Assessing the sustainability of an innovative closed-loop process of mechanical recycling of agricultural stretch film from a life cycle perspective

被引:0
|
作者
Russo, Carlo [1 ]
Wiszumirska, Karolina [2 ]
Wojciechowska, Patrycja [2 ]
Cappelletti, Giulio Mario [1 ]
Nicoletti, Giuseppe Martino [1 ]
Klamecki, Hubert [3 ]
Pawlicka, Agnieszka [3 ]
机构
[1] Univ Foggia, Dept Econ Management & Terr, Via A da Zara 11, Foggia, Italy
[2] Poznan Univ Econ & Business, Inst Qual Sci, Dept Ind Prod & Packaging Qual, Al Niepodleglosci 10, PL-61875 Poznan, Poland
[3] FOLGOS Sp Zoo, Grabonog 67C, PL-63820 Piaski, Poland
关键词
Life cycle assessment (LCA); Mechanical recycling; Stretch film; LLDPE; Agriculture; Circularity; WASTE; LCA;
D O I
10.1016/j.eiar.2024.107800
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The agricultural industry widely uses polymer materials, primarily in the form of films, hoses, nets, plates, and more. Farmers frequently use linear low-density polyethylene (LLDPE), one of many plastics, as stretch film for silage production. Unfortunately, inadequate disposal methods by farmers, such as incineration, burial in the ground, or landfilling, have contributed to significant environmental issues. While the local system for collection, segregation, and processing remains in its infancy, efforts are underway to develop a closed-loop system. This study aims to analyze the technical feasibility, legitimacy, and environmental benefits of mechanically recycling stretch film used in silage production. The research focuses on the methodological aspects of performing a Life Cycle Assessment (LCA) of recycled linear low-density polyethylene (rLLDPE) stretch film used in agriculture. The involvement of FOLGOS- a recycling company and silage film producer specializing in closed- loop processing of stretch film- is highlighted. This study proposes an innovative consequential approach to emphasize the advantages of managing and recycling used plastic materials in terms of reducing virgin material production. Life cycle analysis highlights recycling improvements but demands system expansion, circularity, and material substitution for comprehensive sustainability assessment. The analysis identified critical areas affecting the environmental burden, such as transport, processing, and energy efficiency, as well as the benefits of using secondary raw materials with a known origin compared to virgin material production. The study's findings will facilitate the collection of high-quality, representative process data in the future, helping operators optimize process management.
引用
收藏
页数:12
相关论文
共 44 条
  • [1] Life Cycle Assessment of the Closed-Loop Recycling of Used Disposable Diapers
    Itsubo, Norihiro
    Wada, Mitsuhiro
    Imai, Shigeo
    Myoga, Akira
    Makino, Naoki
    Shobatake, Koichi
    RESOURCES-BASEL, 2020, 9 (03):
  • [2] Direct recycling of lithium ion batteries from electric vehicles for closed-loop life cycle impact mitigation
    Shen, Kang
    Yuan, Chris
    Hauschild, Michael
    CIRP ANNALS-MANUFACTURING TECHNOLOGY, 2023, 72 (01) : 13 - 16
  • [3] A life cycle assessment of the closed-loop recycling and thermal recovery of post-consumer PET
    Chilton, Tom
    Burnley, Stephen
    Nesaratnam, Suresh
    RESOURCES CONSERVATION AND RECYCLING, 2010, 54 (12) : 1241 - 1249
  • [4] Towards closed-loop concrete recycling: Life cycle assessment and multi-criteria analysis
    Shmlls, Maysam
    Abed, Mohammed
    Fort, Jan
    Horvath, Tamas
    Bozsaky, David
    JOURNAL OF CLEANER PRODUCTION, 2023, 410
  • [5] Life cycle and circularity metrics to measure the sustainability of closed-loop agri-food pathways
    Falcone, Giacomo
    Stillitano, Teodora
    Iofrida, Nathalie
    Spada, Emanuele
    Bernardi, Bruno
    Gulisano, Giovanni
    De Luca, Anna Irene
    FRONTIERS IN SUSTAINABLE FOOD SYSTEMS, 2022, 6
  • [6] An evaluation of life cycle assessment and its application to the closed-loop recycling of carbon fibre reinforced polymers
    Tapper, Rhys J.
    Longana, Marco L.
    Norton, Andrew
    Potter, Kevin D.
    Hamerton, Ian
    COMPOSITES PART B-ENGINEERING, 2020, 184
  • [7] A closed-loop electrogenerative recycling process for recovery of silver from a diluted cyanide solution
    Suah, Faiz Bukhari Mohd
    Teh, Bee Ping
    Mansor, Nadia
    Hamzah, Hairul Hisham
    Mohamed, Norita
    RSC ADVANCES, 2019, 9 (54) : 31753 - 31757
  • [8] A novel perspective on closed-loop supply chain coordination: Product life-cycle approach
    Asl-Naja, Javad
    Yaghoubi, Saeed
    JOURNAL OF CLEANER PRODUCTION, 2021, 289
  • [9] Development of a closed-loop process for fusel alcohol production and nutrient recycling from microalgae biomass
    Liu, Fang
    Lane, Pamela
    Hewson, John C.
    Stavila, Vitalie
    Tran-Gyamfi, Mary B.
    Hamel, Michele
    Lane, Todd W.
    Davis, Ryan W.
    BIORESOURCE TECHNOLOGY, 2019, 283 : 350 - 357
  • [10] Identification of the environmental hotspots of a recycling process- Case study of a Pt PEMFC catalyst closed-loop recycling system evaluated via life cycle assessment methodology
    Bauer, Tom
    Singh, Kiranpal
    Mandil, Guillaume
    Svecova, Lenka
    Dubau, Laetitia
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2024, 63 : 396 - 410