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Assessing the composition of municipal solid waste in Wales

Author

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  • Burnley, S.J.
  • Ellis, J.C.
  • Flowerdew, R.
  • Poll, A.J.
  • Prosser, H.

Abstract

In many regions and countries, national and international targets have been set for municipal solid waste (MSW) recycling, recovery and diversion from landfill. To develop and implement effective strategies to meet these targets requires reliable information on the composition of all parts of the MSW stream. Previous studies on the composition of MSW in the United Kingdom have covered only some components of the waste stream or very localised geographical areas. This research was designed to obtain and analyse representative samples of all the components of the MSW stream across Wales. Samples were taken of household-colleted waste, civic amenity site waste, commercial waste and litter in nine local authority areas across the country and the waste samples were sorted into categories by material type. A questionnaire survey was also undertaken among the households sampled. The results from the research estimate that 36% of MSW in Wales consists of recyclable material and a further 28% is compostable. Sixty-two percent of this MSW is classed as biodegradable and packaging material accounts for 17% of the total. Electrical and electronic goods account for 2% and 0.8% of the MSW consists of potentially hazardous material.

Suggested Citation

  • Burnley, S.J. & Ellis, J.C. & Flowerdew, R. & Poll, A.J. & Prosser, H., 2007. "Assessing the composition of municipal solid waste in Wales," Resources, Conservation & Recycling, Elsevier, vol. 49(3), pages 264-283.
  • Handle: RePEc:eee:recore:v:49:y:2007:i:3:p:264-283
    DOI: 10.1016/j.resconrec.2006.03.015
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    Cited by:

    1. Gałko, Grzegorz & Mazur, Izabela & Rejdak, Michał & Jagustyn, Barbara & Hrabak, Joanna & Ouadi, Miloud & Jahangiri, Hessam & Sajdak, Marcin, 2023. "Evaluation of alternative refuse-derived fuel use as a valuable resource in various valorised applications," Energy, Elsevier, vol. 263(PD).
    2. Inna Tryhuba & Anatoliy Tryhuba & Taras Hutsol & Vasyl Lopushniak & Agata Cieszewska & Oleh Andrushkiv & Wiesław Barabasz & Anna Pikulicka & Zbigniew Kowalczyk & Vyacheslav Vasyuk, 2024. "European Green Deal: Justification of the Relationships between the Functional Indicators of Bioenergy Production Systems Using Organic Residential Waste Based on the Analysis of the State of Theory a," Energies, MDPI, vol. 17(6), pages 1-25, March.
    3. Giovanni Gadaleta & Sabino De Gisi & Michele Notarnicola, 2021. "Feasibility Analysis on the Adoption of Decentralized Anaerobic Co-Digestion for the Treatment of Municipal Organic Waste with Energy Recovery in Urban Districts of Metropolitan Areas," IJERPH, MDPI, vol. 18(4), pages 1-17, February.
    4. Ogwueleka, Toochukwu Chibueze, 2013. "Survey of household waste composition and quantities in Abuja, Nigeria," Resources, Conservation & Recycling, Elsevier, vol. 77(C), pages 52-60.
    5. Gabriel Pereira Colares da Silva & Fernanda Paula da Costa Assunção & Diogo Oliveira Pereira & Jorge Fernando Hungria Ferreira & Josiane Coutinho Mathews & Débora Prissila Reis Sandim & Higor Ribeiro , 2024. "Analysis of the Gravimetric Composition of Urban Solid Waste from the Municipality of Belém/PA," Sustainability, MDPI, vol. 16(13), pages 1-18, June.
    6. Casey, Donnchadh & McNally, Ciaran & Gibney, Amanda & Gilchrist, Michael D., 2008. "Development of a recycled polymer modified binder for use in stone mastic asphalt," Resources, Conservation & Recycling, Elsevier, vol. 52(10), pages 1167-1174.
    7. Chilton, Tom & Burnley, Stephen & Nesaratnam, Suresh, 2010. "A life cycle assessment of the closed-loop recycling and thermal recovery of post-consumer PET," Resources, Conservation & Recycling, Elsevier, vol. 54(12), pages 1241-1249.

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