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  • 1
    Online Resource
    Online Resource
    American Society of Civil Engineers (ASCE) ; 2018
    In:  Journal of Waterway, Port, Coastal, and Ocean Engineering Vol. 144, No. 5 ( 2018-09)
    In: Journal of Waterway, Port, Coastal, and Ocean Engineering, American Society of Civil Engineers (ASCE), Vol. 144, No. 5 ( 2018-09)
    Type of Medium: Online Resource
    ISSN: 0733-950X , 1943-5460
    Language: English
    Publisher: American Society of Civil Engineers (ASCE)
    Publication Date: 2018
    detail.hit.zdb_id: 2011422-9
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  • 2
    Online Resource
    Online Resource
    American Geophysical Union (AGU) ; 1988
    In:  Journal of Geophysical Research: Oceans Vol. 93, No. C2 ( 1988-02-15), p. 1293-1301
    In: Journal of Geophysical Research: Oceans, American Geophysical Union (AGU), Vol. 93, No. C2 ( 1988-02-15), p. 1293-1301
    Abstract: A front‐tracking algorithm of Chern et al. (1986) is tested on the shallow‐water equations, using the Parrett and Cullen (1984) and Williams and Hori (1970) initial state, consisting of smooth finite amplitude waves depending on one space dimension alone. At high resolution the solution is almost indistinguishable from that obtained with the Glimm algorithm. The latter is known to converge to the true frontal solution, but is 20 times less efficient at the same resolution. The solutions obtained using the front‐tracking algorithm at 8 times coarser resolution are quite acceptable, indicating a very substantial gain in efficiency, which encourages application in realistic ocean models possessing two or three space dimensions.
    Type of Medium: Online Resource
    ISSN: 0148-0227
    Language: English
    Publisher: American Geophysical Union (AGU)
    Publication Date: 1988
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    detail.hit.zdb_id: 2403298-0
    detail.hit.zdb_id: 2016800-7
    detail.hit.zdb_id: 161666-3
    detail.hit.zdb_id: 161667-5
    detail.hit.zdb_id: 2969341-X
    detail.hit.zdb_id: 161665-1
    detail.hit.zdb_id: 3094268-8
    detail.hit.zdb_id: 710256-2
    detail.hit.zdb_id: 2016804-4
    detail.hit.zdb_id: 3094181-7
    detail.hit.zdb_id: 3094219-6
    detail.hit.zdb_id: 3094167-2
    detail.hit.zdb_id: 2220777-6
    detail.hit.zdb_id: 3094197-0
    SSG: 16,13
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  • 3
    Online Resource
    Online Resource
    Elsevier BV ; 2018
    In:  Progress in Oceanography Vol. 168 ( 2018-11), p. 310-324
    In: Progress in Oceanography, Elsevier BV, Vol. 168 ( 2018-11), p. 310-324
    Type of Medium: Online Resource
    ISSN: 0079-6611
    RVK:
    Language: English
    Publisher: Elsevier BV
    Publication Date: 2018
    detail.hit.zdb_id: 1497436-8
    detail.hit.zdb_id: 4062-9
    SSG: 21,3
    SSG: 14
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  • 4
    Online Resource
    Online Resource
    Journal of Marine Research/Yale ; 1992
    In:  Journal of Marine Research Vol. 50, No. 4 ( 1992-11-01), p. 545-566
    In: Journal of Marine Research, Journal of Marine Research/Yale, Vol. 50, No. 4 ( 1992-11-01), p. 545-566
    Type of Medium: Online Resource
    ISSN: 0022-2402 , 1543-9542
    Language: English
    Publisher: Journal of Marine Research/Yale
    Publication Date: 1992
    detail.hit.zdb_id: 410655-6
    detail.hit.zdb_id: 2066603-2
    SSG: 12
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  • 5
    Online Resource
    Online Resource
    American Society of Civil Engineers (ASCE) ; 2012
    In:  Journal of Waterway, Port, Coastal, and Ocean Engineering Vol. 138, No. 1 ( 2012-01), p. 63-71
    In: Journal of Waterway, Port, Coastal, and Ocean Engineering, American Society of Civil Engineers (ASCE), Vol. 138, No. 1 ( 2012-01), p. 63-71
    Type of Medium: Online Resource
    ISSN: 0733-950X , 1943-5460
    Language: English
    Publisher: American Society of Civil Engineers (ASCE)
    Publication Date: 2012
    detail.hit.zdb_id: 2011422-9
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  • 6
    Online Resource
    Online Resource
    American Meteorological Society ; 1997
    In:  Journal of Physical Oceanography Vol. 27, No. 5 ( 1997-05), p. 762-781
    In: Journal of Physical Oceanography, American Meteorological Society, Vol. 27, No. 5 ( 1997-05), p. 762-781
    Type of Medium: Online Resource
    ISSN: 0022-3670 , 1520-0485
    Language: English
    Publisher: American Meteorological Society
    Publication Date: 1997
    detail.hit.zdb_id: 2042184-9
    detail.hit.zdb_id: 184162-2
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  • 7
    Online Resource
    Online Resource
    American Meteorological Society ; 1999
    In:  Journal of Physical Oceanography Vol. 29, No. 3 ( 1999-03), p. 418-435
    In: Journal of Physical Oceanography, American Meteorological Society, Vol. 29, No. 3 ( 1999-03), p. 418-435
    Type of Medium: Online Resource
    ISSN: 0022-3670 , 1520-0485
    Language: English
    Publisher: American Meteorological Society
    Publication Date: 1999
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    detail.hit.zdb_id: 184162-2
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  • 8
    Online Resource
    Online Resource
    American Meteorological Society ; 2000
    In:  Journal of Physical Oceanography Vol. 30, No. 1 ( 2000-01), p. 15-30
    In: Journal of Physical Oceanography, American Meteorological Society, Vol. 30, No. 1 ( 2000-01), p. 15-30
    Type of Medium: Online Resource
    ISSN: 0022-3670 , 1520-0485
    Language: English
    Publisher: American Meteorological Society
    Publication Date: 2000
    detail.hit.zdb_id: 2042184-9
    detail.hit.zdb_id: 184162-2
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  • 9
    Online Resource
    Online Resource
    Association for Computing Machinery (ACM) ; 1994
    In:  ACM Transactions on Mathematical Software Vol. 20, No. 3 ( 1994-09), p. 247-261
    In: ACM Transactions on Mathematical Software, Association for Computing Machinery (ACM), Vol. 20, No. 3 ( 1994-09), p. 247-261
    Abstract: Software is provided for the rapid solution of certain types of elliptic equations in rectangular and irregular domains. Specifically, solutions are found in two dimensions for the nonseparable self-adjoint elliptic problem ∇·( g∇Ψ )= f , where g and f are given functions of x and y , in two-dimensional polygonal domains with Dirichlet boundary conditions. Helmholtz and Poisson problems in polygonal domains and the general variable coefficient problem (i.e., g≠1 ) in a rectangular domain may be treated as special cases. The method of solution combines the use of the capacitance matrix method, to treat the irregular boundary, with an efficient iterative method (using the Laplacian as preconditioner) to deal 2 with nonseparability. Each iterative step thus involves solving the Poisson equation in a rectangular domain. The package includes separate, easy-to-use routines for the Helmholtz problem and the general problem in rectangular and general polygonal domains, and example driver routines for each. Both single- and double-precision routines are provided. Second-order-accurate finite differencing is employed. Storage requirements increase approximately as p 2 + n 2 , where p is the number of irregular boundary points and where n is the linear domain dimension. The preprocessing time (the capacitance matrix calculation) varies as pn 2 log n , and the solution time varies as n 2 log n . If the equations are to be solved repeatedly in the same geometry, but with different source or diffusion functions, the capacitance matrix need only be calculated once, and hence the algorithm is particularly efficient for such cases.
    Type of Medium: Online Resource
    ISSN: 0098-3500 , 1557-7295
    Language: English
    Publisher: Association for Computing Machinery (ACM)
    Publication Date: 1994
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    detail.hit.zdb_id: 191812-6
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  • 10
    Online Resource
    Online Resource
    American Geophysical Union (AGU) ; 1991
    In:  Journal of Geophysical Research: Oceans Vol. 96, No. C5 ( 1991-05-15), p. 8869-8880
    In: Journal of Geophysical Research: Oceans, American Geophysical Union (AGU), Vol. 96, No. C5 ( 1991-05-15), p. 8869-8880
    Abstract: In a recent observational study, Koblinsky et al. (1989) attempted to demonstrate that the topographic Sverdrup balance can account for mesoscale current fluctuations with periods between 10 and 100 days in the abyssal North Pacific. However, the topographic Sverdrup balance proved difficult to verify systematically over the North Pacific. In this paper the conditions required to obtain the topographic Sverdrup balance are investigated through numerical experiments with a stochastically forced, barotropic, quasi‐geostrophic numerical model of the subpolar North Pacific. In the numerical experiments the topographic Sverdrup balance emerges from area averages of the terms in the vorticity equation, but only for periods longer than about 40 days when the averages are taken over 4°×4° region. This period increases when averages are taken over progressively smaller regions. An examination of vorticity balances at individual points along sections through the model domain indicates that the topographic Sverdrup balance is not obtained at individual points, even for very long period motions. The possibility of verifying topographic Sverdrup dynamics with oceanic data is considered. It is argued that topographically generated small scales in the velocity field reduce the likelihood that the topographic Sverdrup balance can be systematically observed in velocity measurements from individual current meter moorings. The results suggest that the vorticity balance is complex and that topographic Sverdrup dynamics cannot be expected to provide an adequate explanation for the seasonal modulation of the abyssal eddy kinetic energy that is observed with moored instrumentation in the North Pacific.
    Type of Medium: Online Resource
    ISSN: 0148-0227
    Language: English
    Publisher: American Geophysical Union (AGU)
    Publication Date: 1991
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    detail.hit.zdb_id: 161667-5
    detail.hit.zdb_id: 2969341-X
    detail.hit.zdb_id: 161665-1
    detail.hit.zdb_id: 3094268-8
    detail.hit.zdb_id: 710256-2
    detail.hit.zdb_id: 2016804-4
    detail.hit.zdb_id: 3094181-7
    detail.hit.zdb_id: 3094219-6
    detail.hit.zdb_id: 3094167-2
    detail.hit.zdb_id: 2220777-6
    detail.hit.zdb_id: 3094197-0
    SSG: 16,13
    Location Call Number Limitation Availability
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