Integrating Climate Change Resilience Features into the Incremental Refinement of an Existing Marine Park

被引:14
作者
Davies, Harriet N. [1 ]
Beckley, Lynnath E. [1 ]
Kobryn, Halina T. [1 ]
Lombard, Amanda T. [2 ]
Radford, Ben [3 ]
Heyward, Andrew [3 ]
机构
[1] Murdoch Univ, Sch Vet & Life Sci, Perth, WA, Australia
[2] Nelson Mandela Metropolitan Univ, Inst Coastal & Marine Res, Port Elizabeth, South Africa
[3] Australian Inst Marine Sci, Perth, WA, Australia
关键词
CORAL-REEFS; BIODIVERSITY CONSERVATION; PROTECTED AREAS; RESERVE DESIGN; PHASE-SHIFTS; TRADE-OFFS; NINGALOO; SYSTEM; COMMUNITIES; TEMPERATURE;
D O I
10.1371/journal.pone.0161094
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Marine protected area (MPA) designs are likely to require iterative refinement as new knowledge is gained. In particular, there is an increasing need to consider the effects of climate change, especially the ability of ecosystems to resist and/or recover from climate-related disturbances, within the MPA planning process. However, there has been limited research addressing the incorporation of climate change resilience into MPA design. This study used Marxan conservation planning software with fine-scale shallow water (<20 m) bathymetry and habitat maps, models of major benthic communities for deeper water, and comprehensive human use information from Ningaloo Marine Park in Western Australia to identify climate change resilience features to integrate into the incremental refinement of the marine park. The study assessed the representation of benthic habitats within the current marine park zones, identified priority areas of high resilience for inclusion within no-take zones and examined if any iterative refinements to the current no-take zones are necessary. Of the 65 habitat classes, 16 did not meet representation targets within the current no-take zones, most of which were in deeper offshore waters. These deeper areas also demonstrated the highest resilience values and, as such, Marxan outputs suggested minor increases to the current no-take zones in the deeper offshore areas. This work demonstrates that inclusion of fine-scale climate change resilience features within the design process for MPAs is feasible, and can be applied to future marine spatial planning practices globally.
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页数:21
相关论文
共 103 条
[1]  
ABPmer (ABP Marine Environmental Research Limited), 2011, ARCGIS 10 BOUNDARY T
[2]  
Airamé S, 2003, ECOL APPL, V13, pS170
[3]   Operationalizing resilience for adaptive coral reef management under global environmental change [J].
Anthony, Kenneth R. N. ;
Marshall, Paul A. ;
Abdulla, Ameer ;
Beeden, Roger ;
Bergh, Chris ;
Black, Ryan ;
Eakin, C. Mark ;
Game, Edward T. ;
Gooch, Margaret ;
Graham, Nicholas A. J. ;
Green, Alison ;
Heron, Scott F. ;
van Hooidonk, Ruben ;
Knowland, Cheryl ;
Mangubhai, Sangeeta ;
Marshall, Nadine ;
Maynard, Jeffrey A. ;
McGinnity, Peter ;
McLeod, Elizabeth ;
Mumby, Peter. J. ;
Nystroem, Magnus ;
Obura, David ;
Oliver, Jamie ;
Possingham, Hugh P. ;
Pressey, Robert L. ;
Rowlands, Gwilym P. ;
Tamelander, Jerker ;
Wachenfeld, David ;
Wear, Stephanie .
GLOBAL CHANGE BIOLOGY, 2015, 21 (01) :48-61
[4]  
Ardron J.A., 2010, Marxan Good Practices Handbook
[5]   Ecosystems - Coral bleach-out in Belize [J].
Aronson, RB ;
Precht, WF ;
Macintyre, IG ;
Murdoch, TJT .
NATURE, 2000, 405 (6782) :36-36
[6]  
Babcock R, 2008, CSIRO MARINE AND ATM
[7]  
Ball I., 2000, Marxan (v1.8.2): Marine reserve design using spatially explicit annealing. A manual prepared for the Great Barrier Reef Marine Park Authority, P1
[8]  
Ball I.R., 2009, SPATIAL CONSERVATION, P185, DOI DOI 10.1111/EVA.12631
[9]   A systematic evaluation of the incremental protection of broad-scale habitats at Ningaloo Reef, Western Australia [J].
Beckley, Lynnath E. ;
Lombard, Amanda T. .
MARINE AND FRESHWATER RESEARCH, 2012, 63 (01) :17-22
[10]   Trade-off analysis for marine protected area management [J].
Brown, K ;
Adger, WN ;
Tompkins, E ;
Bacon, P ;
Shim, D ;
Young, K .
ECOLOGICAL ECONOMICS, 2001, 37 (03) :417-434