应用于航空涡轮燃料高速气相色谱图模式识别分析

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摘要

High-speed gas chromatography was used to develop a potential method to type civilian and military jet fuels. A database of 212 gas chromatograms of neat jet fuel samples representing common aviation turbine fuels found in the United States (Jet-A, JP-5, JP-7, JP-8, and JPTS) was mined using a genetic algorithm which was necessary because of the similarities of the gas chromatograms in the database. Principal-component models developed from gas chromatography peaks identified by the genetic algorithm were able too correctly classify the gas chromatograms of neat jet fuels, and these models were also able to successfully classify the gas chromatograms of jet fuels that had undergone weathering in a subsurface environment. The present study, which is a logical extension of an earlier effort, was undertaken because of the change from JP-4 to JP-8 as the principal U.S. Air Force fuel.
机译:高速气相色谱法被用于开发一种用于民用和军用喷气燃料类型的潜在方法。使用必要的遗传算法,提取了代表美国常见的航空涡轮机燃料(喷气-A,JP-5,JP-7,JP-8和JPTS)的纯喷气燃料样品的212个气相色谱图的数据库。由于数据库中气相色谱图的相似性。通过遗传算法确定的气相色谱峰开发的主成分模型能够正确地对纯净喷气燃料的气相色谱进行分类,并且这些模型还能够成功地对在地下环境中经受风化的喷气燃料的气相色谱进行分类。由于从JP-4变为JP-8作为美国空军的主要燃料,因此进行了本研究,这是对早期努力的合乎逻辑的扩展。

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