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Modeling, simulation, and optimization for producing ultra-low sulfur and high-octane number gasoline by separation and conversion of fluid catalytic cracking naphtha

机译:通过分离和转化产生超低硫和高辛烷值汽油的建模,模拟和优化通过流体催化裂解石脑油

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摘要

Contradiction between the desulfurization and loss of octane number (ON) for fluid catalytic cracking (FCC) naphtha is the long-term problem of clean gasoline production. Moreover, ON loss is substantially aggravated during deep hydrodesulfurization because of the global limited supply of sulfur for gasoline. This paper introduced a novel process for ultra-clean gasoline production that solves the above problem by using a unique separation approach. The components were separated by the coupling of distillation and solvent extraction, which the separation efficiency depends on the relationship between solvent and feedstock components. However, the compositions of FCC naphtha are complicated and always changing due to different processing technologies. Therefore, changes in the material composition must be considered during production. In this study, ternary liquid-liquid equilibrium (LLE) was explored to investigate the interaction of olefin, sulfide, and sulfolane solvent. A universal quasi-chemical functional group activity coefficient (UNIFAC) group contribution model was selected to predict the product composition when the FCC naphtha was treated by this process. The lack and necessity of group interaction parameters for the prediction were obtained through the regressive calculation of LLE results. A simulation method was established by Aspen Plus, and the reliability was well illustrated. Finally, the high olefin content of FCC naphtha critical components was analyzed by this simulation method. The sulfur and olefin levels of the product were 9.0 mg/kg and 18.6 wt%, respectively. The operation conditions simulated using the proposed technique met the requirements for the latest commercial gasoline worldwide.
机译:流体催化裂化(FCC)石脑油的辛烷值(ON)脱硫和丧失之间的矛盾是清洁汽油生产的长期问题。此外,由于汽油的全球有限的硫供应,在深加氢脱硫期间大幅加剧。本文介绍了一种新的超清洁汽油生产方法,通过使用独特的分离方法解决上述问题。通过蒸馏和溶剂萃取的偶联分离成分,分离效率取决于溶剂和原料组分之间的关​​系。然而,由于不同的加工技术,FCC石脑油的组合物复杂并且始终改变。因此,必须在生产过程中考虑材料组合物的变化。在本研究中,探索了三元液 - 液平衡(LLE)以研究烯烃,硫化物和磺胺溶剂的相互作用。选择通用的准化学官能团活性系数(UNIFAC)组贡献模型以通过该方法处理FCC石脑油时预测产物组合物。通过LLE结果的回归计算获得预测的群体交互参数的缺陷和必要性。 Aspen Plus建立了一种模拟方法,并说明了可靠性。最后,通过该模拟方法分析了FCC石脑油临界组分的高烯烃含量。产物的硫和烯烃水平分别为9.0mg / kg和18.6wt%。使用所提出的技术模拟的操作条件符合全球最新商业汽油的要求。

著录项

  • 来源
    《Fuel》 |2021年第1期|120740.1-120740.12|共12页
  • 作者单位

    China Univ Petr State Key Lab Heavy Oil Proc Beijing 102249 Peoples R China;

    China Univ Petr State Key Lab Heavy Oil Proc Beijing 102249 Peoples R China;

    China Univ Petr State Key Lab Heavy Oil Proc Beijing 102249 Peoples R China;

    China Univ Petr State Key Lab Heavy Oil Proc Beijing 102249 Peoples R China;

    China Univ Petr State Key Lab Heavy Oil Proc Beijing 102249 Peoples R China;

    China Univ Petr State Key Lab Heavy Oil Proc Beijing 102249 Peoples R China;

    Hebei Jingzhi Technol Co Ltd Cangzhou 061000 Hebei Peoples R China;

    Hebei Jingzhi Technol Co Ltd Cangzhou 061000 Hebei Peoples R China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    FCC naphtha; Molecular refining; Olefin separation; UNIFAC model; Group interaction parameter; Simulation;

    机译:FCC石脑油;分子精制;烯烃分离;UNIFAC模型;组交互参数;模拟;

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