Please use this identifier to cite or link to this item: https://hdl.handle.net/20.500.14279/29815
Title: Process Simulation Modeling of the Linear Low-Density Polyethylene Catalytic Pyrolysis in a Fluidized Bed Reactor
Authors: Hafeez, Sanaa 
Van Haute, Maarten 
Constantinou, Achilleas 
Al-Salem, Sultan M. 
Major Field of Science: Engineering and Technology
Field Category: Chemical Engineering
Keywords: Fluid catalytic cracking;Fluidized bed furnaces;Fluidized beds;Linear low density polyethylenes;Supersaturation
Issue Date: 26-Apr-2023
Source: Industrial and Engineering Chemistry Research, 2023, vol. 62, iss. 16, pp. 6386 - 6393
Volume: 62
Issue: 16
Start page: 6386
End page: 6393
Abstract: In this work, a comprehensive process simulation was developed to study and predict the pyrolysis of linear low-density polyethylene (LLDPE) in a fluidized bed reactor (FBR). The comprehensive simulation operated at 600 and 700 °C to investigate the pyrolytic oil and wax yields. These products were chosen as they mimic fuel range products available as a renewable fuel and energy source. The results showed that the oil yield decreased from 600 to 700 °C. This is because of an increase in the polyolefin polymer matrix’s vibration leading to an increase in temperature and absorbed thermal energy. In addition, there is a higher gas yield produced and negligible wax formation at 700 °C, which is beneficial in controlling accrued plastic waste (PW), of which polyethylene (PE) represents a vast proportion of via thermo-chemical conversion (TCC) technologies. The detailed process simulation was compared with experimental data under the same technology and operating conditions, and it was found that less than 10% discrepancy was observed between the two sets of data, suggesting a good validation between the two studies. Further studies showed that the diesel fuel lumped hydrocarbon (HC) range (C10-C19) was between 40 and 63% in the pyrolysis oil yield obtained. Moreover, the temperature profiles and fluidized bed distributor parameters were compared and investigated. The current simulation has proven that it can successfully predict the pyrolysis of LLDPE in an FBR.
URI: https://hdl.handle.net/20.500.14279/29815
ISSN: 08885885
DOI: 10.1021/acs.iecr.2c04379
Rights: © American Chemical Society
Attribution-NonCommercial-NoDerivatives 4.0 International
Type: Article
Affiliation : Queen Mary University of London 
LS Europoort Rotterdam 
Cyprus University of Technology 
Kuwait Institute for Scientific Research 
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