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  • 1
    Book
    Book
    Oxford [u.a.] : Pergamon Press
    Type of Medium: Book
    Pages: VI, 641 S , graph. Darst
    Series Statement: Deep sea research 40,1/2
    Language: English
    Location Call Number Limitation Availability
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  • 2
    Online Resource
    Online Resource
    Oxford :Oxford University Press, Incorporated,
    Keywords: Marine ecology. ; Climatic changes. ; Marine ecosystem management. ; Electronic books.
    Description / Table of Contents: Global changes, including climate change and intensive fishing, are having significant impacts on the world's oceans. This book advances knowledge of the structure and functioning of marine ecosystems and their major sub-systems, and how they respond to physical forcing.
    Type of Medium: Online Resource
    Pages: 1 online resource (453 pages)
    Edition: 1st ed.
    ISBN: 9780191574290
    DDC: 577.7
    Language: English
    Note: Intro -- Contents -- List of Boxes -- List of Abbreviations -- List of Contributors -- 1. Introduction: oceans in the earth system -- 1.1 The integrated blue planet -- 1.2 The oceans in an earth system -- 1.3 Climate variability and change in ocean ecosystems -- 1.4 Climate change and global change -- 1.5 Marine ecosystem sustainability -- 1.6 Objectives and structure of the book -- Part I: The changing ocean ecosystems -- 2. Climate forcing on marine ecosystems -- 2.1 Introduction -- 2.2 Climate forcing, climate variability, and climate change -- 2.3 Large-scale climate variability patterns -- 2.4 The role of ocean forcing on climate variability -- 2.5 Patterns of climate forcing on marine ecosystems -- 2.6 Effects of climate on marine ecosystem processes -- 2.7 Comparative studies of climate forcing on marine ecosystems -- 2.8 Influence of fishing on the responses of exploited ecosystems to climate forcing -- 2.9 Summary -- 3. Human impacts on marine ecosystems -- 3.1 Introduction -- 3.2 Human interaction with the natural world and evidence of impact on marine ecosystems -- 3.3 Fisheries-induced changes -- 3.4 Sensitivity of marine ecosystems -- 3.5 Summary and conclusions -- Part II: Advances in understanding the structure and dynamics of marine ecosystems -- 4. Dynamics of marine ecosystems: target species -- 4.1 The GLOBEC approach: population dynamics of target species -- 4.2 Target organisms -- 4.3 What are the justifications for the target species approach? -- 4.4 The criteria that define target species -- 4.5 Where has the target species approach worked to allow comparisons of species and ecosystems among regions? -- 4.6 Where is the target species approach not appropriate, or where does it require alteration? -- 4.7 Outstanding questions about target species. , 5. Dynamics of marine ecosystems: integration through models of physical-biological interactions -- 5.1 Introduction -- 5.2 Processes affecting individuals -- 5.3 Framing theories and hypotheses -- 5.4 Modelling approaches used in GLOBEC studies -- 5.5 Data assimilation, integration with field observation, and skill assessment -- 5.6 Understanding recruitment: the role and challenges of modelling -- 5.7 How has improved understanding of the physical environment improved ocean management? -- 5.8 Directions for future work -- 6. Dynamics of marine ecosystems: observation and experimentation -- 6.1 Sampling and technological advances in support of GLOBEC science -- 6.2 New approaches to the trophic complexity of marine ecosystems -- 6.3 Sampling and observation systems -- 6.4 Advances in shipboard, laboratory, and in situ process studies -- 6.5 Zooplankton individual behaviours and population processes -- 6.6 Methods applied to retrospective studies on past ecosystem states -- 6.7 Future directions -- 7. Dynamics of marine ecosystems: ecological processes -- 7.1 Introduction -- 7.2 Ecological processes and food webs -- 7.3 Marine ecosystem dynamics in relation to global change -- 7.4 Advances in understanding marine ecosystems -- 7.5 Conclusions and future directions -- Part III: The human dimensions of changes in marine ecosystems -- 8. Interactions between changes in marine ecosystems and human communities -- 8.1 Human-marine ecosystem interactions: a social-ecological perspective -- 8.2 Social-ecological systems: resilience, vulnerability, and adaptive capacity -- 8.3 Communities of fish, and fishing communities: issues of scale and value -- 8.4 Fisheries, food and economic security: vulnerability and response -- 8.5 Governance -- 8.6 Climate change and an uncertain future -- 8.7 Conclusions. , 9. Marine resources management in the face of change: from ecosystem science to ecosystem-based management -- 9.1 How have resource management needs changed during the life of GLOBEC? -- 9.2 How has ecosystem science been used to identify and address resource management needs? -- 9.3 From ecosystem science to ecosystem-based management -- 9.4 Communicating and increasing societal participation in ecosystem management -- 9.5 Summary -- Part IV: A way forward -- 10. Ocean ecosystem responses to future global change scenarios: a way forward -- 10.1 Introduction -- 10.2 Emergence of global changes in the ocean environments and projected future ocean conditions -- 10.3 Ecosystem responses to global change -- 10.4 The future and challenges -- 10.5 Prognosis -- 11. Marine ecosystems and global change: a synthesis -- 11.1 Introduction -- 11.2 What has been learnt? -- 11.3 Emerging scientific themes -- 11.4 The future -- References -- Index -- A -- B -- C -- D -- E -- F -- G -- H -- I -- J -- K -- L -- M -- N -- O -- P -- R -- S -- T -- U -- V -- W -- Z.
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  • 3
    Type of Medium: Book
    Pages: III, 43 S. , graph. Darst., Kt.
    Series Statement: GLOBEC Report 27
    Language: English
    Note: Literaturverz. S. 38 - 43
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  • 4
    Publication Date: 2024-02-01
    Keywords: 11869#1; 11869#13; 11869#14; 11869#17; 11869#19; 11869#2; 11869#20; 11869#29; 11869#31; 11869#33; 11869#35; 11869#4; 11869#40; 11869#41; 11869#42; 11869#44; 11869#56; 11869#61; 11869#63; 11869#66; 11869#67; 11869#78; 11869#82; 11869#85; 11870#15; 11870#17; 11870#19; 11870#2; 11870#21; 11870#22; 11870#5; 11870#7; 11870#9; 11871#1; 11871#10; 11871#12; 11871#14; 11871#2; 11871#23; 11871#25; 11871#26; 11871#28; 11871#32; 11871#35; 11871#37; 11871#42; 11871#43; 11871#5; 11871#6; 11872#1; 11872#100; 11872#102; 11872#104; 11872#108; 11872#109; 11872#13; 11872#23; 11872#3; 11872#31; 11872#37; 11872#4; 11872#40; 11872#41; 11872#44; 11872#45; 11872#46; 11872#49; 11872#5; 11872#51; 11872#53; 11872#58; 11872#61; 11872#62; 11872#63; 11872#67; 11872#70; 11872#73; 11872#77; 11872#85; 11872#91; 11872#93; 11872#95; 11872#96; 11873#2A; Biogeochemical Ocean Flux Study; BOFS; Calculated; CTD, Neil Brown, Mark III B; CTD/Rosette; CTD-RO; D183; Date/Time of event; Density, sigma-theta (0); DEPTH, water; DI183_11869#1; DI183_11869#13; DI183_11869#14; DI183_11869#17; DI183_11869#19; DI183_11869#2; DI183_11869#20; DI183_11869#29; DI183_11869#31; DI183_11869#33; DI183_11869#35; DI183_11869#4; DI183_11869#40; DI183_11869#41; DI183_11869#42; DI183_11869#44; DI183_11869#56; DI183_11869#61; DI183_11869#63; DI183_11869#66; DI183_11869#67; DI183_11869#78; DI183_11869#82; DI183_11869#85; DI183_11870#15; DI183_11870#17; DI183_11870#19; DI183_11870#2; DI183_11870#21; DI183_11870#22; DI183_11870#5; DI183_11870#7; DI183_11870#9; DI183_11871#1; DI183_11871#10; DI183_11871#12; DI183_11871#14; DI183_11871#2; DI183_11871#23; DI183_11871#25; DI183_11871#26; DI183_11871#28; DI183_11871#32; DI183_11871#35; DI183_11871#37; DI183_11871#42; DI183_11871#43; DI183_11871#5; DI183_11871#6; DI183_11872#1; DI183_11872#100; DI183_11872#102; DI183_11872#104; DI183_11872#108; DI183_11872#109; DI183_11872#13; DI183_11872#23; DI183_11872#3; DI183_11872#31; DI183_11872#37; DI183_11872#4; DI183_11872#40; DI183_11872#41; DI183_11872#44; DI183_11872#45; DI183_11872#46; DI183_11872#49; DI183_11872#5; DI183_11872#51; DI183_11872#53; DI183_11872#58; DI183_11872#61; DI183_11872#62; DI183_11872#63; DI183_11872#67; DI183_11872#70; DI183_11872#73; DI183_11872#77; DI183_11872#85; DI183_11872#91; DI183_11872#93; DI183_11872#95; DI183_11872#96; DI183_11873#2A; DI183_SDOWN1#1; DI183_SDOWN2#1; DI183_SDOWN3#1; Discovery (1962); Event label; Fluorescence, chlorophyll; Irradiance, downward PAR; JGOFS; Joint Global Ocean Flux Study; Latitude of event; Longitude of event; Optical beam attenuation coefficient, 660 nm; Pressure, water; Salinity; SDOWN1#1; SDOWN2#1; SDOWN3#1; Temperature, water; Transmissometer, Sea-Tech 25 beamlength, 660 nm; UV AquaTracka Fluorometer, Chelsea Instruments
    Type: Dataset
    Format: text/tab-separated-values, 131262 data points
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  • 5
    Publication Date: 2024-02-01
    Keywords: Biogeochemical Ocean Flux Study; BOFS; Chlorophyll a; CT; D183; DATE/TIME; DEPTH, water; DI183-track; Discovery (1962); Fluorescence; Irradiance, heat, flux density; JGOFS; Joint Global Ocean Flux Study; LATITUDE; LONGITUDE; Nitrate and Nitrite; Optical beam attenuation coefficient, water+particle sum; PAR vector irradiance; Phosphate; Pressure, atmospheric; Salinity; Silicate; Temperature, air, dry bulb; Temperature, water; Underway cruise track measurements; Wind direction; Wind speed
    Type: Dataset
    Format: text/tab-separated-values, 44419 data points
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  • 6
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    Unknown
    PANGAEA
    In:  Supplement to: Widdicombe, Claire E; Eloire, Damien; Harbour, Derek; Harris, Roger P; Somerfield, Paul J (2010): Long-term phytoplankton community dynamics in the Western English Channel. Journal of Plankton Research, 32(5), 643-655, https://doi.org/10.1093/plankt/fbp127
    Publication Date: 2024-02-16
    Description: Over a 15-year period (1992-2007), weekly water samples were collected from the L4 time-series station in the Western English Channel and analysed for phytoplankton community structure and abundance. The data produced have been analysed to identify seasonal patterns, inter-annual variability and long-term trends in the composition of the seven main functional phytoplankton groups. Phyto-flagellates numerically dominated accounting for on average ca. 87% of the phytoplankton abundance while diatoms, Phaeocystis, coccolithophorids, dinoflagellates and ciliates contributed 13% of abundance. Distinct seasonal and inter-annual changes in the abundance and floristic composition of the functional groups were observed. Significant long-term changes in abundance showed that, over the study period, diatoms and Phaeocystis decreased while coccolithophorids, the dinoflagellate Prorocentrum minimum and some heterotrophic dinoflagellate and ciliates increased in abundance. These changes highlight the importance of long-term observations for the understanding of natural temporal variability in plankton communities. Such shifts in the community composition at L4 could have important consequences for ecosystem function.
    Keywords: Coastal station; English Channel; MON; Monitoring; WCO_L4; Western Channel Observatory
    Type: Dataset
    Format: application/zip, 2 datasets
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  • 7
    Publication Date: 2024-01-26
    Keywords: Biomass as carbon per individual; EXP; Experiment; Growth rate as carbon per carbon biomass; Growth rate as carbon per individual; P_elongatus_GROWTHEXP; Taxon/taxa; Treatment: temperature; Uniform resource locator/link to reference
    Type: Dataset
    Format: text/tab-separated-values, 18 data points
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  • 8
    Publication Date: 2024-02-16
    Keywords: Acanthoica quattrospina; Achnanthes longipes; Actinocyclus sp.; Actinoptychus senarius; Akashiwo sanguinea; Alexandrium tamarense; Amylax triacantha; Anoplosolenia brasiliensis; Asterionellopsis glacialis; Attheya septentrionalis; Bacillaria paradoxa; Bacteriastrum furcatum; Biddulphia alternans; Braarudosphaera bigelowii; Brockmanniella brockmannii; Calyptrosphaera sp.; Caneosphaera molischii; Cerataulina pelagica; Ceratium furca; Ceratium fusus; Ceratium horridum; Ceratium lineatum; Ceratium longipes; Ceratium macroceros; Ceratium massiliense; Ceratium tripos; Chaetoceros, resting spores; Chaetoceros affinis; Chaetoceros anastomosans; Chaetoceros brevis; Chaetoceros compressus; Chaetoceros costatus; Chaetoceros curvisetus; Chaetoceros danicus; Chaetoceros debilis; Chaetoceros decipiens; Chaetoceros densus; Chaetoceros didymus; Chaetoceros eibenii; Chaetoceros externus; Chaetoceros filiformis; Chaetoceros fragilis; Chaetoceros laciniosus; Chaetoceros lauderi; Chaetoceros peruvianus; Chaetoceros radicans; Chaetoceros similis; Chaetoceros simplex; Chaetoceros socialis; Chaetoceros sp.; Chaetoceros teres; Chaetoceros tortissimus; Chaetoceros wighamii; Chaetoceros willei; Coastal station; Coccolithophoridae; Coccolithophoridae, lith; Coccolithophoridae indeterminata; Coccolithus pelagicus; Corethron criophilum; Coronosphaera sp.; Corymbellus aureus; Coscinodiscus asteromphalus; Coscinodiscus centralis; Coscinodiscus concinnus; Coscinodiscus granii; Coscinodiscus radiatus; Coscinodiscus wailesii; Cryptomonadales; Crystallolithus hyalinus; Cyanobacteria filaments; Dactyliosolen blavyanus; Dactyliosolen fragilissimus; DATE/TIME; Delphineis sp.; DEPTH, water; Detonula pumila; Diatoms; Dictyocha fibula; Dictyocha speculum; Dinobryon; Dinoflagellates; Dinophysis acuminata; Dinophysis acuta; Dinophysis sacculus; Dinophysis sp. cf. D. punctata; Dinophysis tripos; Diploneis cabro; Ditylum brightwellii; Emiliania huxleyi; English Channel; Ephemera planamembranacea; Eucampia zodiacus; Euglenophyceae; Flagellates, fractionated; Fragilaria; Fragilariopsis; Gephyrocapsa sp.; Gonyaulax digitale; Gonyaulax sp.; Gonyaulax spinifera; Gonyaulax verior; Grammatophora; Guinardia delicatula; Guinardia flaccida; Guinardia striata; Guinardia striata, large; Gymnodinium cf. catenatum; Gymnodinium cf. pygmaeum; Gymnodinium sp.; Halosphaera sp.; Haslea wawrikae; Helicotheca tamesis; Heterocapsa niei; Heterocapsa sp.; Heterocapsa triquetra; Holococcolithophorid, fractionated; Karenia mikimotoi; Lauderia annulata; Leptocylindrus danicus; Leptocylindrus mediterraneus; Leptocylindrus minimus; Licmophora; Lioloma delicatulum; Lithodesmium undulatum; Melosira sp.; Meringosphaera sp.; Mesoporos perforatus; Meuniera membranacea; Micranthodinium sp.; MON; Monitoring; Nanoneis haslea; Navicula distans; Navicula sp.; Nitzschia closterium; Nitzschia sigmoidea; Odontella mobiliensis; Odontella sinensis; Paralia sulcata; Pennates, fractionated; Pennates, small; Pennates, very small; Phaeocystis motile; Phaeocystis pouchetii; Phytoflagellate; Phytoplankton; Phytoplankton, other; Picoplankton; Pleurosigma; Pleurosigma planctonicum; Podosira stelligera; Proboscia alata; Proboscia alata, fractionated; Proboscia alata syn. forma gracillima; Proboscia truncata; Prorcentrum triestinum; Prorocentrum balticum; Prorocentrum compressum; Prorocentrum dentatum; Prorocentrum micans; Prorocentrum minimum; Protoceratium reticulatum; Psammodictyon panduriforme; Pseudo-nitzschia delicatissima; Pseudo-nitzschia pungens; Pseudo-nitzschia seriata; Pterosperma sp.; Pyramimonas sp.; Quantitative phytoplankton method (Utermöhl, 1958); Raphidophyceae; Rhabdosphaera claviger; Rhizosolenia chunii; Rhizosolenia hebetata forma semispina; Rhizosolenia imbricata, fractionated; Rhizosolenia robusta; Rhizosolenia setigera, fractionated; Rhizosolenia styliformis; Roperia tesselata; Scripsiella sp. cyst; Scripsiella trochoidea; Skeletonema costatum; Stephanopyxis palmeriana; Syracosphaera pulchra; Thalassionema nitzschioides; Thalassiosira, fractionated; Thalassiosira anguste-lineata; Thalassiosira cf. gravida; Thalassiosira cf. gravida, fractionated; Thalassiosira eccentrica; Thalassiosira punctigera; Thalassiosira rotula; Thalassiosira sp. cf. T. angulata; Thalassiosira subtilis; Thalassiothrix sp.; Tropidoneis; Umbellosphaera sp.; WCO_L4; Western Channel Observatory
    Type: Dataset
    Format: text/tab-separated-values, 141167 data points
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  • 9
    Publication Date: 2024-01-26
    Keywords: Biomass as carbon per individual; EXP; Experiment; Growth rate as carbon per carbon biomass; Growth rate as carbon per individual; North Sea; T_longicornis_GROWTHEXP; Taxon/taxa; Treatment: temperature; Uniform resource locator/link to reference
    Type: Dataset
    Format: text/tab-separated-values, 18 data points
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  • 10
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    Unknown
    PANGAEA
    Publication Date: 2024-02-01
    Keywords: 0105Z#1; 0205Z#1; 0305Z#3; 0405Z#1; 0505Z#6; 0605Z#1; 0605Z#4; 0705Z#1; 0805Z#4; 1005Z#1; 1305Z#1; 1505Z#2; 1805Z#1; 1905Z#1; Biogeochemical Ocean Flux Study; BOFS; Carbon, organic, particulate; Carbon, organic, particulate fractionated; CD46; CD46_0105Z#1; CD46_0205Z#1; CD46_0305Z#3; CD46_0405Z#1; CD46_0505Z#6; CD46_0605Z#1; CD46_0605Z#4; CD46_0705Z#1; CD46_0805Z#4; CD46_1005Z#1; CD46_1305Z#1; CD46_1505Z#2; CD46_1805Z#1; CD46_1905Z#1; Charles Darwin; Date/Time of event; Depth, bottom/max; Depth, top/min; DEPTH, water; Event label; JGOFS; Joint Global Ocean Flux Study; Latitude of event; Longitude of event; Mesh size; Nitrogen, organic, particulate; Nitrogen, organic, particulate fractionated; ZNET; Zooplankton net
    Type: Dataset
    Format: text/tab-separated-values, 113 data points
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