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  • 1
    Call number: 9783319664934 (e-book)
    Description / Table of Contents: This book provides contributions from leading experts on the integration of novel sensing technologies to yield unprecedented observations of coupled biological, chemical, and physical processes in the ocean from the macro to micro scale. Authoritative entries from experts around the globe provide first-hand information for oceanographers and researchers looking for solutions to measurement problems.  Ocean observational techniques have seen rapid advances in the last few years and this book addresses the need for a single overview of present and future trends in near real time and real time. First the past, present and future scenarios of ocean observational tools and techniques are elucidated. Then this book divides into three modes of ocean observations: surface, upper ocean and deep ocean. This is followed by data quality and modelling. Collecting a summary of methods and applications, this book provides first-hand information for oceanographers and researchers looking for solutions to measurement problems. This book is also suitable for final year undergraduate students or beginning graduate students in ocean engineering, oceanography and various other engineering students (such as Mechanical, Civil, Electrical, and Bioengineering) who are interested in specializing their skills towards modern measurements of the ocean.
    Type of Medium: 12
    Pages: 1 Online-Ressource (xii, 323 Seiten) , Illustrationen, Diagramme
    ISBN: 978-3-319-66493-4 , 9783319664934
    ISSN: 2365-7677 , 2365-7685
    Series Statement: Springer oceanography
    Language: English
    Note: Contents Part 1. Introduction -- 1. Recent Trends in Ocean Observations -- Part 2. Surface Observations -- 2. Observing Surface Meteorology and Air-Sea Fluxes -- 3. Drifter Technology and Impacts for Sea Surface Temperature, Sea-Level Pressure and Ocean Circulation Studies -- 4. Origin, Tranformation and Measurement of Waves in Ocean -- Part 3. Subsurface Observations -- 5. Oceanographic Floats- Principles of Operation -- 6. . Measuring Ocean Turbulence -- 7. New Science and Novel Approaches Enabled by Autonomous Gliders -- 8. Advances in In-Situ Ocean Measurements -- Part 4. Remote Sensing -- 9. Ocean Remote Sensing: Concept to Realization for Physical Oceanographic Studies -- 10. Near Real-time Underwater Passive Acoustic Monitoring of Natural and Anthropogenic Sounds -- 11. Data Return Aspects of CODAR and WERA High Frequency Radars in Mapping Currents -- Part 5. Data (Data Management) -- 12. Sensor Performance and Data Quality Control -- 13. Near Real Time Data Recovery from Oceanographic Moorings -- 14. Managing Metocean In Situ Data in the WMO Framework -- Part 6. Societal Applilications -- 15. Applications of Ocean In-Situ Observations and its Societal Relevance --Index
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  • 2
    ISSN: 1010-6030
    Source: Elsevier Journal Backfiles on ScienceDirect 1907 - 2002
    Topics: Chemistry and Pharmacology
    Type of Medium: Electronic Resource
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  • 3
    Electronic Resource
    Electronic Resource
    New York, NY : American Institute of Physics (AIP)
    Physics of Fluids 4 (1992), S. 1524-1533 
    ISSN: 1089-7666
    Source: AIP Digital Archive
    Topics: Physics
    Notes: Self-similar solutions are obtained for the supersonic compression of a plasma containing an axial current and an entrained axial magnetic field (screw pinch). These solutions represent a complete generalization of previous works done on the Z-pinch and aitch-theta-pinch schemes. The solutions presented herein represent a screw-pinch plasma with a diffuse current profile. Three separate plasma implosion modes are identified. These modes differ qualitatively from the Z-pinch and aitch-theta-pinch schemes. They are comprised of the plasma annulus implosion, a converging transverse magnetohydrodynamic shock, and the propagation of fast magnetosonic waves toward the axis (weak discontinuity). These modes are chosen on the basis of their ability to achieve magnetic field cumulation during the course of the implosion. Analytic expressions describing the asymptotic behavior of the hydromagnetic profiles are obtained for each of the three implosion modes. Numerical examples for selected boundary conditions, representing realistic plasma parameters for the purpose of ultrahigh magnetic field generation, are presented.
    Type of Medium: Electronic Resource
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  • 4
    Electronic Resource
    Electronic Resource
    Amsterdam : Elsevier
    Resources Policy 9 (1983), S. 288-295 
    ISSN: 0301-4207
    Keywords: Policy options ; Pricing ; Water
    Source: Elsevier Journal Backfiles on ScienceDirect 1907 - 2002
    Topics: Energy, Environment Protection, Nuclear Power Engineering , Economics
    Type of Medium: Electronic Resource
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  • 5
    Electronic Resource
    Electronic Resource
    Amsterdam : Elsevier
    Nuclear Engineering and Design 147 (1994), S. 403-408 
    ISSN: 0029-5493
    Source: Elsevier Journal Backfiles on ScienceDirect 1907 - 2002
    Topics: Energy, Environment Protection, Nuclear Power Engineering
    Type of Medium: Electronic Resource
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  • 6
    Electronic Resource
    Electronic Resource
    [S.l.] : International Union of Crystallography (IUCr)
    Acta crystallographica 47 (1991), S. 400-404 
    ISSN: 1600-5724
    Source: Crystallography Journals Online : IUCR Backfile Archive 1948-2001
    Topics: Chemistry and Pharmacology , Geosciences , Physics
    Notes: The maximum-entropy method of image reconstruction is discussed in the context of the crystallographic phase problem. Entropy is the function to be maximized in a space of phases which has dimension equal to the number of structure-factor constraints. The function ∫ [1 − exp (−ρ/ρ0)] dV is proposed as a suitable one. An analogy between the phase problem and the spin-glass problem of condensed-matter physics is discussed. This analogy has instigated a study of the geometry of the entropy surface in the space of unknown phases for a simple model and preliminary results are presented.
    Type of Medium: Electronic Resource
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  • 7
    Electronic Resource
    Electronic Resource
    Springer
    Boundary layer meteorology 91 (1999), S. 227-257 
    ISSN: 1573-1472
    Keywords: Coastal boundary layer ; Initialisation ; Mesoscale model ; Sea model breeze ; Thermal internal boundary layer ; Turbulence
    Source: Springer Online Journal Archives 1860-2000
    Topics: Geosciences , Physics
    Notes: Abstract A numerical two-dimensional-mesoscale model with a level 1.5 closure scheme for turbulence is described. The model is used to simulate the boundary layer over coastal complex terrain. Meteorological data available from the Øresund land-sea-land terrain experiment are used to study the performance of the model. The model could simulate generally observed complexities in the mean wind and temperature fields. Internal boundary layers over the water and land surfaces were identified by the height of lowest value in the turbulence kinetic energy profile and this showed good agreement with radiosonde (RS) observations. Some disagreements with the data were also noticed, especially near the surface. The wind speed was over-predicted. Attempts were made to improve the model performance by adopting different schemes for model initialisation. Results showed that initialisation with an early model start time and observed wind profile near the inflow boundary improved the performance. The wind speed over-prediction could be further minimised by using a more realistic objective initialisation scheme. The problem centred around the proper estimation of the turbulent diffusion coefficient K through the closure scheme. Despite using the most popular empirical relationships in the level 1.5 closure scheme, these differences persisted. While this needs further investigation, the present model can be used to supply wind fields for practical purposes such as air pollution calculations.
    Type of Medium: Electronic Resource
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  • 8
    Publication Date: 2019-06-03
    Description: The deep ocean below 200 m water depth is the least observed, but largest habitat on our planet by volume and area. Over 150 years of exploration has revealed that this dynamic system provides critical climate regulation, houses a wealth of energy, mineral, and biological resources, and represents a vast repository of biological diversity. A long history of deep-ocean exploration and observation led to the initial concept for the Deep-Ocean Observing Strategy (DOOS), under the auspices of the Global Ocean Observing System (GOOS). Here we discuss the scientific need for globally integrated deep-ocean observing, its status, and the key scientific questions and societal mandates driving observing requirements over the next decade. We consider the Essential Ocean Variables (EOVs) needed to address deep-ocean challenges within the physical, biogeochemical, and biological/ecosystem sciences according to the Framework for Ocean Observing (FOO), and map these onto scientific questions. Opportunities for new and expanded synergies among deep-ocean stakeholders are discussed, including academic-industry partnerships with the oil and gas, mining, cable and fishing industries, the ocean exploration and mapping community, and biodiversity conservation initiatives. Future deep-ocean observing will benefit from the greater integration across traditional disciplines and sectors, achieved through demonstration projects and facilitated reuse and repurposing of existing deep-sea data efforts. We highlight examples of existing and emerging deep-sea methods and technologies, noting key challenges associated with data volume, preservation, standardization, and accessibility. Emerging technologies relevant to deep-ocean sustainability and the blue economy include novel genomics approaches, imaging technologies, and ultra-deep hydrographic measurements. Capacity building will be necessary to integrate capabilities into programs and projects at a global scale. Progress can be facilitated by Open Science and Findable, Accessible, Interoperable, Reusable (FAIR) data principles and converge on agreed to data standards, practices, vocabularies, and registries. We envision expansion of the deep-ocean observing community to embrace the participation of academia, industry, NGOs, national governments, international governmental organizations, and the public at large in order to unlock critical knowledge contained in the deep ocean over coming decades, and to realize the mutual benefits of thoughtful deep-ocean observing for all elements of a sustainable ocean.
    Repository Name: EPIC Alfred Wegener Institut
    Type: Article , peerRev
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  • 9
    Publication Date: 2019-12-13
    Repository Name: EPIC Alfred Wegener Institut
    Type: Conference , notRev
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  • 10
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    AtlantOS Ocean Best Practices Working Group
    Publication Date: 2021-05-19
    Description: Presentation at 'Evolving and Sustaining Ocean Best Practices Workshop II, Intergovernmental Oceanographic Commission, Paris, France, 04-06 Dec 2018.'
    Description: Published
    Repository Name: AquaDocs
    Type: Conference Material , Not Known
    Format: 20 slides
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