Solar oil refinery: Solar-driven hybrid chemical cracking of residual oil towards efficiently upgrading fuel and abundantly generating hydrogen
[Display omitted] •Solar energy was integrated into oil refining processes to replace fossil fuels.•Solar Oil Refinery was proposed to upgrade fuel and generate abundant hydrogen.•Solar-driven Hybrid Chemical Utilization can enhance solar-utilization efficiency and oil cracking rate.•Light hydrocarb...
Gespeichert in:
Veröffentlicht in: | Energy conversion and management 2024-01, Vol.300, p.117900, Article 117900 |
---|---|
Hauptverfasser: | , , , , , , , , |
Format: | Artikel |
Sprache: | eng |
Schlagworte: | |
Online-Zugang: | Volltext |
Tags: |
Tag hinzufügen
Keine Tags, Fügen Sie den ersten Tag hinzu!
|
Zusammenfassung: | [Display omitted]
•Solar energy was integrated into oil refining processes to replace fossil fuels.•Solar Oil Refinery was proposed to upgrade fuel and generate abundant hydrogen.•Solar-driven Hybrid Chemical Utilization can enhance solar-utilization efficiency and oil cracking rate.•Light hydrocarbons and abundant hydrogen with a small amount of O-containing organic compounds were at a higher yield than pyrolysis.
There is an urgent need to shift away from the present heavy dependence on fossil fuels and embrace renewable energy sources, particularly in the context of the energy-intensive oil refining process. Built on the Solar Reactive Utilization framework, this study presents an innovative concept called the Solar Oil Refinery, applying solar energy in the energy-demanding oil refining. Herein, a solar multi-energies-driven hybrid chemical oil refining system, exemplified by residual oil cracking, has been successfully developed and formulated in solar-driven thermo-electrochemical cracking of residual oil. This integrated solar oil refining system, coupled with solar pyrolysis and electrolysis - synergistic thermo- and electrochemistry, can greatly promote the “cracking” of residual oil. Owing to the simultaneous applications of solar heat, solar electricity, and the relevant chemical reactions, the system can significantly improve solar utilization efficiency, the cracking rate and the hydrogen yield. In the operation, solar energy, co-functioning with oil, is converted into light hydrocarbon fuel with the advantage of excess hydrogen energy storage. Notably, the temperature required for solar oil cracking is considerably reduced compared with that of conventional pyrolysis, with a cracking rate of 11.2% at the initial temperature of 230 ℃. As the temperature rises, the cracking rate is elevated, reaching 45.22% at 275 ℃ and an impressive 89.85% at the typical temperature of 425 ℃, in contrast to the 44.25% achieved in conventional pyrolysis. In the conventional pyrolysis, the gas, liquid, solid products and unreacted residual oil are accounted for 3.98%, 24.57%, 15.57%, and 55.75%, respectively, but, in the solar oil cracking, the gas, liquid, solid products and residual oil improve to 13.2%, 75.1%, 1.65%, and 10.05%, respectively. This process is characterized by a substantial increase of gas and liquid phase products, coupled with a significant reduction of solid phase products and unreacted residual oil. At 425 ℃, a noteworthy increase of 10.7% |
---|---|
ISSN: | 0196-8904 1879-2227 |
DOI: | 10.1016/j.enconman.2023.117900 |