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首页> 外文期刊>Journal of near infrared spectroscopy >Comparison of chemometric techniques applied to near infrared spectra for a gasoline blending control
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Comparison of chemometric techniques applied to near infrared spectra for a gasoline blending control

机译:用于汽油调合控制的近红外光谱化学计量技术的比较

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In order to fulfil specifications, avoid quality give-aways, improve process safety and save on costs, refineries need to have on-line methods for the control of their processes. On-line analysers allow product streams characteristic variables to be controlled, providing a great amount of data in almost real time. Currently, the spectroscopic analysers [near infrared (NIR), mid infrared, nuclear magnetic resonanc and ultraviolet] are the most widely used. These analysers allow the value of the property of interest to be inferred from the measurement of a spectrum. Due to the great quantity of variables that constitute a spectrum, mathematical tools are required to extract the information related to the properties of interest. Repsol YPF has developed, and is in process of implantating, several NIR systems in its different laboratories, pilot plants and industrial complexes, which include from gasoline or diesel blending systems control to some petrochemical product manufacture controls. In the development of these systems, different hardware and software have been compared. In this work, the results obtained with three different chemometric methods for predicting critical gasoline properties for blending control are analysed and compared - partial least squares, a topological method and artificial neural networks.
机译:为了满足规格,避免质量损失,提高过程安全性并节省成本,炼油厂需要采用在线方法来控制其过程。在线分析仪允许控制产品流的特征变量,几乎实时地提供大量数据。当前,光谱分析仪[近红外(NIR),中红外,核磁共振和紫外]被最广泛地使用。这些分析仪允许从频谱测量中推断出感兴趣的属性的值。由于构成频谱的大量变量,需要数学工具来提取与感兴趣的特性有关的信息。 Repsol YPF已在其不同的实验室,中试工厂和工业园区开发了几种NIR系统,并且正在开发中,其中包括从汽油或柴油混合系统控制到某些石化产品制造控制。在开发这些系统时,已经比较了不同的硬件和软件。在这项工作中,分析和比较了用三种不同的化学计量学方法预测用于混合控制的关键汽油性能的结果-偏最小二乘,拓扑方法和人工神经网络。

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