An Overview of Seabed Mining Including the Current State of Development, Environmental Impacts, and Knowledge Gaps

被引:392
作者
Miller, Kathryn A. [1 ]
Thompson, Kirsten F. [1 ,2 ]
Johnston, Paul [1 ]
Santillo, David [1 ]
机构
[1] Univ Exeter, Greenpeace Res Labs, Coll Life & Environm Sci, Innovat Ctr Phase 2, Exeter, Devon, England
[2] Univ Exeter, Biosci, Coll Life & Environm Sci, Exeter, Devon, England
关键词
deep sea mining; biodiversity loss; seabed disturbance; regulations; manganese nodule; seamount; hydrothermal vent; International Seabed Authority; FLOOR MASSIVE SULFIDES; HYDROTHERMAL VENTS; PACIFIC-OCEAN; BENTHIC COMMUNITIES; GLOBAL INVENTORY; DEEP; SEAMOUNTS; GROWTH; BIODIVERSITY; BIOGEOGRAPHY;
D O I
10.3389/fmars.2017.00418
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Rising demand for minerals and metals, including for use in the technology sector, has led to a resurgence of interest in exploration of mineral resources located on the seabed. Such resources, whether seafloor massive (polymetallic) sulfides around hydrothermal vents, cobalt-rich crusts (CRCs) on the flanks of seamounts or fields of manganese (polymetallic) nodules on the abyssal plains, cannot be considered in isolation of the distinctive, in some cases unique, assemblages of marine species associated with the same habitats and structures. In addition to mineral deposits, there is interest in extracting methane from gas hydrates on continental slopes and rises. Many of the regions identified for future seabed mining are already recognized as vulnerable marine ecosystems (VMEs). Since its inception in 1982, the International Seabed Authority (ISA), charged with regulating human activities on the deep-sea floor beyond the continental shelf, has issued 27 contracts for mineral exploration, encompassing a combined area of more than 1.4 million km(2), and continues to develop rules for commercial mining. At the same time, some seabed mining operations are already taking place within continental shelf areas of nation states, generally at relatively shallow depths, and with others at advanced stages of planning. The first commercial enterprise, expected to target mineral-rich sulfides in deeper waters, at depths between 1,500 and 2,000 m on the continental shelf of Papua New Guinea, is scheduled to begin early in 2019. In this review, we explore three broad aspects relating to the exploration and exploitation of seabed mineral resources: (1) the current state of development of such activities in areas both within and beyond national jurisdictions, (2) possible environmental impacts both close to and more distant from mining activities and (3) the uncertainties and gaps in scientific knowledge and understanding which render baseline and impact assessments particularly difficult for the deep sea. We also consider whether there are alternative approaches to the management of existing mineral reserves and resources, which may reduce incentives for seabed mining.
引用
收藏
页数:24
相关论文
共 134 条
[21]   The impacts of deep-sea fisheries on benthic communities: a review [J].
Clark, Malcolm R. ;
Althaus, Franziska ;
Schlacher, Thomas A. ;
Williams, Alan ;
Bowden, David A. ;
Rowden, Ashley A. .
ICES JOURNAL OF MARINE SCIENCE, 2016, 73 :51-69
[22]   Science Priorities for Seamounts: Research Links to Conservation and Management [J].
Clark, Malcolm R. ;
Schlacher, Thomas A. ;
Rowden, Ashley A. ;
Stocks, Karen I. ;
Consalvey, Mireille .
PLOS ONE, 2012, 7 (01)
[23]   An index to assess the risk to stony corals from bottom trawling on seamounts [J].
Clark, Malcolm R. ;
Tittensor, Derek P. .
MARINE ECOLOGY-AN EVOLUTIONARY PERSPECTIVE, 2010, 31 :200-211
[24]   The Ecology of Seamounts: Structure, Function, and Human Impacts [J].
Clark, Malcolm R. ;
Rowden, Ashley A. ;
Schlacher, Thomas ;
Williams, Alan ;
Consalvey, Mireille ;
Stocks, Karen I. ;
Rogers, Alex D. ;
O'Hara, Timothy D. ;
White, Martin ;
Shank, Timothy M. ;
Hall-Spencer, Jason M. .
ANNUAL REVIEW OF MARINE SCIENCE, 2010, 2 :253-278
[25]   Sedimentation, stratigraphy and physical properties of sediment on the Juan de Fuca Ridge [J].
Costa, K. M. ;
McManus, J. F. ;
Boulahanis, B. ;
Carbotte, S. M. ;
Winckler, G. ;
Huybers, P. J. ;
Langmuir, C. H. .
MARINE GEOLOGY, 2016, 380 :163-173
[26]   Naturally occurring bioluminescence on the deep-sea floor [J].
Craig, Jessica ;
Jamieson, Alan J. ;
Bagley, Philip M. ;
Priede, Imants G. .
JOURNAL OF MARINE SYSTEMS, 2011, 88 (04) :563-567
[27]   Resurrection of Mesoplodon hotaula Deraniyagala 1963: A new species of beaked whale in the tropical Indo-Pacific [J].
Dalebout, Merel L. ;
Baker, C. Scott ;
Steel, Debbie ;
Thompson, Kirsten ;
Robertson, Kelly M. ;
Chivers, Susan J. ;
Perrin, William F. ;
Goonatilake, Manori ;
Anderson, R. Charles ;
Mead, James G. ;
Potter, Charles W. ;
Thompson, Lisa ;
Jupiter, Danielle ;
Yamada, Tadasu K. .
MARINE MAMMAL SCIENCE, 2014, 30 (03) :1081-1108
[28]   Challenging the paradigms of deep-sea ecology [J].
Danovaro, Roberto ;
Snelgrove, Paul V. R. ;
Tyler, Paul .
TRENDS IN ECOLOGY & EVOLUTION, 2014, 29 (08) :465-475
[29]   Methane hydrates as potential energy resource: Part 1-Importance, resource and recovery facilities [J].
Demirbas, Ayhan .
ENERGY CONVERSION AND MANAGEMENT, 2010, 51 (07) :1547-1561
[30]  
Department for Environment Food and Rural Affairs, 2012, RES SEC ACT PLAN MAK