Proceedings of ESCAPE 36ISSN: 2818-4734
Volume: 5 (2026)
Table of Contents
LAPSE:2026.0202
Published Article
LAPSE:2026.0202
Development of a Novel Microwave-assisted Process that Converts Mixed Plastic Waste to Olefins and Aromatics
Aseel Al-Sakkaf, Chunlin Luo, Yuxin Wang, Srinivas Palanki
June 12, 2026
Abstract
Plastic waste represents an abundant and underutilized resource that can be converted into valuable products through microwave-assisted pyrolysis. In this research, a novel microwave-assisted processing plant that converts mixed plastic waste to olefins and aromatics is developed and simulated on Aspen Plus (v.14) guided by laboratory-scale experimental data. The experimental results show that at a bulk temperature of 400°C and ambient pressure, approximately 95% of a solid waste plastic feed comprised of equal portions of polypropylene and polyethylene is converted to gases, with nearly two-thirds of the resulting effluent gas composed of olefins. Simulation results show that 2889.1 kg/h propylene, 2088.0 kg/h ethylene and 96.3 kg/h aromatics (benzene and toluene) are produced as main products from 8000 kg/h of mixed plastic feed. High-purity propane and ethane streams were also recovered and sold as byproducts. A technoeconomic analysis is subsequently conducted, revealing that the proposed novel plant achieves a positive net present value of USD 61.6 million at a processing capacity of 8000 kg/h of mixed plastic waste feed. The levelized cost of propylene production is also calculated to be USD 481.1 per ton, estimated while keeping the price of the other coproducts fixed at their average market selling price. Such results confirm the economic feasibility of the microwave-assisted novel plant at the investigated scale.
Keywords
Microwave-assisted Heating, Plastic Waste Pyrolysis, Process Design, Technoeconomic Analysis
Suggested Citation
Al-Sakkaf A, Luo C, Wang Y, Palanki S. Development of a Novel Microwave-assisted Process that Converts Mixed Plastic Waste to Olefins and Aromatics. Systems and Control Transactions 5:11-17 (2026) https://doi.org/10.69997/sct.111177
Author Affiliations
Al-Sakkaf A:
Luo C:
Wang Y:
Palanki S:
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Journal Name
Systems and Control Transactions
Volume
5
First Page
11
Last Page
17
Year
2026
Publication Date
2026-06-12
Version Comments
Original Submission
Other Meta
PII: 0011-0017-31-SCT-5-2026, Publication Type: Journal Article
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LAPSE:2026.0202
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References Cited
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