Mineral grades: an important indicator for environmental impact of mineral exploitation
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Angerer G, Hagelüken C, Thaurer RK, Buchholz P, Herzig P, Wellmer F-W, Gutzmer J, Littke R (2016) Rohstoffe für die Energieversorgung der Zukunft: Geologie – Märkte – Umwelteinflüsse (Schriftenreihe Energiesysteme der Zukunft), München 2016. http://www.acatech.de/fileadmin/user_upload/Baumstruktur_nach_Website/Acatech/root/de/Publikationen/Kooperationspublikationen/ESYS_Analyse_Rohstoffe_fuer_die_Energieversorgung.pdf . Accessed Dec 2018
Berger VI, Singer DA, Bliss JD, Moring BC (2011) Ni-Co laterite deposits of the world - database and tonnage models. U.S. Geological Survey, Reston
Birshan M, Decaix G, Ferreira N, Robinson H (2015) Is there hidden treasure in the mining industry? McKinsey. http://www.mckinsey.com/industries/metals-and-mining/our-insights/is-there-hidden-treasure-in-the-mining-industry . Accessed Dec 2018
Calvo G, Mudd G, Valero A, Valero A (2016) Decreasing ore grades in global metallic mining: a theoretical issue or a global reality? Resources 5:36
Coulomb R, Dietz S, Godunova M, Nielsen TB (2015) Critical minerals today and in 2030: an analysis for OECD countries, OECD Working Papers, No 91
Dehoust, G., Manhart, A., Möck, A., Kießling, L., Vogt, R., Kämper, C., Giegrich, J., Auberger, A., Priester, M., Rechlin, A., Dolega, P (2017) Erörterung ökologischer Grenzen der Primärrohstoffgewinnung und Entwicklung einer Methode zur Bewertung der ökologischen Rohstoffverfügbarkeit zur Weiterentwicklung des Kritikalitätskonzeptes (ÖkoRess I) – Teilbericht Bewertung ökologischer Gefährdungspotenziale bei der Primärgewinnung abiotischer Rohstoffe - Methode für einen standortbezogenen Ansatz, Umweltbundesamt, Dessau-Roßlau
Drielsma JA, Russell-Vaccari A, Drnek T, Brady T, Weihed P, Mistry M, Simbor LP (2016) Mineral resources in life cycle impact assessment-defining the path forward. Int J Life Cycle Assess 21:85–105
EU Commission (2014) Report on critical raw materials for the EU. Report of the Ad hoc Working Group on defining critical raw materials
Gerst MD (2008) Revisiting the cumulative grade-tonnage relationship for major copper ore types economic. Geology 103(3):615–628
Giurco D, Prior T, Mudd G, Mason L, Behrisch J (2010) Peak minerals in Australia. A review of changing impacts and benefits. prepared for CSIRO minerals down under flagship, by the Institute for Sustainable Futures (University of Technology, Sydney) and Department of Civil Engineering (Monash University)
Graedel TE, Harper EM, Nassar NT, Nuss P, Reck BK (2015) Criticality of metals and metalloids. Proc Natl Acad Sci 112(14):4257–4262
Lee B, Preston F, Kooroshy J, Bailey R, Lahn G (2012) Resource Futures. A Chatham House Report. The Royal Institute of International Affairs. http://resourcesfutures.org/downloads/CHJ204_Resources_Futures_WEB_28.01.13.pdf . Accessed Dec 2018
Manhart A, Vogt R, Priester M et al (2018) The environmental criticality of primary raw materials – a new methodology to assess global environmental hazard potentials of minerals and metals from mining. Miner Econ https://doi.org/10.1007/s13563-018-0160-0
Martin HL, Jen L-S (1988) Are ore grades declining? The Canadian experience1939–89. In: Tilton J (ed) World mineral exploration – trends and economic issues. Roderick Eggert and Hans Landsberg
Montani C (2017) 28th Report Marble and stones in the world 2017, Aldus Carrrara
Mudd G (2007) Global trends in gold mining towards quantifying environmental and resource sustainability. Resour Policy 32:42–56
Mudd G (2009) The sustainability of mining in Australia: key production trends and their environmental implications for the future. Research Report No RR5, Department of Civil Engineering, Monash University and Mineral Policy Institute, Revised - April 2009
Mudd G (2010) The environmental sustainability of mining in Australia: key mega trends and constraints. Res Policy 35(2):98–115
Mudd G (2012) Key trends in the resource sustainability of platinum group elements. Ore Geol Rev 46:106–117
Mudd GM (2014) The future of Yellowcake: a global assessment of uranium resources and mining. Sci Total Environ 472(2014):590–607
Mudd G, Ward JM (2008) Will sustainability constraints cause ‘Peak Minerals’? Institute for Sustainable Water Resources/Department of Civil Engineering, Monash University, Melbourne. School of Chemistry, Physics & Earth Science, Flinders University, Adelaide. Australia
Norgate TE, Jahanshahi S, Rankin WJ (2007) Assessing the environmental impact of metal production processes. J Clean Prod 15:838–848
Northey S, Haque N, Mudd G (2013) Using sustainability reporting to assess the environmental footprint of copper mining. J Clean Prod 40:118–128
Northey S, Mohr S, Mudd G, Weng Z, Giurco D (2014) Modelling future copper ore grade decline based on a detailed assessment of copper resources and mining. Resour Conserv Recycl 83:190–201
Petrow OW, Michailow BK, Kimelmann SA, Ledowskich AA, Bawlow NN, Nezhenskii IA, Warobew JJ, Schatow WW, Kapina JS, Nikolaeva LL, Bespalow EW, Boiko MS, Wolkow AW, Sergeew AS, Parschikowa NW, Mirchalewskaja NW (2008) Mineral Resources of Russia (in Russian). Ministry of the Natural Resources of the Russian Federation (VSEGEI), St. Petersburg, p 302
Priester M, Dolega P (2015) Bergbauliche Rohstoffe – Teilprojektbericht ÖkoRess. Berlin
Prior T, Giurco D, Mudd G, Mason L, Behrisch J (2011) Resource depletion, peak minerals and the implications for sustainable resource management. Glob Environ Chang 22(3):577–587
Raw Materials Data Stockholm (2016) A computerised database
Rötzer N, Schmidt M (2018) Sind Erzgehalte ein geeigneter Indikator für die Rohstoffverfügbarkeit? INEC, Pforzheim 2018 (draft, yet unpublished)
Staal Y (2009) Prioritisation of metals regarding their environmental impact. Master thesis, Leiden University, Leiden, the Netherlands. Cited from UNEP (2010). Assessing the environmental impacts of consumption and production, priority products and materials, a report of the working group on the environmental impact of products and materials to the international panel for sustainable resource management. Hertwich, E., van der Voet, E., Suh, S., Tukker, A., Muriguchi, Y
STRADE (2016) Discussion during the STRADE project advisory board meeting, 1/2 September 2017, Brüssel, unpublished minutes from meeting. Project website www.stradeproject.eu
Sverdrup HU, Ragnarsdottir K, Koca D (2015) An assessment of metal supply sustainability as an input to policy: Security of supply extraction rates, stocks-in-use, recycling, and risk of scarcity. J Clean Prod 140:359–372
Technical University Clausthal International mining copper, presentation by prof. H. Tudeshki without year.
Umweltrat (2012) Deutscher Umweltrat: Umweltgutachten 2012
U.S. DOE (2007) U.S. Department of Energy, Mining Industry Energy Bandwidth Study. BCS Incorporated, June 2007
Weber (2015) Leopold Weber, Interpretation von Reserven- und Ressourcenangaben aus wirtschaftsgeologischer Sicht. BHM 160(2):71–78. https://doi.org/10.1007/s00501-015-0347-4 © Springer-Verlag Wien 2015