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Life cycle assessment of waste-derived Humic-Like Substances in near-neutral photo-Fenton water treatment
Linked Sessions:
Main Presenter: Gaia Mattarello
Co-Authors: Dimitrios Ziotas Luca Ciacci Daniele Cespi Fabrizio Passarini Antonio Arques
Photo-Fenton process is recognized as an effective advanced oxidation process for the removal of Contaminants of Emerging Concern (CECs) and their transformation products from wastewater [1]. However, this reaction has an optimum pH of 2.8 to prevent iron deactivation, so a pre acidification step and post treatment neutralization step are required, which increase the complexity of the process, economic costs and environmental impacts [2]. Recent studies have highlighted the ability of humic-like substances (HLS), particularly those derived from organic wastes, to act as chelating agents in photo-Fenton process conducted in mild conditions (near-neutral pH) [3], but the environmental implications of producing and employing these substances, over their life cycle, remain uncertain. As highlighted by Gallego-Schmid et al. 2019 [4], photo-Fenton process carried out in mild conditions might be environmentally more impactful than the conventional photo-Fenton , particularly due to the
addition of complexing agents. Unlike synthetic chelating agents such as EDDS (ethylenediamine N,N′ disuccinic acid), whose production can contribute significantly to the overall environmental burdens of the process, HLS from organic waste may potentially offer a more sustainable alternative, an assumption that requires verification. To this aim, in this study life cycle assessment (LCA) is applied to two photo-Fenton scenarios for the treatment of an artificial wastewater with five CECs: the conventional process operated at acidic pH and near-neutral pH photo-Fenton through the addition of waste-derived HLS. The system boundaries included HLS isolation from waste, with a specific focus on grape bagasse as a representative agro-industrial residue and their application in a solar-simulated photo-Fenton process, to treat 250 ml artificial wastewater with five CECs, set as functional unit. Primary data were used to model process performance, while background data were sourced from LCI
databases. The preliminary results show that the main environmental impacts are associated with energy consumption, due to HLS production. The environmental impacts of the photo-Fenton process are highly dependent on the local energy mix. Regions (e.g. Spain) with cleaner energy sources will experience lower impacts from energy consumption. As a future perspective, this study could be further expanded by incorporating the potential impacts of the final presence of transformation by-products in the effluents. The study supports the development of more sustainable water treatment solutions by integrating circular economy strategies with life cycle thinking.