Comparison of the biophysical and trophic characteristics of the Bering and Barents Seas

被引:32
作者
Hunt, GL
Megrey, BA
机构
[1] NOAA, Natl Marine Fisheries Serv, Alaska Fisheries Sci Ctr, Seattle, WA 98115 USA
[2] Univ Calif Irvine, Irvine, CA 92697 USA
关键词
Barents Sea; Bering Sea; capelin; cod; ecosystem productivity; herring; walleye pollock;
D O I
10.1016/j.icesjms.2005.04.008
中图分类号
S9 [水产、渔业];
学科分类号
0908 ;
摘要
The eastern Bering Sea and the Barents Sea share a number of common biophysical characteristics. Per example, both are seasonally ice-covered, high-latitude, shelf seas, dependent on advection for beat and for replenishment of nutrients on their shelves, and with ecosystems dominated by a single species of gadoid fish. At the same time, they differ in important respects. In the Barents Sea, advection of Atlantic Water is important for zooplankton vital to the Barents Sea productivity. Advection of zooplankton is not as important for the ecosystems of the southeastern Bering Sea, where high levels of diatom production can Support production of small, neritic zooplanklon. In the Barents Sea, cod are the dominant gadoid, and juvenile and older fish depend on capelin and other forage fish to repackage the energy available in copepods. In contrast, the dominant fish in the eastern Bering Sea is the walleye pollock, juveniles and adults of which consume zooplankton directly. The southeastern Bering Sea supports considerably larger fish stocks than the Barents. In part, this may reflect the greater depth of much of the Barents Sea compared with the shallow shelf of the Southeastern Bering. However, walleye pollock is estimated to occupy a trophic level of 3.3 as compared to 4.3 for Barents Sea cod. This difference alone could have a major impact on the abilities of these seas to support a large biomass of gadoids. In both seas, climate-forced variability in advection and sea-ice cover can potentially have major effects oil the productivity of these Subarctic seas. In the Bering Sea, the size and location of pools of cold bottom waters on the shelf may influence the likelihood of predation of juvenile pollock. (c) 2005 International Council for the exploration of the Sea. Published by Elsevier Ltd. All rights reserved.
引用
收藏
页码:1245 / 1255
页数:11
相关论文
共 64 条
[1]   A STUDY OF THE CLIMATIC SYSTEM IN THE BARENTS SEA [J].
ADLANDSVIK, B ;
LOENG, H .
POLAR RESEARCH, 1991, 10 (01) :45-49
[2]  
[Anonymous], IMP WARM CLIM ARCT C
[3]  
[Anonymous], RAPPORT PROCESVERBAU
[4]  
Aydin K. Y., 2002, NMFSAFSC130 NOAA
[5]   The regime concept and natural trends in the production of Pacific salmon [J].
Beamish, RJ ;
Noakes, DJ ;
McFarlane, GA ;
Klyashtorin, L ;
Ivanov, VV ;
Kurashov, V .
CANADIAN JOURNAL OF FISHERIES AND AQUATIC SCIENCES, 1999, 56 (03) :516-526
[6]  
Blanchard JL, 2002, 117 CEFAS LOW
[7]   Recent shifts in the state of the North Pacific [J].
Bond, NA ;
Overland, JE ;
Spillane, M ;
Stabeno, P .
GEOPHYSICAL RESEARCH LETTERS, 2003, 30 (23) :CLM1-1
[8]  
Brodeur R.D., 1992, Fisheries Oceanography, V1, P32, DOI 10.1111/j.1365-2419.1992.tb00023.x
[9]   Evidence for a substantial increase in gelatinous zooplankton in the Bering Sea, with possible links to climate change [J].
Brodeur, RD ;
Mills, CE ;
Overland, JE ;
Walters, GE ;
Schumacher, JD .
FISHERIES OCEANOGRAPHY, 1999, 8 (04) :296-306
[10]  
Coachman L.K., 1986, CONT SHELF RES, V5, P23