Viscosity reduction of heavy oil through aquathermolysis catalyzed by piperazine metal complex clay composite and the mechanism study
BACKGROUND
Synergistic catalytic aquathermolysis represents a pivotal technology for heavy oil recovery, where the development, screening, and mechanistic understanding of composite catalysts play a central role. Although this approach demonstrates considerable scientific merit and practical utility, enhancing catalyst performance and economic viability remains an ongoing challenge.
RESULTS
In this study, a series of novel composite catalysts were designed and synthesized using piperazine as the ligand and Na-montmorillonite as the carrier and applied to the aquathermolysis reaction system of heavy oil. The experimental results show that the S@Ni(II)P composite catalyst exhibits excellent synergistic catalytic performance: the viscosity reduction rate reaches 67.5% compared with the untreated oil sample and 57.4% compared with the blank aquathermolysis sample, while maintaining good catalytic stability. The viscosity reduction performance of the catalyst was systematically verified by characterization techniques such as Fourier transform infrared spectroscopy (FT-IR), scanning electron microscopy-energy dispersive spectroscopy (SEM-EDS), X-ray diffraction (XRD), thermogravimetric analysis (TGA), differential scanning calorimetry (DSC), elemental analysis, SARA analysis (saturates, aromatics, resins, asphaltenes), and gas chromatography (GC) of saturated hydrocarbons. In addition, based on the molecular structural characteristics of resins and asphaltenes in heavy oil, a model compound system was constructed in this study to deeply elucidate the synergistic catalytic mechanism of the S@Ni(II)P composite catalyst in the aquathermolysis process of heavy oil.
期刊介绍:
Journal of Chemical Technology and Biotechnology(JCTB) is an international, inter-disciplinary peer-reviewed journal concerned with the application of scientific discoveries and advancements in chemical and biological technology that aim towards economically and environmentally sustainable industrial processes.