Energy and exergy analysis based on an energy saving process of waste tires pressurized catalytic reforming

Fengchao Wang, Cui Quan, Huacai Liu, Lin Lang, Hongyou Yuan, Xiuli Yin*, Jiawei Wang, Ningbo Gao

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

Abstract

The pressurized catalytic reforming technology had a positive impact on product quality, but the energy consumption for industrial applications remained uncertain. To achieve the need for energy-efficient and environmentally-friendly conversion of waste tires, this study developed a system of pressurized catalytic
reforming and exhaust gas combustion to produce high-quality oil, char, and industrial steam. The process was analyzed and evaluated based on the energy and exergy balance. The simulation results closely matched the experimental results, demonstrating the accuracy of the developed model. Significant energy savings were realized in the pyrolysis unit at 2.82 GJ/h and reforming unit at 7.57 GJ/h, respectively. The energy loss rates of the pyrolysis unit, heat transfer for the industrial steam unit, reforming unit, and combustion unit were 2.77%,
5.24%, 0.75%, and 0.77% of the system input energy, respectively. In addition, the heat transfer for the industrial steam unit recovered 12.93% of the system input energy. The exergy loss rates of the pyrolysis reactor, combustion reactor, and heat exchanger HEATER6 in the whole simulation system were 38.91%, 12.07%, and 32.29%, respectively.
Original languageEnglish
Article number117191
Number of pages10
JournalEnergy Conversion and Management
Volume289
Early online date23 May 2023
DOIs
Publication statusPublished - 1 Aug 2023

Keywords

  • waste tire
  • pressurized catalytic reforming
  • saving energy
  • energy efficieny
  • exergy analysis

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