Plastic recycling in a circular economy; determining environmental performance through an LCA matrix model approach
Переработка пластмасс в циркулярной экономике: определение экологической эффективности с помощью матричной модели LCA
2021-01-08
SCID: 54.1/qzm6dpsr
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circular economyenvironmental performancelife cycle assessment (LCA)plastic recyclingrecycling technologies
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Abstract (AI)
To ensure a circular economy for plastics, insights in the environmental impacts of recycling and optimal recycling choices for specific plastic polymers are crucial. This was obtained by determining the environmental performance of 10 selected recycling technologies with varying TRL levels, using the chemical properties of the top 25 produced polymers in Europe. The results were collected in a life cycle assessment (LCA) ‘matrix’ model. To simulate realistic plastic recycling challenges, case studies of PE/PP foils from municipal waste and ABS plastic with brominated flame retardants were developed, to be used as an addition to the LCA matrix model results. Potential emission reduction was assessed by combining LCA matrix outcomes with European polymer demand data. The LCA matrix model illustrates that potential environmental performance of recycling technologies varied strongly per polymer type and did not always follow the state-of-the-art recycling hierarchy. Commodity plastics performed well with tertiary recycling technologies, such as gasification and pyrolysis to monomers; secondary mechanical recycling was outperformed. A focus on primary recycling is environmentally beneficial for most engineering and high performance plastics. To enhance the performance of primary recycling technologies, a higher purity and improved sorting is required. As demonstrated in the case studies, low sorting efficiencies due to impurities reduces positive environmental impacts. Hence, optimal environmental performance of recycling is obtained where pre-treatment (sorting, cleaning) is adapted to the recycling technology. According to the model, recycling the 15 most demanded polymers in Europe reduces CO2 emissions from plastics by 73% or 200 Mtonne CO2 eq.
Key Findings
1
An LCA matrix model evaluated the environmental performance of 10 plastic recycling technologies across the chemical properties of Europe’s 25 most-produced polymers.
2
Combining appropriate pretreatment with recycling technology is essential; impurities and low sorting efficiency can substantially reduce environmental benefits.
3
Commodity plastics generally achieved better environmental performance with tertiary recycling, including gasification and pyrolysis to monomers, than with secondary mechanical recycling.
4
Modelled recycling of Europe’s 15 most-demanded polymers could reduce plastics-related emissions by 73%, equivalent to 200 Mtonnes of CO2-equivalent emissions.
5
Primary recycling was environmentally preferable for most engineering and high-performance plastics, but required higher material purity and improved sorting.
6
Recycling performance varied substantially by polymer type and did not consistently follow the conventional recycling hierarchy.
Research Object
Plastic polymers and their recycling technologies, including PE/PP foils from municipal waste and ABS plastic containing brominated flame retardants
Research Subject
Environmental performance and CO2-emission reduction of polymer-specific recycling pathways, including the effects of recycling technology, polymer properties, sorting, cleaning, and purity
Publication Details
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2021-01-08
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