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Expanded Framework for the Prediction of Alternative Fuel Content and Alternative Fuel Blend Performance Properties Using Near-Infrared Spectroscopic Data

机译:使用近红外光谱数据预测替代燃料含量和替代燃料混合物性能的扩展框架

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摘要

Partial least squares (PLS) regression models can be constructed from near infrared (NIR.) spectroscopic data to identify and predict critical Specification properties of jet and diesel fuels for quality surveillance prescreening. This same approach has also been used previously to identify Fischer-Tropsch synthetic fuels and fatty acid methyl ester fuels, predict their quantities in blends with jet and diesel petrochemical fuels, and even correct fuel property predictions when alternative fuel contents in blends would affect the predictions of the properties in question. The present work expands upon these previous results by incorporating several additional alternative fuel types into a more generalized alternative fuel content and property modeling framework than was developed previously : The framework consists of a single generalized PLS modeling solution to simultaneously accommodate multiple alternative fuels considered isoparaffinic in nature, as well as smaller scale Modeling solutions to accommodate individual alternative fuels that are not similarly isoparaffinic in nature. This expanded framework provides the means to allow NIR PLS models to predict and quantify alternative fuel contents in blends, and accurately predict affected fuel properties, in a robust fashion that, because of the use of more generalized modeling than has been seen in previous Work, better accommodates a future of unknown and unknowable alternative fuel types.
机译:可以从近红外(NIR。)光谱数据构建偏最小二乘(PLS)回归模型,以识别和预测用于质量监控预筛选的喷气和柴油燃料的关键规格特性。以前也曾使用过这种方法来识别费-托合成燃料和脂肪酸甲酯燃料,预测其与喷气和柴油石化燃料的混合物中的量,甚至当混合物中的替代燃料含量会影响预测时,甚至纠正燃料性质的预测。有关的属性。通过将几种其他替代燃料类型合并到比以前开发的更通用的替代燃料含量和特性建模框架中,本工作扩展了这些先前的结果:该框架由一个通用的PLS建模解决方案组成,可同时容纳多种被认为是异链烷烃的替代燃料。自然,以及更小规模的建模解决方案,以适应自然界中异链烷烃不同的替代燃料。这个扩展的框架提供了一种方法,可以使NIR PLS模型以可靠的方式预测和量化混合物中的替代燃料含量,并准确地预测受影响的燃料特性,这是由于使用了比以前的工作更为广泛的建模方法,更好地适应未来未知和未知的替代燃料类型。

著录项

  • 来源
    《Energy & fuels》 |2015年第novaadeca期|7026-7035|共10页
  • 作者单位

    US Navy, Res Lab, Washington, DC 20375 USA;

    US Navy, Res Lab, Washington, DC 20375 USA;

    Nova Res Inc, Alexandria, VA 22308 USA;

    Nova Res Inc, Alexandria, VA 22308 USA;

    US Navy, Res Lab, Washington, DC 20375 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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