Readiness Status of Smart Waste Collection and Processing Technologies for Plastic Waste Recycling DOI
Chaoxia Shan, Andante Hadi Pandyaswargo, Hiroshi Onoda

et al.

Published: Jan. 1, 2025

Language: Английский

Decision analysis for plastic waste gasification considering energy, exergy, and environmental criteria using TOPSIS and grey relational analysis DOI
Rezgar Hasanzadeh, Parisa Mojaver, Taher Azdast

et al.

Process Safety and Environmental Protection, Journal Year: 2023, Volume and Issue: 174, P. 414 - 423

Published: April 15, 2023

Language: Английский

Citations

49

The role of plastic chemical recycling processes in a circular economy context DOI
Qi Liu, Sergio Martinez-Villarreal, Shu Wang

et al.

Chemical Engineering Journal, Journal Year: 2024, Volume and Issue: 498, P. 155227 - 155227

Published: Aug. 30, 2024

Language: Английский

Citations

20

Natural polysaccharides and proteins-based films for potential food packaging and mulch applications: A review DOI

Faqrul Hassan,

Bingnan Mu, Yiqi Yang

et al.

International Journal of Biological Macromolecules, Journal Year: 2024, Volume and Issue: 261, P. 129628 - 129628

Published: Jan. 24, 2024

Language: Английский

Citations

18

MIL-53 (Al) nanostructure for non-steroidal anti-inflammatory drug adsorption in wastewater treatment: Molecular simulation and experimental insights DOI

Iman Salahshoori,

Majid Namayandeh Jorabchi,

Somayeh Ghasemi

et al.

Process Safety and Environmental Protection, Journal Year: 2023, Volume and Issue: 175, P. 473 - 494

Published: May 26, 2023

Language: Английский

Citations

40

Waste plastic to energy storage materials: a state-of-the-art review DOI
Guoqiang Tang,

Wenyuan Qiao,

Zheng Wang

et al.

Green Chemistry, Journal Year: 2023, Volume and Issue: 25(10), P. 3738 - 3766

Published: Jan. 1, 2023

Waste plastics can be recycled for use in energy storage materials ( e.g. , electricity, heat storage, and hydrogen). The study aims to provide a basis further research on the integrated of waste while reducing carbon emissions.

Language: Английский

Citations

31

Environmental Impact of Plastic Recycling in Terms of Energy Consumption: A Comparison of Japan’s Mechanical and Chemical Recycling Technologies DOI Creative Commons
Chaoxia Shan, Andante Hadi Pandyaswargo, Hiroshi Onoda

et al.

Energies, Journal Year: 2023, Volume and Issue: 16(5), P. 2199 - 2199

Published: Feb. 24, 2023

In Japan, mechanical plastic recycling has been widely practiced. recent years, the chemical method gaining interest, especially due to its high-quality products similar virgin materials. Understanding environmental impact of both methods from energy consumption standpoint is crucial so that attempts preserve resources can be based in most energy-sustainable way. This research aims determine and two types technologies (coke oven gasification) by analyzing their usage loads. The results relating electricity water show a 17% share global warming potential (GWP), coke 51%, gasification 32%. Although lower GWP, yields highly valuable byproducts reused processes, such as steam industrial water, reducing overall load. These recovered materials are also potentially useful for other processes an symbiosis ecosystem.

Language: Английский

Citations

26

Recent advances in liquid fuel production from plastic waste via pyrolysis: Emphasis on polyolefins and polystyrene DOI
Soheil Valizadeh,

Behzad Valizadeh,

Myung Won Seo

et al.

Environmental Research, Journal Year: 2024, Volume and Issue: 246, P. 118154 - 118154

Published: Jan. 12, 2024

Language: Английский

Citations

15

Plastic-to-energy: Process and economic–environmental assessment of a recycling technology DOI
Subin Jung, Hyojin Jung, Yuchan Ahn

et al.

Process Safety and Environmental Protection, Journal Year: 2024, Volume and Issue: 183, P. 1051 - 1058

Published: Jan. 23, 2024

Language: Английский

Citations

12

Global Polyethylene Terephthalate (PET) Plastic Supply Chain Resource Metabolism Efficiency and Carbon Emissions Co-Reduction Strategies DOI Open Access

Chenxingyu Duan,

Zhen Wang,

Bingzheng Zhou

et al.

Sustainability, Journal Year: 2024, Volume and Issue: 16(10), P. 3926 - 3926

Published: May 8, 2024

Polyethylene terephthalate (PET) is widely used as a primary plastic packaging material in the global socio-economic system. However, research on metabolic characteristics of PET industry across different countries, particularly regarding entire life cycle supply chain PET, remains insufficient, significantly hindering progress addressing pollution worldwide. This study employs Life Cycle Assessment-Material Flow Analysis (LCA-MFA) method to comprehensively analyze environmental impacts plastics, with focus processes from production disposal 12 regions (covering 41 countries) 2020. By constructing 13 scenarios and analyzing development trajectory plastics 2020 2030, this provides scientific evidence specific strategies for waste reduction emission measures industry. Overall, 2020, (41 consumed 7297.7 kilotons (kt) virgin resin 1189.4 kt recycled resin; 23% was manufactured into materials, 42% went landfills, 35% incinerated. In emitted approximately 534.6 million tons (Mt) carbon dioxide equivalent per year, emissions accounting 46.1%, manufacturing stage 44.7%, treatment 9.2%. Research indicates that under scenario controlled demand, resource efficiency improvement are most effective, potentially reducing by up 40%.

Language: Английский

Citations

9

Process design for plastic waste pyrolysis: Yield analysis and economic assessment DOI
Hyojin Jung, Yuchan Ahn

Computers & Chemical Engineering, Journal Year: 2025, Volume and Issue: unknown, P. 109001 - 109001

Published: Jan. 1, 2025

Language: Английский

Citations

1