| 000 | 03296nam a22004095i 4500 | ||
|---|---|---|---|
| 999 |
_c103476 _d103476 _x1 |
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| 001 | 103476 | ||
| 003 | DE-He213 | ||
| 005 | 20230102113132.0 | ||
| 006 | a||||fo|||| 00| 0 | ||
| 007 | cr nn 008mamaa | ||
| 008 | 150609s2015 gw | s |||| 0|eng d | ||
| 020 | _a9783319162027 | ||
| 024 | 7 |
_a10.1007/978-3-319-16202-7 _2doi |
|
| 040 |
_bspa _dES-MaUEC |
||
| 050 | 4 |
_aTJ828 _b2015 EB |
|
| 245 | 1 | 0 |
_aCFD for Wind and Tidal Offshore Turbines _cedited by Esteban Ferrer, Adeline Montlaur. |
| 264 | 1 |
_aCham _bSpringer International Publishing _c2015 |
|
| 300 | _a1 recurso en línea (VIII, 128 páginas 61 ilustraciones, 27 ilustraciones a color.) | ||
| 336 |
_2rdacontent _aTexto (visual) _btxt |
||
| 337 |
_2rdamedia _aelectrónico _bc |
||
| 338 |
_2rdacarrier _arecurso electrónico _bcr |
||
| 490 | 0 |
_aSpringer Tracts in Mechanical Engineering, _x2195-9862 |
|
| 490 | 0 | _aEngineering (Springer-11647) | |
| 505 | 0 | _aIntroduction -- Flow scales in cross flow turbines -- Numerical study of 2D vertical axis wind and tidal turbines with a degree-adaptive hybridizable discontinuous Galerkin method -- A MLS-based high-order-preserving sliding mesh technique with no intersections -- Vertical-axis wind turbine start-up modelled with a high-order numerical solver -- Large-Eddy Simulation of a Vertical Axis Tidal Turbine using an Immersed Boundary Method -- Computational Study of the Interaction between Hydrodynamics and Rigid Body Dynamics of a Darrieus Type H Turbine -- The physics of starting process for vertical axis wind turbines -- Hybrid mesh deformation tool for offshore wind turbines aeroelasticity prediction -- Numerical Simulation of Wave Loading on Static Offshore Structures -- MLS-based selective limiting for Shallow Waters Equations -- A Comparison of Panel Method and RANS Calculations for a Horizontal Axis Marine Current Turbine. | |
| 520 | 3 | _aThe book encompasses novel CFD techniques to compute offshore wind and tidal applications. Computational fluid dynamics (CFD) techniques are regarded as the main design tool to explore the new engineering challenges presented by offshore wind and tidal turbines for energy generation. The difficulty and costs of undertaking experimental tests in offshore environments have increased the interest in the field of CFD which is used to design appropriate turbines and blades, understand fluid flow physical phenomena associated with offshore environments, predict power production or characterise offshore environments, amongst other topics. | |
| 988 | _aEBSPRINGER_2018 | ||
| 650 | 7 |
_aAerogeneradores _2embne _9145746 |
|
| 650 | 7 |
_9139500 _aEnergía eólica |
|
| 700 | 1 |
_aFerrer, Esteban. _eeditor literario _4edt _4http://id.loc.gov/vocabulary/relators/edt _1http://viaf.org/viaf/11598327/ |
|
| 700 | 1 |
_aMontlaur, Adeline. _eeditor literario _4edt _4http://id.loc.gov/vocabulary/relators/edt _1http://viaf.org/viaf/305862758/ |
|
| 776 | 0 | 8 |
_iEdición impresa: _z9783319162034 |
| 776 | 0 | 8 |
_iEdición impresa: _z9783319162010 |
| 776 | 0 | 8 |
_iEdición impresa: _z9783319365619 |
| 856 | 4 | 0 |
_uhttps://go.openathens.net/redirector/universidadeuropea.es?url=https://doi.org/10.1007/978-3-319-16202-7 _zAcceso a este recurso digital (usuarios Universidad Europea de Madrid) |
| 942 |
_2lcc _cLE |
||
| 998 |
_b03/2019 _dz _eIG _zSI |
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