Threatened by mining, polymetallic nodules are required to preserve abyssal epifauna
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Ann Vanreusel | A. Vanreusel | L. Menot | P. M. Arbizu | A. Hilário | Lenaick Menot | Ana Hilario | Pedro A. Ribeiro | Pedro Martínez Arbizu | P. Ribeiro | Lénaick Menot
[1] T. Radziejewska. Responses of Deep‐Sea Meiobenthic Communities to Sediment Disturbance Simulating Effects of Polymetallic Nodule Mining , 2002 .
[2] Jacob Cohen. Statistical Power Analysis for the Behavioral Sciences , 1969, The SAGE Encyclopedia of Research Design.
[3] J. Sarrazin,et al. Ferromanganese nodule fauna in the Tropical North Pacific Ocean: Species richness, faunal cover and spatial distribution , 2007 .
[4] Rahul Sharma,et al. Sediment redistribution during simulated benthic disturbance and its implications on deep seabed mining , 2001 .
[5] Jennifer M. Durden,et al. Abyssal hills - hidden source of increased habitat heterogeneity, benthic megafaunal biomass and diversity in the deep sea , 2015 .
[6] S D Gaines,et al. From principles to practice: a spatial approach to systematic conservation planning in the deep sea , 2013, Proceedings of the Royal Society B: Biological Sciences.
[7] L. Levin,et al. A Call for Deep-Ocean Stewardship , 2014, Science.
[8] Roberto Danovaro,et al. Ecological restoration in the deep sea: Desiderata , 2014 .
[9] V. Tilot. Biodiversity and distribution of the megafauna. Vol. 1: the polymetallic nodule ecosystem of the Eastern Equatorial Pacific Ocean , 2006 .
[10] C. V. Van Dover. Tighten regulations on deep-sea mining. , 2011, Nature.
[11] H. Thiel,et al. The large-scale environmental impact experiment DISCOL—reflection and foresight , 2001 .
[12] S. Kasten,et al. Impact of depositional and biogeochemical processes on small scale variations in nodule abundance in the Clarion‐Clipperton Fracture Zone , 2014 .
[13] Martin Funk,et al. Very high‐elevation Mont Blanc glaciated areas not affected by the 20th century climate change , 2007 .
[14] J. Aronson,et al. Ecology: Protect the deep sea , 2014, Nature.
[15] V. Trenkel,et al. Do visual transects provide true population density estimates for deepwater fish , 2004 .
[16] V. Tilot. The polymetallic nodule ecosystem of the Eastern Equatorial Pacific Ocean , 2006 .
[17] Jürgen Sündermann,et al. Long-term propagation of tailings from deep-sea mining under variable conditions by means of numerical simulations , 2001 .
[18] Lisa M. Wedding,et al. Managing mining of the deep seabed , 2015, Science.
[19] Roberto Danovaro,et al. Deep, diverse and definitely different: unique attributes of the world's largest ecosystem , 2010 .
[20] F. Chavez,et al. Primary production in the eastern tropical Pacific: A review , 2006 .
[21] Vikki Gunn,et al. Seabed mining: International Seabed Authority environmental management plan for the Clarion–Clipperton Zone. A partnership approach , 2014 .
[22] A. Khripounoff,et al. Geochemical and biological recovery of the disturbed seafloor in polymetallic nodule fields of the Clipperton‐Clarion Fracture Zone (CCFZ) at 5,000‐m depth , 2006 .
[23] O. H. Lowry. Academic press. , 1972, Analytical chemistry.
[24] Ken Caldeira,et al. Seasonal rhythms of net primary production and particulate organic carbon flux to depth describe the efficiency of biological pump in the global ocean , 2007 .
[25] P. Halbach,et al. The metallic minerals of the Pacific Seafloor , 1980 .
[26] L. Menot,et al. A Reverse Taxonomic Approach to Assess Macrofaunal Distribution Patterns in Abyssal Pacific Polymetallic Nodule Fields , 2015, PloS one.
[27] Robert C. Wolpert,et al. A Review of the , 1985 .
[28] H. Thiel. Evaluation of the environmental consequences of polymetallic nodule mining based on the results of the TUSCH Research Association , 2001 .
[29] P. Tyler,et al. Man and the Last Great Wilderness: Human Impact on the Deep Sea , 2011, PloS one.