Decentralized Fractional Pyrolysis of Polyolefin Waste Using Passive Air-Cooled Condensers: A Zero-Electricity, Low-Capital System Developed at Mulungushi University, Zambia
Authors
Innovator/Technician Mulungushi University (Zambia)
Deputy Vice Chancellor Research and Innovation Mulungushi University (Zambia)
Directorate of Research and Innovation Mulungushi University (Zambia)
Chemistry Technician, Mulungushi University (Zambia)
Resident Engineer Mulungushi University (Zambia)
Article Information
DOI: 10.51584/IJRIAS.2026.11070177
Subject Category: Engineering & Technology
Volume/Issue: 11/7 | Page No: 2435-2456
Publication Timeline
Submitted: 2026-08-05
Accepted: 2026-08-10
Published: 2026-08-18
Abstract
The escalating accumulation of plastic waste presents a severe environmental challenge across Zambia, where municipal waste management infrastructure remains limited and recycling rates are critically low. This article presents a novel, low-cost apparatus and method for the pyrolytic conversion of plastic waste, specifically High-Density Polyethylene (HDPE) and Low-Density Polyethylene (LDPE), into separated liquid hydrocarbon fuels. The system was designed, constructed, and experimentally validated at Mulungushi University in Kabwe, Zambia, using only locally available materials including reclaimed steel drums, clay soil, and metal pipe. The apparatus comprises a sealable metal drum reactor heated by an external biomass furnace, a unique mud-based air-tight seal, and a series of at least three passively air-cooled condensers. Unlike conventional pyrolysis systems requiring active temperature control, catalysts, or grid electricity, this design establishes a natural thermal gradient across the condenser series, effecting fractional condensation without any moving parts or external energy inputs. Ten experimental runs conducted at Mulungushi University demonstrated that the first condenser yields a petrol-diesel mixture, while subsequent condensers produce petrol-rich fractions. The average total liquid yield was 10.2 kg from 15 kg of HDPE feedstock, representing a mass conversion efficiency of 68%. A comprehensive energy balance revealed an overall thermal efficiency of 73%. Fuel property analysis confirmed that the fractions exhibit properties comparable to commercial petrol and diesel, with density ranging from 680 to 810 kg/m³ and gross calorific values between 44.8 and 45.5 MJ/kg. This apparatus offers a scalable, decentralized solution for Zambian communities, small-scale entrepreneurs, and rural institutions to transform waste plastic into usable fuel, simultaneously addressing urban plastic pollution and energy poverty. The technology is constructed entirely from materials available in any Zambian town or village and operates using waste biomass such as maize stalks, groundnut shells, or scrap wood. Preliminary economic analysis indicates a payback period of 4-6 months for small-scale operation, suggesting viable commercial potential.
Keywords
Pyrolysis, plastic waste, fractional condensation, HDPE, LDPE, biomass heating, low-cost technology, Zambia, Mulungushi University, circular economy, appropriate technology.
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References
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