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首页> 外文期刊>Chemical Engineering Research & Design: Transactions of the Institution of Chemical Engineers >Soft sensor for continuous product quality estimation (in crude distillation unit)
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Soft sensor for continuous product quality estimation (in crude distillation unit)

机译:用于连续产品质量评估的软传感器(在原油蒸馏装置中)

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摘要

Due to the strict norm requirements of keeping products in crude refining units within specifications, laboratory testing and quality control of the products are necessary. Given this reason, virtual soft sensor for continuous quality estimation of light naphtha as the crude distillation unit (CDU) product was developed. Experimental data included available continuous measurements of CDU process streams (temperatures, pressures and flowrate) and laboratory analyses undertaken twice a day. The results are soft sensor models for light naphtha vapor pressure (RVP) estimation. Soft sensor models have been developed conducting multiple linear regression analysis and using neural network-based models such as LNN, MLP and RBF. Considering statistical and sensitivity analysis, the best results for both oils were obtained with MLP and RBF neural networks. The results show possible application of the soft sensor models for estimating light naphtha RVP as an alternative for laboratory testing.
机译:由于严格的规范要求将原油精制装置中的产品保持在规格范围内,因此必须对产品进行实验室测试和质量控制。出于这个原因,开发了用于连续估算轻质石脑油作为粗蒸馏装置(CDU)产品的虚拟软传感器。实验数据包括CDU工艺流的连续测量(温度,压力和流量)以及每天进行两次的实验室分析。结果是用于轻石脑油蒸气压(RVP)估算的软传感器模型。已经开发了软传感器模型,可以进行多元线性回归分析,并使用基于神经网络的模型(例如LNN,MLP和RBF)进行开发。考虑到统计和敏感性分析,使用MLP和RBF神经网络可获得两种油的最佳结果。结果表明,软传感器模型可能用于估算轻石脑油RVP,作为实验室测试的替代方法。

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