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  • 2000-2004
  • 2023  (26)
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  • 2020-2024  (26)
  • 2000-2004
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  • 1
    Online Resource
    Online Resource
    Cham :Springer International Publishing :
    Keywords: Freshwater ecology. ; Marine ecology. ; Bioclimatology. ; Ecology . ; Oceanography. ; Paleontology . ; Freshwater and Marine Ecology. ; Climate Change Ecology. ; Biooceanography. ; Paleontology.
    Description / Table of Contents: INTRODUCTION: THE REEF PHENOMENON -- INTO THE INTIMACY OF CORALS, BUILDERS OF THE SEA -- 1 TAXONOMIC AFFILIATION -- 1.1 Systematic classification of cnidarians -- 1.2 Scleractinians -- 2 MORPHOLOGY AND ANATOMY -- 2.1 Polyp anatomy -- 2.2 Reproduction -- 2.2.1 Sexual reproduction -- 2.2.2 Asexual reproduction -- 2.3 Anatomy of calcareous skeletons -- 2.4 Coral colonies -- 2.4.1 Corallite arrangement -- 2.4.2 Colony morphology -- 3 SYMBIOSIS -- 4 BIOMINERALIZATION -- 4.1 Calicoderm and biomineralization -- 4.2 Skeletons and biomineralization -- 4.3 Interface between calicoderm and skeleton -- 4.4 Principles of calcification -- 5 NUTRITION -- 5.1 Prey capture -- 5.2 Food -- 5.3 Autotrophy -- THE MODERN TIMES -- 1 BIOZONATION -- 2 REEF MORPHOTYPES -- 2.1 Fringing reefs -- 2.2 Barrier reefs -- 2.3 Atolls -- 2.4 Bank reefs -- 2.5 High carbonate islands -- 3 GEOGRAPHICAL DISTRIBUTION -- 3.1 Ecological control -- 3.2 Tectonic control -- 3.3 Eustatic control -- 3.4 Topographic control -- 4 REEF GROWTH -- 4.1 Vertical growth strategies -- 4.1.1 Controlling factors -- 4.1.2 Give-up growth -- 4.1.3 Keep-up growth -- 4.1.4 Catch-up mode -- 4.2 Lateral growth -- 5 MORPHO-SEDIMENTARY PROCESSES -- 5.1 Bioconstruction -- 5.2 Erosion -- 5.3 Bioaccumulation -- 5.4 Cementation -- 6 INTERNAL STRUCTURE -- 6.1 Nature and distribution of facies -- 6.1.1 Framework facies -- 6.1.2 Detrital facies -- 6.1.3 Facies distribution and hydrodynamics -- 6.2 The different structural models -- 7 A BRIEF HISTORY OF REEF DEVELOPMENT -- 7.1 The climatic context -- 7.2 History of reef development since the last deglaciation -- 7.3 Reef history throughout the Pleistocene -- 8 RECORD OF ENVIRONMENTAL CHANGES -- 8.1 Record at the coral colony scale -- 8.1.1 Temperature -- 8.1.2 Salinometry -- 8.1.3 Rainfall -- 8.1.4 pH measurement -- 8.1.5 Photometry -- 8.1.6 Current measurement -- 8.2 Record at the scale of a reef edifice -- 8.2.1 Reef flats and micro-atolls -- 8.2.2 Arrangement of coral communities -- 8.2.3 Arrangement of reef edifices -- THE LONG MARCH OF CORALS -- 1 THE TIME OF THE ORIGINS -- 1.1 Early Earth and the first traces of life -- 1.2 Evolution of the atmosphere -- 1.3 Geochemical model of the early ocean -- 1.4 Emergence of biomineralization -- 1.5 The early calcifying organisms and cnidarians -- 1.6 The earliest corals -- 1.7 The appearance of scleractinian corals -- 2 THE TIME OF DIVERSIFICATION -- 2.1 Coral-algae symbiosis -- 2.1.1 Acquiring photosymbiosis -- 2.1.2 Evidence of photosymbiosis -- 2.1.3 Symbiosis and coloniality -- 2.2 A brief history of coral and reef building -- 2.2.1 Paleozoic times -- 2.2.2 Mesozoic times -- 2.2.3 Cenozoic times -- THE HIGHS AND LOWS OF THE REEF PHENOMENON -- 1 CAUSES -- 1.1 Causal relationships -- 1.2 Gas emissions and volcanic products -- 1.3 Methane emissions -- 1.4 Thermogenic gases -- 1.5 The fall of celestial bodies -- 1.6 Behaviour of organisms facing environmental disturbances -- 1.7 Disturbances induced by CO2 and ocean acidification -- 1.8 Thermal shocks -- 1.9 Disturbances induced by ocean deoxygenation -- 2 THE MAIN BIOLOGICAL CRISES -- 2.1 The Cambrian crises -- 2.2 The major crisis of the Ordovician end -- 2.3 The minor crises of the Silurian -- 2.4 The successive crises of the Devonian -- 2.5 The Permian crises -- 2.6 The Triassic crises -- 2.7 The lower Jurassic crisis -- 2.8 The Jurassic–Cretaceous transition (J–K) -- 2.9 The Cretaceous–Paleogene crisis -- 2.10 The Paleocene–Eocene crisis -- 2.11 The Eocene–Oligocene transition -- 2.12 The Oligocene end to the Plio-Quaternary -- 3 THE RESPONSE OF CORALS AND REEFS TO CRISES: FROM EXTINCTION TO RECOVERY -- 3.1 At the Ordovician end -- 3.2 During the Silurian -- 3.3 During the Devonian -- 3.4 At the Permian -- 3.5 At the Permian–Triassic boundary -- 3.6 From the middle to the end of the Triassic -- 3.7 During the Jurassic -- 3.8 From the upper Jurassic to the lower Cretaceous -- 3.9 At the Cretaceous–Paleogene (K–Pg) transition -- 3.10 From the Paleocene to the Eocene -- 3.11 From the Oligocene to the Miocene -- 3.12 During the Plio-Quaternary -- 4 CONCLUSIONS -- CORAL REEFS IN THE FACE OF THEIR FATE -- 1 DISRUPTIVE AGENTS IN ACTION -- 1.1 Carbon dioxide and rising surface water temperatures -- 1.2 Carbon dioxide and its effects on the carbonate cycle -- 1.3 Carbon dioxide and ocean acidification -- 1.4 The other disruptive agents -- 2 THE RESPONSE OF CORALS AND CORAL REEFS -- 2.1 Temperature rise of surface waters -- 2.2 To acidification -- 2.3 To other disruptive agents -- 3 THE EVOLUTION OF CORAL ISLETS -- 3.1 The modes of low-lying island formation -- 3.2 Future evolution of low-lying islands: maintenance, reduction, or destruction? -- CONCLUSIONS -- BIBLIOGRAPHY -- INDICE.
    Abstract: The health status and future of tropical coral reefs, as tourist destinations, are regularly subjected to media coverage. Many documentaries recognize the natural beauty and biological richness of the Australian Great Barrier Reef and French Polynesian lagoons, but point to the equally significant risk that would result from current global warming and human-made hazards. The future of coral reefs is usually a matter of death foretold, real or purely imaginary. In this context, it has become necessary to differentiate between what is falling within reality of scientific facts or fantasy. To this end, the present general review, in the expert translation of Charlotte Fontan aims at: (1) defining the conditions and life requirements of reefbuilding corals; (2) the history of corals along with that of a number of associated, skeletal organisms involved in reef building since the very beginning, i.e. the last 540 million years, including the ups and downs they have experienced; (3) giving special reference to the development patterns of recent and modern reefs; (4) projecting corals and reefs into a still unknown future. Understanding how corals and reefs have originated, how they have been able to face the major biological crises which have punctuated the Earth’s history, how they have survived is a prerequisite to better gain a significant picture of their future.
    Type of Medium: Online Resource
    Pages: IX, 166 p. 120 illus., 117 illus. in color. , online resource.
    Edition: 1st ed. 2023.
    ISBN: 9783031168871
    Series Statement: Coral Reefs of the World, 16
    DDC: 577.6
    Language: English
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  • 2
    Call number: 9/M 07.0421(532)
    In: Special publications / the Geological Society, London, Volume
    Description / Table of Contents: The Ordovician is one of the longest and geologically most active periods in Phanerozoic history. The unique Ordovician biodiversifications established modern marine ecosystems, whereas the first plants originated on land. The two volumes cover all key topics on Ordovician research and provide a review of Ordovician successions across the globe.
    Type of Medium: Monograph available for loan
    Pages: vi, 514 Seiten , Illustrationen, Karten
    ISBN: 9781786205889 , 978-1-78620-588-9
    Series Statement: Geological Society special publication 532
    Language: English
    Note: Title description Full Access10 May 2023 About this title - A Global Synthesis of the Ordovician System: Part 1 D. A. T. Harper, B. Lefebvre, I. G. Percival, and T. Servais https://doi.org/10.1144/SP532 Introduction Full Access10 March 2023 The Ordovician System: Key concepts, events and its distribution across Europe David A. T. Harper, Bertrand Lefebvre, Ian G. Percival, and Thomas Servais https://doi.org/10.1144/SP532-2023-8 Conceptualizing the Ordovician Period Open Access24 January 2023 A short history of the Ordovician System: from overlapping unit stratotypes to global stratotype sections and points David A. T. Harper, Tõnu Meidla, and Thomas Servais https://doi.org/10.1144/SP532-2022-285 Open Access15 December 2022 Ordovician biostratigraphy: index fossils, biozones and correlation Daniel Goldman, Stephen A. Leslie, Yan Liang, and Stig M. Bergström https://doi.org/10.1144/SP532-2022-49 Open Access9 January 2023 Ordovician cyclostratigraphy and astrochronology Matthias Sinnesael https://doi.org/10.1144/SP532-2022-31 Full Access3 March 2023 Ordovician tephra distribution, tephrochronology and geochronology Patrick I. McLaughlin, Leon Normore, Bryan K. Sell, and Jahandar Ramezani https://doi.org/10.1144/SP532-2022-267 Full Access28 February 2023 Ordovician plate tectonic and palaeogeographical maps Christopher R. Scotese https://doi.org/10.1144/SP532-2022-311 Full Access10 March 2023 Changing palaeobiogeography during the Ordovician Period Thomas Servais, David A. T. Harper, Björn Kröger, Christopher Scotese, Alycia L. Stigall, and Yong-Yi Zhen https://doi.org/10.1144/SP532-2022-168 Full Access20 January 2023 Seawater signatures of Ordovician climate and environment Seth A. Young, Cole T. Edwards, Leho Ainsaar, Anders Lindskog, and Matthew R. Saltzman https://doi.org/10.1144/SP532-2022-258 Full Access15 December 2022 The Ordovician ocean circulation: a modern synthesis based on data and models Alexandre Pohl, Elise Nardin, Thijs R. A. Vandenbroucke, and Yannick Donnadieu https://doi.org/10.1144/SP532-2022-1 Open Access10 November 2022 Terrestrialization in the Ordovician Charles H. Wellman, Borja Cascales-Miñana, and Thomas Servais https://doi.org/10.1144/SP532-2022-92 The Ordovician System in Europe Open Access8 February 2023 A synopsis of the Ordovician System in its birthplace – Britain and Ireland Stewart G. Molyneux, David A. T. Harper, Mark R. Cooper, Steven Philip Hollis, Robert J. Raine, Adrian W. A. Rushton, M. Paul Smith, Philip Stone, Mark Williams, ... https://doi.org/10.1144/SP532-2022-235 Open Access18 January 2023 The Ordovician of Scandinavia: a revised regional stage classification Arne Thorshøj Nielsen, Per Ahlberg, Jan Ove R. Ebbestad, Øyvind Hammer, David Alexander Taylor Harper, Anders Lindskog, Christian Mac Ørum Rasmussen, and Svend Stouge https://doi.org/10.1144/SP532-2022-157 Open Access18 November 2022 Ordovician of the Eastern Baltic palaeobasin and the Tornquist Sea margin of Baltica Tõnu Meidla, Leho Ainsaar, Olle Hints, and Sigitas Radzevičius https://doi.org/10.1144/SP532-2022-141 Full Access6 December 2022 Stratigraphy and Sedimentary Record of the Ordovician System in Poland: a Review Wiesław Trela https://doi.org/10.1144/SP532-2022-109 Full Access14 February 2023 The Ordovician of France and neighbouring areas of Belgium and Germany Bertrand Lefebvre, J. Javier Álvaro, Josep Maria Casas, Jean-François Ghienne, Alain Herbosch, Alfredo Loi, Eric Monceret, Jacques Verniers, Muriel Vidal, Daniel Vizcaïno, and Thomas Servais https://doi.org/10.1144/SP532-2022-268 Full Access24 November 2022 The Ordovician of Sardinia (Italy): from the ‘Sardic Phase’ to the end-Ordovician glaciation, palaeogeography and geodynamic context Alfredo Loi, Fabrizio Cocco, Giacomo Oggiano, Antonio Funedda, Muriel Vidal, Annalisa Ferretti, Francesco Leone, Sebastiano Barca, Stefano Naitza, Jean-François Ghienne, and Gian Luigi Pillola https://doi.org/10.1144/SP532-2022-121 Full Access8 February 2023 Ordovician of the Bohemian Massif Petr Kraft, Ulf Linnemann, Michal Mergl, Jana Bruthansová, Lukáš Laibl, and Gerd Geyer https://doi.org/10.1144/SP532-2022-191 Full Access16 January 2023 A global view on the Ordovician stratigraphy of southeastern Europe Annalisa Ferretti, Hans Peter Schönlaub, Valeri Sachanski, Gabriella Bagnoli, Enrico Serpagli, Gian Battista Vai, Slavcho Yanev, Miloš Radonjić, Constantin Balica, Luca Bianchini, ... https://doi.org/10.1144/SP532-2022-174
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  • 3
    Call number: 10.1144/SP533
    In: Special publications / the Geological Society, London, Volume 533
    Description / Table of Contents: The Ordovician is one of the longest and geologically most active periods in Phanerozoic history. The unique Ordovician biodiversifications established modern marine ecosystems, whereas the first plants originated on land. The two volumes cover all key topics on Ordovician research and provide a review of Ordovician successions across the globe.
    Type of Medium: 12
    Pages: 1 Online Ressource (vi, 618 Seiten) , Illustrationen, Karten
    ISBN: 9781786209740 , 978-1-78620-589-6
    Series Statement: Special publications / the Geological Society, London 533
    Language: English
    Note: About this title - A Global Synthesis of the Ordovician System: Part 2 T. Servais, D. A. T. Harper, B. Lefebvre, and I. G. Percival https://doi.org/10.1144/SP533 Introduction Full Access16 March 2023 A journey through the Ordovician System around the world Thomas Servais, David A. T. Harper, Bertrand Lefebvre, and Ian G. Percival https://doi.org/10.1144/SP533-2023-23 Articles Full Access28 November 2022 Ordovician geology of Alaska Julie A. Dumoulin, Justin V. Strauss, and John E. Repetski https://doi.org/10.1144/SP533-2022-39 Full Access6 February 2023 The Ordovician System in Greenland Svend Stouge, Christian M. Ø. Rasmussen, and David A. T. Harper https://doi.org/10.1144/SP533-2022-193 Full Access20 January 2023 The Ordovician System of Canada: an extensive stratigraphic record of Laurentian shallow water platforms and deep marine basins André Desrochers, Jisuo Jin, and Keith Dewing https://doi.org/10.1144/SP533-2022-151 Full Access1 February 2023 Ordovician of the conterminous United States Patrick I. McLaughlin and Alycia L. Stigall https://doi.org/10.1144/SP533-2022-198 Full Access8 February 2023 Ordovician stratigraphy and biota of Mexico Francisco Javier Cuen-Romero, Blanca Estela Buitrón-Sánchez, Matilde S. Beresi, Juan J. Palafox-Reyes, and Rogelio Monreal https://doi.org/10.1144/SP533-2022-19 Full Access6 January 2023 The Ordovician of southern South America Beatriz G. Waisfeld, Juan Luis Benedetto, Blanca A. Toro, Gustavo G. Voldman, Claudia V. Rubinstein, Susana Heredia, Mario L. Assine, N. Emilio Vaccari, and Hans Niemeyer https://doi.org/10.1144/SP533-2022-95 Full Access6 February 2023 The Ordovician System of South Africa: a review C. R. Penn-Clarke, C. Browning, and D. A. T. Harper https://doi.org/10.1144/SP533-2022-23 Open Access10 February 2023 The Ordovician record of North and West Africa: unravelling sea-level variations, Gondwana tectonics, and the glacial impact Jean-François Ghienne, Hussein Abdallah, Rémy Deschamps, Michel Guiraud, Juan Carlos Gutiérrez-Marco, Moussa Konaté, Guido Meinhold,… https://doi.org/10.1144/SP533-2022-213 Full Access15 February 2023 The Ordovician System in the Levant region (Middle East) and southern Turkey: review of depositional facies, fauna and stratigraphy Olaf Elicki, Tim Meischner, Semih Gürsu, Jean-François Ghienne, Ahmad Masri, Khaled Ali Moumani, and Huriye Demircan https://doi.org/10.1144/SP533-2022-53 Full Access22 November 2022 The Ordovician of the Middle East (Iran, Afghanistan, Pakistan) Mansoureh Ghobadi Pour and Leonid E. Popov https://doi.org/10.1144/SP533-2022-149 Full Access19 December 2022 The Ordovician of Central Asia (Kyrgyzstan, Uzbekistan and Tajikistan) Mansoureh Ghobadi Pour, Leonid E. Popov, Aleksey I. Kim, Zoja M. Abduazimova, Alexander V. Mikolaichuk, Irina A. Kim, Narima Ospanova, Maya V. Erina,… https://doi.org/10.1144/SP533-2022-52 Full Access1 March 2023 Ordovician of Kazakhstan Leonid Popov, Aidarkhan Zhylkaidarov, Vyacheslav Zhemchuzhnikov, Wladimir Stepanets, Nina Mikhailovna Gridina, and Rostislav Mikhailovich Antonyuk https://doi.org/10.1144/SP533-2022-245 Full Access6 January 2023 Ordovician strata of the Indian subcontinent Paul M. Myrow, Nigel C. Hughes, and Birendra P. Singh https://doi.org/10.1144/SP533-2022-3 Full Access10 March 2023 Regional synthesis of the Ordovician geology and stratigraphy of China Yuandong Zhang, Renbin Zhan, Yong Yi Zhen, Wenhui Wang, Yan Liang, Xiang Fang, Rongchang Wu, Kui Yan, Junpeng Zhang, and Wenjie Li https://doi.org/10.1144/SP533-2022-128 Full Access5 December 2022 The Ordovician of the Korean Peninsula: a synthesis Jeong-Hyun Lee, Se Hyun Cho, Suk-Joo Choh, Jongsun Hong, Byung-Su Lee, Dong-Chan Lee, Dong-Jin Lee, Seung-Bae Lee, Jino Park, and Jusun Woo https://doi.org/10.1144/SP533-2022-48 Full Access6 February 2023 Ordovician Japan: geotectonic setting and palaeogeography Yukio Isozaki https://doi.org/10.1144/SP533-2022-80 Full Access2 March 2023 Ordovician geology of the Sibumasu Block, SE Asia Sachiko Agematsu and Thura Oo https://doi.org/10.1144/SP533-2022-200 Full Access8 March 2023 Current knowledge of the Ordovician System in Antarctica Ian G. Percival, Richard A. Glen, and Yong Yi Zhen https://doi.org/10.1144/SP533-2022-116 Full Access16 March 2023 The Ordovician System in Australia and New Zealand Ian G. Percival, Yong Yi Zhen, and Leon Normore https://doi.org/10.1144/SP533-2022-265
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  • 4
    Call number: 9/M 07.0421(533)
    In: Special publications / the Geological Society, London, Volume 533
    Description / Table of Contents: The Ordovician is one of the longest and geologically most active periods in Phanerozoic history. The unique Ordovician biodiversifications established modern marine ecosystems, whereas the first plants originated on land. The two volumes cover all key topics on Ordovician research and provide a review of Ordovician successions across the globe.
    Type of Medium: Monograph available for loan
    Pages: vi, 618 Seiten , Illustrationen, Karten
    ISBN: 9781786209740 , 978-1-78620-589-6
    Series Statement: Special publications / the Geological Society, London 533
    Language: English
    Note: About this title - A Global Synthesis of the Ordovician System: Part 2 T. Servais, D. A. T. Harper, B. Lefebvre, and I. G. Percival https://doi.org/10.1144/SP533 Introduction Full Access16 March 2023 A journey through the Ordovician System around the world Thomas Servais, David A. T. Harper, Bertrand Lefebvre, and Ian G. Percival https://doi.org/10.1144/SP533-2023-23 Articles Full Access28 November 2022 Ordovician geology of Alaska Julie A. Dumoulin, Justin V. Strauss, and John E. Repetski https://doi.org/10.1144/SP533-2022-39 Full Access6 February 2023 The Ordovician System in Greenland Svend Stouge, Christian M. Ø. Rasmussen, and David A. T. Harper https://doi.org/10.1144/SP533-2022-193 Full Access20 January 2023 The Ordovician System of Canada: an extensive stratigraphic record of Laurentian shallow water platforms and deep marine basins André Desrochers, Jisuo Jin, and Keith Dewing https://doi.org/10.1144/SP533-2022-151 Full Access1 February 2023 Ordovician of the conterminous United States Patrick I. McLaughlin and Alycia L. Stigall https://doi.org/10.1144/SP533-2022-198 Full Access8 February 2023 Ordovician stratigraphy and biota of Mexico Francisco Javier Cuen-Romero, Blanca Estela Buitrón-Sánchez, Matilde S. Beresi, Juan J. Palafox-Reyes, and Rogelio Monreal https://doi.org/10.1144/SP533-2022-19 Full Access6 January 2023 The Ordovician of southern South America Beatriz G. Waisfeld, Juan Luis Benedetto, Blanca A. Toro, Gustavo G. Voldman, Claudia V. Rubinstein, Susana Heredia, Mario L. Assine, N. Emilio Vaccari, and Hans Niemeyer https://doi.org/10.1144/SP533-2022-95 Full Access6 February 2023 The Ordovician System of South Africa: a review C. R. Penn-Clarke, C. Browning, and D. A. T. Harper https://doi.org/10.1144/SP533-2022-23 Open Access10 February 2023 The Ordovician record of North and West Africa: unravelling sea-level variations, Gondwana tectonics, and the glacial impact Jean-François Ghienne, Hussein Abdallah, Rémy Deschamps, Michel Guiraud, Juan Carlos Gutiérrez-Marco, Moussa Konaté, Guido Meinhold,… https://doi.org/10.1144/SP533-2022-213 Full Access15 February 2023 The Ordovician System in the Levant region (Middle East) and southern Turkey: review of depositional facies, fauna and stratigraphy Olaf Elicki, Tim Meischner, Semih Gürsu, Jean-François Ghienne, Ahmad Masri, Khaled Ali Moumani, and Huriye Demircan https://doi.org/10.1144/SP533-2022-53 Full Access22 November 2022 The Ordovician of the Middle East (Iran, Afghanistan, Pakistan) Mansoureh Ghobadi Pour and Leonid E. Popov https://doi.org/10.1144/SP533-2022-149 Full Access19 December 2022 The Ordovician of Central Asia (Kyrgyzstan, Uzbekistan and Tajikistan) Mansoureh Ghobadi Pour, Leonid E. Popov, Aleksey I. Kim, Zoja M. Abduazimova, Alexander V. Mikolaichuk, Irina A. Kim, Narima Ospanova, Maya V. Erina,… https://doi.org/10.1144/SP533-2022-52 Full Access1 March 2023 Ordovician of Kazakhstan Leonid Popov, Aidarkhan Zhylkaidarov, Vyacheslav Zhemchuzhnikov, Wladimir Stepanets, Nina Mikhailovna Gridina, and Rostislav Mikhailovich Antonyuk https://doi.org/10.1144/SP533-2022-245 Full Access6 January 2023 Ordovician strata of the Indian subcontinent Paul M. Myrow, Nigel C. Hughes, and Birendra P. Singh https://doi.org/10.1144/SP533-2022-3 Full Access10 March 2023 Regional synthesis of the Ordovician geology and stratigraphy of China Yuandong Zhang, Renbin Zhan, Yong Yi Zhen, Wenhui Wang, Yan Liang, Xiang Fang, Rongchang Wu, Kui Yan, Junpeng Zhang, and Wenjie Li https://doi.org/10.1144/SP533-2022-128 Full Access5 December 2022 The Ordovician of the Korean Peninsula: a synthesis Jeong-Hyun Lee, Se Hyun Cho, Suk-Joo Choh, Jongsun Hong, Byung-Su Lee, Dong-Chan Lee, Dong-Jin Lee, Seung-Bae Lee, Jino Park, and Jusun Woo https://doi.org/10.1144/SP533-2022-48 Full Access6 February 2023 Ordovician Japan: geotectonic setting and palaeogeography Yukio Isozaki https://doi.org/10.1144/SP533-2022-80 Full Access2 March 2023 Ordovician geology of the Sibumasu Block, SE Asia Sachiko Agematsu and Thura Oo https://doi.org/10.1144/SP533-2022-200 Full Access8 March 2023 Current knowledge of the Ordovician System in Antarctica Ian G. Percival, Richard A. Glen, and Yong Yi Zhen https://doi.org/10.1144/SP533-2022-116 Full Access16 March 2023 The Ordovician System in Australia and New Zealand Ian G. Percival, Yong Yi Zhen, and Leon Normore https://doi.org/10.1144/SP533-2022-265
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  • 5
    Call number: 10.1144/SP532
    In: Special publications / the Geological Society, London, Volume 532
    Description / Table of Contents: The Ordovician is one of the longest and geologically most active periods in Phanerozoic history. The unique Ordovician biodiversifications established modern marine ecosystems, whereas the first plants originated on land. The two volumes cover all key topics on Ordovician research and provide a review of Ordovician successions across the globe.
    Type of Medium: 12
    Pages: 1 Online Ressource (vi, 514 Seiten) , Illustrationen, Karten
    ISBN: 9781786209733
    Series Statement: Geological Society special publication 532
    Language: English
    Note: Title description Full Access10 May 2023 About this title - A Global Synthesis of the Ordovician System: Part 1 D. A. T. Harper, B. Lefebvre, I. G. Percival, and T. Servais https://doi.org/10.1144/SP532 Introduction Full Access10 March 2023 The Ordovician System: Key concepts, events and its distribution across Europe David A. T. Harper, Bertrand Lefebvre, Ian G. Percival, and Thomas Servais https://doi.org/10.1144/SP532-2023-8 Conceptualizing the Ordovician Period Open Access24 January 2023 A short history of the Ordovician System: from overlapping unit stratotypes to global stratotype sections and points David A. T. Harper, Tõnu Meidla, and Thomas Servais https://doi.org/10.1144/SP532-2022-285 Open Access15 December 2022 Ordovician biostratigraphy: index fossils, biozones and correlation Daniel Goldman, Stephen A. Leslie, Yan Liang, and Stig M. Bergström https://doi.org/10.1144/SP532-2022-49 Open Access9 January 2023 Ordovician cyclostratigraphy and astrochronology Matthias Sinnesael https://doi.org/10.1144/SP532-2022-31 Full Access3 March 2023 Ordovician tephra distribution, tephrochronology and geochronology Patrick I. McLaughlin, Leon Normore, Bryan K. Sell, and Jahandar Ramezani https://doi.org/10.1144/SP532-2022-267 Full Access28 February 2023 Ordovician plate tectonic and palaeogeographical maps Christopher R. Scotese https://doi.org/10.1144/SP532-2022-311 Full Access10 March 2023 Changing palaeobiogeography during the Ordovician Period Thomas Servais, David A. T. Harper, Björn Kröger, Christopher Scotese, Alycia L. Stigall, and Yong-Yi Zhen https://doi.org/10.1144/SP532-2022-168 Full Access20 January 2023 Seawater signatures of Ordovician climate and environment Seth A. Young, Cole T. Edwards, Leho Ainsaar, Anders Lindskog, and Matthew R. Saltzman https://doi.org/10.1144/SP532-2022-258 Full Access15 December 2022 The Ordovician ocean circulation: a modern synthesis based on data and models Alexandre Pohl, Elise Nardin, Thijs R. A. Vandenbroucke, and Yannick Donnadieu https://doi.org/10.1144/SP532-2022-1 Open Access10 November 2022 Terrestrialization in the Ordovician Charles H. Wellman, Borja Cascales-Miñana, and Thomas Servais https://doi.org/10.1144/SP532-2022-92 The Ordovician System in Europe Open Access8 February 2023 A synopsis of the Ordovician System in its birthplace – Britain and Ireland Stewart G. Molyneux, David A. T. Harper, Mark R. Cooper, Steven Philip Hollis, Robert J. Raine, Adrian W. A. Rushton, M. Paul Smith, Philip Stone, Mark Williams, ... https://doi.org/10.1144/SP532-2022-235 Open Access18 January 2023 The Ordovician of Scandinavia: a revised regional stage classification Arne Thorshøj Nielsen, Per Ahlberg, Jan Ove R. Ebbestad, Øyvind Hammer, David Alexander Taylor Harper, Anders Lindskog, Christian Mac Ørum Rasmussen, and Svend Stouge https://doi.org/10.1144/SP532-2022-157 Open Access18 November 2022 Ordovician of the Eastern Baltic palaeobasin and the Tornquist Sea margin of Baltica Tõnu Meidla, Leho Ainsaar, Olle Hints, and Sigitas Radzevičius https://doi.org/10.1144/SP532-2022-141 Full Access6 December 2022 Stratigraphy and Sedimentary Record of the Ordovician System in Poland: a Review Wiesław Trela https://doi.org/10.1144/SP532-2022-109 Full Access14 February 2023 The Ordovician of France and neighbouring areas of Belgium and Germany Bertrand Lefebvre, J. Javier Álvaro, Josep Maria Casas, Jean-François Ghienne, Alain Herbosch, Alfredo Loi, Eric Monceret, Jacques Verniers, Muriel Vidal, Daniel Vizcaïno, and Thomas Servais https://doi.org/10.1144/SP532-2022-268 Full Access24 November 2022 The Ordovician of Sardinia (Italy): from the ‘Sardic Phase’ to the end-Ordovician glaciation, palaeogeography and geodynamic context Alfredo Loi, Fabrizio Cocco, Giacomo Oggiano, Antonio Funedda, Muriel Vidal, Annalisa Ferretti, Francesco Leone, Sebastiano Barca, Stefano Naitza, Jean-François Ghienne, and Gian Luigi Pillola https://doi.org/10.1144/SP532-2022-121 Full Access8 February 2023 Ordovician of the Bohemian Massif Petr Kraft, Ulf Linnemann, Michal Mergl, Jana Bruthansová, Lukáš Laibl, and Gerd Geyer https://doi.org/10.1144/SP532-2022-191 Full Access16 January 2023 A global view on the Ordovician stratigraphy of southeastern Europe Annalisa Ferretti, Hans Peter Schönlaub, Valeri Sachanski, Gabriella Bagnoli, Enrico Serpagli, Gian Battista Vai, Slavcho Yanev, Miloš Radonjić, Constantin Balica, Luca Bianchini, ... https://doi.org/10.1144/SP532-2022-174
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  • 6
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    Unknown
    In:  XXVIII General Assembly of the International Union of Geodesy and Geophysics (IUGG)
    Publication Date: 2023-07-07
    Description: The Nanok expedition (www.nanokexpedition.be) is an extreme sportive triathlon that took place from April to September 2022 in Greenland. The expedition consisted in a 600km traverse from West to East coasts using skis and pulkas, 1 000km sea-kayaking along the South coast and the opening of a 1 000m new free climbing route. During the skis and pulkas traverse, the explorers acquired continuous GNSS data, using a Septentrio AsteRx SB ProConnect powered by batteries and solar panels. This data set is used for two mains objectives. The first one is to make a profile of the current elevation of the ice sheet and compare it with elevation models. The second one is to use the GNSS data to retrieve the Total Electron Content (TEC) over Greenland to characterize the ionospheric activity at polar latitudes ((Figure 1). In this paper, we will discuss the technological challenge to acquire continuous GNSS data in extreme meteorological conditions, with weight and size limitations. We will then present our results on the estimated GNSS elevation profil, and the comparison with Arctic Digital elevation model of snow elevation. First results showed a mean melting on costal region of 1.5m/y. We also highlighted problems in the models which should be considered for ice mass balance estimation.
    Language: English
    Type: info:eu-repo/semantics/conferenceObject
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  • 7
    Publication Date: 2023-12-19
    Description: 〈jats:p〉Abstract. Accurate assessment of anthropogenic carbon dioxide (CO2) emissions and their redistribution among the atmosphere, ocean, and terrestrial biosphere in a changing climate is critical to better understand the global carbon cycle, support the development of climate policies, and project future climate change. Here we describe and synthesize data sets and methodology to quantify the five major components of the global carbon budget and their uncertainties. Fossil CO2 emissions (EFOS) are based on energy statistics and cement production data, while emissions from land-use change (ELUC), mainly deforestation, are based on land-use and land-use change data and bookkeeping models. Atmospheric CO2 concentration is measured directly, and its growth rate (GATM) is computed from the annual changes in concentration. The ocean CO2 sink (SOCEAN) is estimated with global ocean biogeochemistry models and observation-based fCO2 products. The terrestrial CO2 sink (SLAND) is estimated with dynamic global vegetation models. Additional lines of evidence on land and ocean sinks are provided by atmospheric inversions, atmospheric oxygen measurements, and Earth system models. The resulting carbon budget imbalance (BIM), the difference between the estimated total emissions and the estimated changes in the atmosphere, ocean, and terrestrial biosphere, is a measure of imperfect data and incomplete understanding of the contemporary carbon cycle. All uncertainties are reported as ±1σ. For the year 2022, EFOS increased by 0.9 % relative to 2021, with fossil emissions at 9.9±0.5 Gt C yr−1 (10.2±0.5 Gt C yr−1 when the cement carbonation sink is not included), and ELUC was 1.2±0.7 Gt C yr−1, for a total anthropogenic CO2 emission (including the cement carbonation sink) of 11.1±0.8 Gt C yr−1 (40.7±3.2 Gt CO2 yr−1). Also, for 2022, GATM was 4.6±0.2 Gt C yr−1 (2.18±0.1 ppm yr−1; ppm denotes parts per million), SOCEAN was 2.8±0.4 Gt C yr−1, and SLAND was 3.8±0.8 Gt C yr−1, with a BIM of −0.1 Gt C yr−1 (i.e. total estimated sources marginally too low or sinks marginally too high). The global atmospheric CO2 concentration averaged over 2022 reached 417.1±0.1 ppm. Preliminary data for 2023 suggest an increase in EFOS relative to 2022 of +1.1 % (0.0 % to 2.1 %) globally and atmospheric CO2 concentration reaching 419.3 ppm, 51 % above the pre-industrial level (around 278 ppm in 1750). Overall, the mean of and trend in the components of the global carbon budget are consistently estimated over the period 1959–2022, with a near-zero overall budget imbalance, although discrepancies of up to around 1 Gt C yr−1 persist for the representation of annual to semi-decadal variability in CO2 fluxes. Comparison of estimates from multiple approaches and observations shows the following: (1) a persistent large uncertainty in the estimate of land-use changes emissions, (2) a low agreement between the different methods on the magnitude of the land CO2 flux in the northern extra-tropics, and (3) a discrepancy between the different methods on the strength of the ocean sink over the last decade. This living-data update documents changes in methods and data sets applied to this most recent global carbon budget as well as evolving community understanding of the global carbon cycle. The data presented in this work are available at https://doi.org/10.18160/GCP-2023 (Friedlingstein et al., 2023). 〈/jats:p〉
    Repository Name: EPIC Alfred Wegener Institut
    Type: Article , isiRev
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  • 8
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    Unknown
    American Meteorological Society
    In:  EPIC3Bulletin of the American Meteorological Society, American Meteorological Society, 104(9), pp. s1-s10, ISSN: 0003-0007
    Publication Date: 2024-05-29
    Description: 〈jats:title〉Abstract〈/jats:title〉 〈jats:p〉—J. BLUNDEN, T. BOYER, AND E. BARTOW-GILLIES〈/jats:p〉 〈jats:p〉Earth’s global climate system is vast, complex, and intricately interrelated. Many areas are influenced by global-scale phenomena, including the “triple dip” La Niña conditions that prevailed in the eastern Pacific Ocean nearly continuously from mid-2020 through all of 2022; by regional phenomena such as the positive winter and summer North Atlantic Oscillation that impacted weather in parts the Northern Hemisphere and the negative Indian Ocean dipole that impacted weather in parts of the Southern Hemisphere; and by more localized systems such as high-pressure heat domes that caused extreme heat in different areas of the world. Underlying all these natural short-term variabilities are long-term climate trends due to continuous increases since the beginning of the Industrial Revolution in the atmospheric concentrations of Earth’s major greenhouse gases.〈/jats:p〉 〈jats:p〉In 2022, the annual global average carbon dioxide concentration in the atmosphere rose to 417.1±0.1 ppm, which is 50% greater than the pre-industrial level. Global mean tropospheric methane abundance was 165% higher than its pre-industrial level, and nitrous oxide was 24% higher. All three gases set new record-high atmospheric concentration levels in 2022.〈/jats:p〉 〈jats:p〉Sea-surface temperature patterns in the tropical Pacific characteristic of La Niña and attendant atmospheric patterns tend to mitigate atmospheric heat gain at the global scale, but the annual global surface temperature across land and oceans was still among the six highest in records dating as far back as the mid-1800s. It was the warmest La Niña year on record. Many areas observed record or near-record heat. Europe as a whole observed its second-warmest year on record, with sixteen individual countries observing record warmth at the national scale. Records were shattered across the continent during the summer months as heatwaves plagued the region. On 18 July, 104 stations in France broke their all-time records. One day later, England recorded a temperature of 40°C for the first time ever. China experienced its second-warmest year and warmest summer on record. In the Southern Hemisphere, the average temperature across New Zealand reached a record high for the second year in a row. While Australia’s annual temperature was slightly below the 1991–2020 average, Onslow Airport in Western Australia reached 50.7°C on 13 January, equaling Australia's highest temperature on record.〈/jats:p〉 〈jats:p〉While fewer in number and locations than record-high temperatures, record cold was also observed during the year. Southern Africa had its coldest August on record, with minimum temperatures as much as 5°C below normal over Angola, western Zambia, and northern Namibia. Cold outbreaks in the first half of December led to many record-low daily minimum temperature records in eastern Australia.〈/jats:p〉 〈jats:p〉The effects of rising temperatures and extreme heat were apparent across the Northern Hemisphere, where snow-cover extent by June 2022 was the third smallest in the 56-year record, and the seasonal duration of lake ice cover was the fourth shortest since 1980. More frequent and intense heatwaves contributed to the second-greatest average mass balance loss for Alpine glaciers around the world since the start of the record in 1970. Glaciers in the Swiss Alps lost a record 6% of their volume. In South America, the combination of drought and heat left many central Andean glaciers snow free by mid-summer in early 2022; glacial ice has a much lower albedo than snow, leading to accelerated heating of the glacier. Across the global cryosphere, permafrost temperatures continued to reach record highs at many high-latitude and mountain locations.〈/jats:p〉 〈jats:p〉In the high northern latitudes, the annual surface-air temperature across the Arctic was the fifth highest in the 123-year record. The seasonal Arctic minimum sea-ice extent, typically reached in September, was the 11th-smallest in the 43-year record; however, the amount of multiyear ice—ice that survives at least one summer melt season—remaining in the Arctic continued to decline. Since 2012, the Arctic has been nearly devoid of ice more than four years old.〈/jats:p〉 〈jats:p〉In Antarctica, an unusually large amount of snow and ice fell over the continent in 2022 due to several landfalling atmospheric rivers, which contributed to the highest annual surface mass balance, 15% to 16% above the 1991–2020 normal, since the start of two reanalyses records dating to 1980. It was the second-warmest year on record for all five of the long-term staffed weather stations on the Antarctic Peninsula. In East Antarctica, a heatwave event led to a new all-time record-high temperature of −9.4°C—44°C above the March average—on 18 March at Dome C. This was followed by the collapse of the critically unstable Conger Ice Shelf. More than 100 daily low sea-ice extent and sea-ice area records were set in 2022, including two new all-time annual record lows in net sea-ice extent and area in February.〈/jats:p〉 〈jats:p〉Across the world’s oceans, global mean sea level was record high for the 11th consecutive year, reaching 101.2 mm above the 1993 average when satellite altimetry measurements began, an increase of 3.3±0.7 over 2021. Globally-averaged ocean heat content was also record high in 2022, while the global sea-surface temperature was the sixth highest on record, equal with 2018. Approximately 58% of the ocean surface experienced at least one marine heatwave in 2022. In the Bay of Plenty, New Zealand’s longest continuous marine heatwave was recorded.〈/jats:p〉 〈jats:p〉A total of 85 named tropical storms were observed during the Northern and Southern Hemisphere storm seasons, close to the 1991–2020 average of 87. There were three Category 5 tropical cyclones across the globe—two in the western North Pacific and one in the North Atlantic. This was the fewest Category 5 storms globally since 2017. Globally, the accumulated cyclone energy was the lowest since reliable records began in 1981. Regardless, some storms caused massive damage. In the North Atlantic, Hurricane Fiona became the most intense and most destructive tropical or post-tropical cyclone in Atlantic Canada’s history, while major Hurricane Ian killed more than 100 people and became the third costliest disaster in the United States, causing damage estimated at $113 billion U.S. dollars. In the South Indian Ocean, Tropical Cyclone Batsirai dropped 2044 mm of rain at Commerson Crater in Réunion. The storm also impacted Madagascar, where 121 fatalities were reported.〈/jats:p〉 〈jats:p〉As is typical, some areas around the world were notably dry in 2022 and some were notably wet. In August, record high areas of land across the globe (6.2%) were experiencing extreme drought. Overall, 29% of land experienced moderate or worse categories of drought during the year. The largest drought footprint in the contiguous United States since 2012 (63%) was observed in late October. The record-breaking megadrought of central Chile continued in its 13th consecutive year, and 80-year record-low river levels in northern Argentina and Paraguay disrupted fluvial transport. In China, the Yangtze River reached record-low values. Much of equatorial eastern Africa had five consecutive below-normal rainy seasons by the end of 2022, with some areas receiving record-low precipitation totals for the year. This ongoing 2.5-year drought is the most extensive and persistent drought event in decades, and led to crop failure, millions of livestock deaths, water scarcity, and inflated prices for staple food items.〈/jats:p〉 〈jats:p〉In South Asia, Pakistan received around three times its normal volume of monsoon precipitation in August, with some regions receiving up to eight times their expected monthly totals. Resulting floods affected over 30 million people, caused over 1700 fatalities, led to major crop and property losses, and was recorded as one of the world’s costliest natural disasters of all time. Near Rio de Janeiro, Brazil, Petrópolis received 530 mm in 24 hours on 15 February, about 2.5 times the monthly February average, leading to the worst disaster in the city since 1931 with over 230 fatalities.〈/jats:p〉 〈jats:p〉On 14–15 January, the Hunga Tonga-Hunga Ha'apai submarine volcano in the South Pacific erupted multiple times. The injection of water into the atmosphere was unprecedented in both magnitude—far exceeding any previous values in the 17-year satellite record—and altitude as it penetrated into the mesosphere. The amount of water injected into the stratosphere is estimated to be 146±5 Terragrams, or ∼10% of the total amount in the stratosphere. It may take several years for the water plume to dissipate, and it is currently unknown whether this eruption will have any long-term climate effect.〈/jats:p〉
    Repository Name: EPIC Alfred Wegener Institut
    Type: Article , peerRev
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  • 9
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    Unknown
    American Meteorological Society
    In:  EPIC3Bulletin of the American Meteorological Society, American Meteorological Society, 104(9), pp. s271-s321, ISSN: 0003-0007
    Publication Date: 2024-05-29
    Repository Name: EPIC Alfred Wegener Institut
    Type: Article , peerRev
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  • 10
    Publication Date: 2024-02-05
    Description: We performed geochemical and sedimentological analyses on a 12.2 m long, radiocarbon-dated sediment core collected from Wide Channel (50°S; Chile) to reconstruct fluctuations of the marine-terminating HPS19, Penguin and Europa glaciers, located along the western side of the Southern Patagonian Icefield. The JPC42 sediment core was collected with a Jumbo Piston corer onboard the RV/IB Nathaniel B. Palmer in July 2005. An additional 1.5 m long Kasten core (KC41) was retrieved to sample the sediment-water interface. Both cores were scanned on an ITRAX XRF core scanner at WHOI in August 2008 and then sampled in 2 cm thick slices (ca.10 cm³) every 10 cm at the Marine and Geology Repository of Oregon State University in February 2021. Samples were freeze-dried at Ghent University, and all discrete analyses were performed at a 10 cm interval, except for CaCO3 in the lower 5.9 m of the core, which was analyzed at a 20 cm interval.
    Keywords: Bulk organic geochemistry; Calcium Carbonate; Grain Size; Holocene; inorganic geochemistry; Late Glacial; Neoglaciation; Patagonia; Patagonian fjords; stable carbon isotopes
    Type: Dataset
    Format: application/zip, 4 datasets
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