The Potential Material Flow of WEEE in a Data-Constrained Environment—The Case of Jordan

Author:

Al-Khatib Laila A.1ORCID,Fraige Feras Y.23ORCID

Affiliation:

1. Environmental Engineering Department, Faculty of Engineering, Al-Hussein Bin Talal University, P.O. Box 25, Ma’an 71111, Jordan

2. Mining & Minerals Engineering Department, Faculty of Engineering, Al-Hussein Bin Talal University, P.O. Box 25, Ma’an 71111, Jordan

3. Mechanical Engineering Department, Faculty of Engineering, Al-Hussein Bin Talal University, P.O. Box 25, Ma’an 71111, Jordan

Abstract

The rising concerns about electric and electronic equipment waste (WEEE) come from the rapid increase in demand for appliances and the decreasing lifetimes of equipment. Setting a sustainable WEEE management system that exploits this secondary resource is paramount to maximize resource efficiency, mitigate its environmental impact, and stimulate the circular economy. This paper aims, for the first time, to quantify the material flow expected from recycling the generated WEEE, propose the number of plants required to recycle this secondary resource, and outline the expected economic and environmental benefits that could be achieved from recycling operations. The findings of material flow calculations show that the amount of steel, copper, and aluminum is predominant in the WEEE composition. Also, the expected metal content in WEEE in 2022 is approximately 26 kt, 3.3 kt, and 2.5 kt, respectively. These are expected to substantially increase to approximately 109 kt, 11.9 kt, and 9 kt for the three metals in 2050, respectively. Other valuable metals are doubling their quantities between 2022 and 2050 to reach approximately 1133 kg silver and 475 kg gold. Approximately, four treatment plants are required to recover these materials in 2030 with relative installation costs of USD 100 million. The forecasted financial revenues of recovering materials included in WEEE and indicators for environmental impact based on life cycle assessment (LCA) are calculated. The results of this study can serve as a preliminary reference for future usage in guiding effective planning for WEEE recycling and sustainable management in the country.

Publisher

MDPI AG

Reference61 articles.

1. Estimation of electronic waste using optimized multivariate grey models;Duman;Waste Manag.,2019

2. Forti, V., Baldé, C.P., Kuehr, R., and Bel, G. (2023, November 22). The Global E-Waste Monitor 2020: Quantities, Flows, and the Circular Economy Potential; United Nations University (UNU)/United Nations Institute for Training and Research (UNITAR)–co-hosted SCYCLE Programme, International Telecommunication Union (ITU) & International Solid Waste Association (ISWA), Bonn-Germany/Geneva-Switzerland/Rotterdam–The Netherland. Available online: https://ewastemonitor.info/wp-content/uploads/2020/11/GEM_2020_def_july1_low.pdf.

3. Evaluation of E-waste materials linked potential consequences to environment in India;Awasthi;Environ. Technol. Innov.,2022

4. Wang, F. (2014). E-Waste: Collect More, Treat Better; Tracking Take-Back System Performance for Eco-Efficient Electronics Recycling|. [Ph.D. Thesis, Delft University of Technology]. Available online: https://repository.tudelft.nl/islandora/object/uuid%3A91404545-dc7b-48c8-b9b5-a37fbf74ce5c.

5. E-waste in the international context—A review of trade flows, regulations, hazards, waste management strategies and technologies for value recovery;Ilankoon;Waste Manag.,2018

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