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Exploring the feasibility of Co-gasification of biomass and EVA from End-of-Life solar panels

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  • Ajorloo, Mojtaba
  • Ghodrat, Maryam
  • Scott, Jason
  • Strezov, Vladimir
  • Zhuo, Yuting
  • Shen, Yansong

Abstract

The ongoing uptake of solar panel technology driven by the growing renewable energy use by society means their End-of-Life management is becoming an increasingly significant challenge. Ethylene vinyl acetate (EVA) is an integral component of solar panels and requires an effective management strategy during panel disposal. In this work, managing EVA waste by blending it with biomass and treatment by air gasification is examined. Additionally, the synergistic effects of adding EVA to biomass are explored to determine the potential benefits of combining this plastic waste with biomass. The influence of temperature (T), equivalence ratio (ER), and plastic-to-biomass ratio (P/B) on product distribution is assessed and any synergy arising from biomass integration identified. Response surface methodology (RSM) and analysis of variance (ANOVA) approaches were used to evaluate the interdependency of the variables with empirical correlations then developed to estimate the gas composition. Adding biomass to the EVA is found to enhance the thermal degradation of both feedstocks and reduce char yield with the synergistic effect being more pronounced in air and at lower EVA:biomass ratios. Higher temperature, lower ER and P/B conditions favour hydrogen production with less tar. The ANOVA data suggests that the interdependencies between T-ER and ER-P/B are effective in this system. The optimisation results indicate that the optimal condition to maximise favourable gas components and minimise tar production is at 790 °C, 0.17 ER, and 25 P/B ratio. Even at low blending ratios, adding EVA enhances tar quality by reducing the number of oxygenated compounds in the tar and by increasing the volume of hydrocarbons. The findings suggest that adding biomass to EVA prior to gasification is a promising approach that will assist with managing disposed solar cells with capacity to value-add to the waste material.

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  • Ajorloo, Mojtaba & Ghodrat, Maryam & Scott, Jason & Strezov, Vladimir & Zhuo, Yuting & Shen, Yansong, 2024. "Exploring the feasibility of Co-gasification of biomass and EVA from End-of-Life solar panels," Energy, Elsevier, vol. 313(C).
  • Handle: RePEc:eee:energy:v:313:y:2024:i:c:s0360544224036776
    DOI: 10.1016/j.energy.2024.133899
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    1. Eric N. Coker & Xavier Lujan-Flores & Burl Donaldson & Nadir Yilmaz & Alpaslan Atmanli, 2023. "An Assessment of the Conversion of Biomass and Industrial Waste Products to Activated Carbon," Energies, MDPI, vol. 16(4), pages 1-14, February.
    2. Yahaya, Ahmad Zubair & Somalu, Mahendra Rao & Muchtar, Andanastuti & Sulaiman, Shaharin Anwar & Wan Daud, Wan Ramli, 2019. "Effect of particle size and temperature on gasification performance of coconut and palm kernel shells in downdraft fixed-bed reactor," Energy, Elsevier, vol. 175(C), pages 931-940.
    3. Mariyam, Sabah & Shahbaz, Muhammad & Al-Ansari, Tareq & Mackey, Hamish. R & McKay, Gordon, 2022. "A critical review on co-gasification and co-pyrolysis for gas production," Renewable and Sustainable Energy Reviews, Elsevier, vol. 161(C).
    4. Ajorloo, Mojtaba & Ghodrat, Maryam & Scott, Jason & Strezov, Vladimir, 2024. "Experimental analysis of the effects of feedstock composition on the plastic and biomass Co-gasification process," Renewable Energy, Elsevier, vol. 231(C).
    5. Fan, Yongsheng & Lu, Dongsheng & Wang, Jiawei & Kawamoto, Haruo, 2022. "Thermochemical behaviors, kinetics and bio-oils investigation during co-pyrolysis of biomass components and polyethylene based on simplex-lattice mixture design," Energy, Elsevier, vol. 239(PC).
    6. Déparrois, N. & Singh, P. & Burra, K.G. & Gupta, A.K., 2019. "Syngas production from co-pyrolysis and co-gasification of polystyrene and paper with CO2," Applied Energy, Elsevier, vol. 246(C), pages 1-10.
    7. Burra, K.G. & Gupta, A.K., 2018. "Synergistic effects in steam gasification of combined biomass and plastic waste mixtures," Applied Energy, Elsevier, vol. 211(C), pages 230-236.
    8. Li, Jinhu & Burra, Kiran Raj G. & Wang, Zhiwei & Liu, Xuan & Gupta, Ashwani K., 2021. "Co-gasification of high-density polyethylene and pretreated pine wood," Applied Energy, Elsevier, vol. 285(C).
    9. Abbas-Abadi, Mehrdad Seifali & Van Geem, Kevin M. & Fathi, Maryam & Bazgir, Hossein & Ghadiri, Mohammad, 2021. "The pyrolysis of oak with polyethylene, polypropylene and polystyrene using fixed bed and stirred reactors and TGA instrument," Energy, Elsevier, vol. 232(C).
    10. Han, Si Woo & Lee, Jeong Jae & Tokmurzin, Diyar & Lee, Seok Hyeong & Nam, Ji Young & Park, Sung Jin & Ra, Ho Won & Mun, Tae-Young & Yoon, Sang Jun & Yoon, Sung Min & Moon, Ji Hong & Lee, Jae Goo & Kim, 2022. "Gasification characteristics of waste plastics (SRF) in a bubbling fluidized bed: Effects of temperature and equivalence ratio," Energy, Elsevier, vol. 238(PC).
    11. Ajorloo, Mojtaba & Ghodrat, Maryam & Scott, Jason & Strezov, Vladimir, 2022. "Modelling and statistical analysis of plastic biomass mixture co-gasification," Energy, Elsevier, vol. 256(C).
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    1. Ajorloo, Mojtaba & Ghodrat, Maryam & Scott, Jason & Strezov, Vladimir, 2024. "Experimental analysis of the effects of feedstock composition on the plastic and biomass Co-gasification process," Renewable Energy, Elsevier, vol. 231(C).

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