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Location selection analysis for biological treatment plants for municipal waste

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Języki publikacji
EN
Abstrakty
EN
This article aims to analyze the choice of location for an organic recycling plant for biodegradable waste prepared for small and medium-sized enterprise investments. The analysis is based on a mathematical multi-criteria selection of the best solution, taking into account all the circumstances and making a full description of the selected options. A point analysis of selected locations is made – expert evaluations using the appropriate evaluation criteria - technical, legal, geographical, economic, social.
Rocznik
Strony
1--19
Opis fizyczny
Bibliogr. 29 poz., tab.
Twórcy
autor
  • Warsaw University of Life Sciences (SGGW) Faculty of Production Engineering, Poland
autor
  • Institute of Sociology, Faculty of Philosophy and Sociology University of Warsaw, Poland
  • Institute for Organisation of Production Systems, Faculty of Production Engineering Warsaw University of Technology, Poland
autor
  • Automotive Industry Institute Renewable Energy Department, Poland
  • Institute for Renewable Energy, Poland
autor
  • Automotive Industry Institute, Poland
Bibliografia
  • [1] M. Jacyno, J. Korkosz-Gębska, E. Krasuska, J. Milewski, A. Oniszk-Popławska, D. Trębacz, G. Wójcik, The concept of biogas plants using municipal waste, Energy Market 105 (2) (2013) 69–77.
  • [2] European Parliament and the Council, O.J. of the E. Union: Directive 2008/98/EC on waste and repealing certain Directives (2008).
  • [3] Ernst and Young, Key challenges in municipal waste management in EU-11 countries, in Polish (2011).
  • [4] O. P. Karthikeyan, C. Visvanathan, Bio-energy recovery from high-solid organic substrates by dry anaerobic bioconversion processes: a review, Reviews in Environmental Science and Bio/Technology 12 (2013) 257–284.
  • [5] S. Siebert, M. T. Jungling, Composting and Quality Assurance in Germany, Power Point presentation. Kompost e.V. (2012).
  • [6] L. de Baere, L. Mattheeuws, Anaerobic digestion of solid waste: state-of-the-art, Water Science and Technology 41 (2010) 283–290.
  • [7] S. E. Nayono, Anaerobic digestion of organic solid waste for energy production, Karlsruher Berichte Zur Ingenieurbiologie, 2010.
  • [8] A. Karagiannidis, G. Perkoulidis, A multi-criteria ranking of different technologies for the anaerobic digestion for energy recovery of the organic fraction of municipal solid wastes, Bioresource Technology 100 (2009) 2355–2360.
  • [9] (GUS) Central Statistical Office, Statistical Vademecum Local Government Members, Portraits Counties (2012).
  • [10] U. Beck, In search of the lost security, Vol. 237, Scientific Publishing House SCHOLAR, Warsaw, 2012, Ch. Global risk society, pp. 146–147, translation: Bogdan Baran.
  • [11] A. Jędrczak, Analysis concerning the quantities produced and developed biodegradable waste going, in Polish (2010).
  • [12] VHE - Verband der Humus- und Erdenwirtschaft e.V, VHE Studie Einführung und Optimierung der getrennten Sammlung zur Nutzbarmachung von Bioabfällen, in German (2008).
  • [13] A. Hanc, P. Novak, M. Dvorak, J. Habart, P. Svehla, Composition and parameters of household bio-waste in four seasons, Waste Management 31 (2011) 1450–1460.
  • [14] Ministerium für Umwelt Klima und Energiewirtschaft (MUKE) des Landes Baden-Württemberg, Optimierung des Systems der Bio- und Grünabfallverwertung Ein Leitfaden, in German (2012).
  • [15] A. Bernstad, J. la C. Jansen, A life cycle approach to the management of household food waste – a swedish fullscale case study, Waste Management 31 (2011) 1879–1896.
  • [16] Z.W. Mazowieckiego, Voivodship Waste Management Plan for Mazovia years 2012 - 2017 including the years 2018 - 2023 (2012).
  • [17] F. Jameson, Postmodernism, or the cultural logic of late capitalism, Jagiellonian University Press, Krakow, 2011, translation Maciej Płaza.
  • [18] P. Macnaghten, J. Urry, Natural alternative. The new way of thinking about nature and society, Scientific Publishing House SCHOLAR,Warsaw, 2005, translation Bogdan Baran.
  • [19] M. Pohekar, S. D. Ramachandran, Application of multicriteria decision making tosustainable energy planning - a review, Renewable and Sustainable Energy Reviews 84 (2004) 365–381.
  • [20] G. Vego, S. Kucar-Dragicevic, N. Koprivanac, Application of multi-criteria decision-making on strategic municipal solid waste management in dalmatia, croatia, Waste Management 28 (2008) 2192–2201.
  • [21] G. Zotos, A. Karagiannidis, S. Zampetoglou, A. Malamakis, I.-S. Antonopoulos, S. Kontogianni, G. Tchobanoglous, Developing a holistic strategy for integrated waste management within municipal planning: Challenges, policies, solutions and perspectives for Hellenic municipalities in the zero-waste, low-cost direction, Waste Management 29 (2009) 1686–1692.
  • [22] A. Generowicz, H. Skowron, Integrated Waste Management, PZITS O/Wielkopolski, Poznań, 2009, Ch. Feasibility studies of localization of municipal waste incineration plant in Szczecin – comparison of SWOT and multi– criteria analysis, pp. 199–217.
  • [23] A. Generowicz, Z. Kowalski, M. Banach, A. Makara, The application of multi-criteria analysis in the management of waste in cracow, poland, Waste Management 32 (2) (2012) 349–351.
  • [24] A. Generowicz, A. Kraszewski, Multi-criterial analysis of cracov municipal waste incineration plant location, Archives of Waste Management and Environmental Protection 7 (2008) 73–88.
  • [25] A. Generowicz, Z. Kowalski, J. Kulczycka, Planning of waste management systems in urban area using multicriteria analysis, Journal of Environmental Protection 2 (6) (2011) 736–743.
  • [26] M. K. Korucu, B. Erdagi, A criticism of applications with multi-criteria decision analysis that are used for the site selection for the disposal of municipal solid wastes, Waste Management 32 (2012) 2315–2323.
  • [27] A. J. Morrissey, J. Browne, Waste management models and their application to sustainable waste management, Waste Management 24 (2004) 297–308.
  • [28] M. Książek, Comparative analysis of selected methods of multi-criteria evaluation of investment projects, Civil and Environmental Engineering 2 (2011) 555–561.
  • [29] M. Zeleny, Compromise programming. Multiple criteria decision making, University of South Carolina Press, Columbia, S.C., 1973.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-f0e78af0-dd81-498c-be13-bbf95e463747
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