Valorization of polymeric fractions and metals from end of life photovoltaic panels

被引:14
|
作者
Rubino, Antonio [1 ]
Schiavi, Pier Giorgio [1 ]
Altimari, Pietro [1 ]
Pagnanelli, Francesca [1 ]
机构
[1] Sapienza Univ Rome, Dept Chem, Ple Aldo Moro 5, I-00185 Rome, Italy
关键词
End of life photovoltaic panels; Recycling; Polymeric material recycling; Silver; Silicon; Metals extraction; CYCLE ASSESSMENT; PV PANELS; RECOVERY; NANOPARTICLES; ENERGY;
D O I
10.1016/j.wasman.2020.12.037
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The increase in the annual flux of the end-of-life photovoltaic panels (EoL-PVPs) imposed the development of effective recycling strategies to reach EU regulation targets (i.e. 80% recycling; 85% recovery, starting from August 2018). The recycling targets in a PVP are generally glass, photovoltaic cell and metals, while no scientific paper or patent addressed polymeric fractions recycling and recovery, i.e. encapsulant polymer (EVA) and backsheet (Tedlar), starting from preliminarily milled EoL-PVPs. In the present study an optimization following the solvent treatment operation of the basic Photolife process (demonstrated at pilot scale), was proposed (lab scale) and validated (micropilot scale), focusing on polymers separation and metals recovery. The optimization was performed by testing 4 different processes. Specifically, the selectivity of the filtration operation (subsequent the solvent treatment) on polymers separation grade was evaluated, demonstrating that Tedlar can be effectively separated from EVA residues. Moreover, in comparison to the basic Photolife, a further operation was introduced treating thermally the EVA residues (containing the PV cell). The metal extraction yields highlighted the effectiveness of that strategy in comparison with direct extraction from the uncombusted EVA residues. Processing 100 Kg of crushed material, 0.03 Kg of Ag, 45.5 Kg of high value glass, 10 Kg of Al scraps and 1.2 Kg of metallic filaments can be recovered. Thanks to the optimization the recycling rate of the implemented process grew up to 82% (75% during demonstration of the basic Photolife process), while the recovery was estimated at 94%. Remarkably, these rates get over with EU Directive. (c) 2021 Elsevier Ltd. All rights reserved.
引用
收藏
页码:89 / 99
页数:11
相关论文
共 50 条
  • [41] Recycling of end of life photovoltaic solar panels and recovery of valuable components: A comprehensive review and experimental validation
    Vinayagamoorthi, R.
    Bhargav, P. Balaji
    Ahmed, Nafis
    Balaji, C.
    Aravinth, K.
    Krishnan, Akhil
    Govindaraj, R.
    Ramasamy, P.
    JOURNAL OF ENVIRONMENTAL CHEMICAL ENGINEERING, 2024, 12 (01):
  • [42] Thermodynamic criteria of the end-of-life silicon wafers refining for closing the recycling loop of photovoltaic panels
    Lu, Xin
    Miki, Takahiro
    Takeda, Osamu
    Zhu, Hongmin
    Nagasaka, Tetsuya
    SCIENCE AND TECHNOLOGY OF ADVANCED MATERIALS, 2019, 20 (01) : 813 - 825
  • [43] Adoption and implementation of extended producer responsibility for sustainable management of end-of-life solar photovoltaic panels
    Kabir, S. E.
    Mondal, M. N. I.
    Islam, M. K.
    Alnaser, I. A.
    Karim, M. R.
    Ibrahim, M. A.
    Sopian, K.
    Akhtaruzzaman, M.
    GLOBAL JOURNAL OF ENVIRONMENTAL SCIENCE AND MANAGEMENT-GJESM, 2023, 9 (05): : 251 - 270
  • [44] Adoption and implementation of extended producer responsibility for sustainable management of end-of-life solar photovoltaic panels
    Kabir, S. E.
    Mondal, M. N. I.
    Islam, M. K.
    Alnaser, I. A.
    Karim, M. R.
    Ibrahim, M. A.
    Sopian, K.
    Akhtaruzzaman, M.
    GLOBAL JOURNAL OF ENVIRONMENTAL SCIENCE AND MANAGEMENT-GJESM, 2023, 9 : 251 - 270
  • [45] Catalytic recovery of metals from end-of-life polycrystalline silicon photovoltaic cells: Experimental insights into silver recovery
    Yashas, Shivamurthy Ravindra
    Ruck, Erez B.
    Demissie, Hailu
    Manor-Korin, Naama
    Gendel, Youri
    WASTE MANAGEMENT, 2023, 171 : 184 - 194
  • [46] Sustainable Recycling of Silicon from End-of-Life Photovoltaic Panels for the Synthesis of Porous Cordierite Via Bischofite-Assisted Chlorination
    Orosco, Pablo
    Barrios, Oriana
    Tunez, Fernando
    Barbosa, Lucia
    SILICON, 2025, 17 (04) : 889 - 903
  • [47] Review on Life Cycle Assessment of Solar Photovoltaic Panels
    Muteri, Vincenzo
    Cellura, Maurizio
    Curto, Domenico
    Franzitta, Vincenzo
    Longo, Sonia
    Mistretta, Marina
    Parisi, Maria Laura
    ENERGIES, 2020, 13 (01)
  • [48] Life Cycle Analysis (LCA) of photovoltaic panels: A review
    Gerbinet, Saicha
    Belboom, Sandra
    Leonard, Angelique
    RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2014, 38 : 747 - 753
  • [49] Third generation of photovoltaic panels: A life cycle assessment
    Krebs-Moberg, Miles
    Pitz, Mandy
    Dorsette, Tiara L.
    Gheewala, Shabbir H.
    RENEWABLE ENERGY, 2021, 164 (164) : 556 - 565
  • [50] Overview of global status and challenges for end-of-life crystalline silicon photovoltaic panels: A focus on environmental impacts
    Seo, Bora
    Kim, Jae Young
    Chung, Jaeshik
    WASTE MANAGEMENT, 2021, 128 : 45 - 54