Knowledge Agora



Similar Articles

Title Solvent based dissolution-precipitation of waste polyethylene terephthalate: economic and environmental performance metrics
ID_Doc 14355
Authors Chaudhari, US; Kulas, DG; Peralta, A; Hossain, T; Johnson, AT; Hartley, DS; Handler, RM; Reck, BK; Thompson, VS; Watkins, DW; Shonnard, DR
Title Solvent based dissolution-precipitation of waste polyethylene terephthalate: economic and environmental performance metrics
Year 2023
Published Rsc Sustainability, 1, 7
Abstract Polyethylene terephthalate (PET) is one of the highest production volume polymer resins, with wide ranging applications in consumer packaging. Due to challenges in closed-loop recycling of PET, recycle rates in the U.S. are low (13% compared to PET resin converted), with the vast majority landfilled or leaked to the environment at the end of life. Solvent based dissolution and precipitation recycling technology has the potential to achieve closed-loop recycling of PET in food packaging and help achieve a circular economy for plastics. However, this technology is still in the early stages of development and there is an urgent need to understand the economic costs and environmental impacts to select promising process pathways. In this study, we analyze three precipitation process configurations for production of high-quality PET resin from post-consumer waste PET using gamma-valerolactone as the solvent: (i) anti-solvent using water, (ii) solvent evaporation, and (iii) cooling of the dissolved polymer solution. The process conditions and yields were obtained from literature sources, and process simulation was employed to estimate energy consumption and process economics. Using standard chemical engineering techno-economic analysis (TEA) assumptions and current market prices, the anti-solvent process was found to be the least profitable compared to evaporation or cooling precipitation methods, although all exhibited positive net present values. The environmental life cycle assessment (LCA) results revealed that the anti-solvent process produced 60% higher greenhouse gas (GHG) emissions compared to fossil virgin PET, but the evaporation and cooling processes reduced GHG emissions by about 50%. The sensitivity of the results to process and recycling system parameters were thoroughly investigated. Evaluating six economic and two environmental performance metrics for recycling of waste PET via solvent-based dissolution-precipitation processes.
PDF https://pubs.rsc.org/en/content/articlepdf/2023/su/d3su00231d

Similar Articles

ID Score Article
14519 Ghosal, K; Nayak, C Recent advances in chemical recycling of polyethylene terephthalate waste into value added products for sustainable coating solutions - hope vs. hype(2022)Materials Advances, 3, 4
25296 Uekert, T; Singh, A; DesVeaux, JS; Ghosh, T; Bhatt, A; Yadav, G; Afzal, S; Walzberg, J; Knauer, KM; Nicholson, SR; Beckham, GT; Carpenter, AC Technical, Economic, and Environmental Comparison of Closed- Loop Recycling Technologies for Common Plastics(2023)Acs Sustainable Chemistry & Engineering, 11, 3
12478 Anglou, E; Ganesan, A; Golabek, KM; Chang, YC; Fu, Q; Bradley, W; Jones, CW; Sievers, C; Nair, S; Boukouvala, F Process development and techno-economic analysis for mechanochemical recycling of poly(ethylene terephthalate)(2024)
19394 Duan, CXY; Wang, Z; Zhou, BZ; Yao, XL Global Polyethylene Terephthalate (PET) Plastic Supply Chain Resource Metabolism Efficiency and Carbon Emissions Co-Reduction Strategies(2024)Sustainability, 16.0, 10
28305 Enache, AC; Grecu, I; Samoila, P Polyethylene Terephthalate (PET) Recycled by Catalytic Glycolysis: A Bridge toward Circular Economy Principles(2024)Materials, 17.0, 12
6476 Brivio, L; Tollini, F PET recycling: Review of the current available technologies and industrial perspectives(2022)
22015 Caputto, MDD; Navarro, R; Valentín, JL; Marcos-Fernández, A Chemical upcycling of poly(ethylene terephthalate) waste: Moving to a circular model(2022)Journal Of Polymer Science, 60.0, 24
4190 Gracida-Alvarez, UR; Xu, H; Benavides, PT; Wang, MC; Hawkins, TR Circular Economy Sustainability Analysis Framework for Plastics: Application for Poly(ethylene Terephthalate) (PET)(2023)Acs Sustainable Chemistry & Engineering, 11, 2
21899 Eriksen, MK; Christiansen, JD; Daugaard, AE; Astrup, TF Closing the loop for PET, PE and PP waste from households: Influence of material properties and product design for plastic recycling(2019)
18564 Helmes, RJK; Goglio, P; Salomoni, S; van Es, DS; Gursel, IV; Aramyan, L Environmental Impacts of End-of-Life Options of Biobased and Fossil-Based Polyethylene Terephthalate and High-Density Polyethylene Packaging(2022)Sustainability, 14.0, 18
Scroll