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| 001 | 94489 | ||
| 003 | ES-MaUEC | ||
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| 007 | cr cnu|||unuuu | ||
| 008 | 160811t20162017si a ob 000 0 eng d | ||
| 020 | _a9789811019012 | ||
| 020 |
_a9789811019029 _q(electronic bk.) |
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| 020 | _a9811019010 | ||
| 020 |
_a9811019029 _q(electronic bk.) |
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_z9789811019012 _q(print) |
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_a(OCoLC)956505399 _z(OCoLC)959031814 _z(OCoLC)960704978 _z(OCoLC)974651036 _z(OCoLC)981103524 |
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| 050 | 4 |
_aTA347.F5 _bG364 2016 EB |
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| 100 | 1 |
_aGanguli, Ranjan _eautor _997725 |
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| 245 | 1 | 0 |
_aFinite element analysis of rotating beams : _bphysics based interpolation _cRanjan Ganguli. |
| 264 | 1 |
_aSingapore _bSpringer _c[2016] |
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| 264 | 4 | _c2017 | |
| 300 |
_a1 recurso en línea (xii, 283 páginas) _bilustraciones (algunas a color) |
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| 336 |
_aTexto _btxt _2rdacontent |
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| 337 |
_aelectrónico _bc _2rdamedia |
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| 338 |
_arecurso electrónico _bcr _2rdacarrier |
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| 347 |
_atext file _bPDF _2rda |
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| 490 | 0 |
_aFoundations of engineering mechanics _x1612-1384 |
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| 500 |
_aSpringerLink _bSpringer Engineering eBooks 2017 English+International |
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| 504 | _aIncluye referencias bibliográficas | ||
| 505 | 0 | _aPreface; Contents; About the Author; 1 Introduction; 1.1 Introduction; 1.1.1 Elastic Blade; 1.1.2 Horizontal Force Equilibrium; 1.1.3 Boundary Conditions; 1.1.4 Initial Conditions; 1.1.5 Cantilever Beam Vibrations (Non-rotating); 1.1.6 Beam Functions; 1.1.7 Rotating Beam Vibration; 1.2 Galerkin Method; 1.3 Rayleigh -- Ritz Method; 1.4 Finite Element Method; 1.4.1 Element Properties; 1.4.2 Energy Expressions; 1.4.3 Assembly of Elements; 1.4.4 Cantilever; 2 Stiff String Basis Functions; 2.1 Stiff String Equation; 2.2 Stiff String Basis Functions; 2.3 Uniform Rotating Beam | |
| 505 | 8 | _a2.4 Tapered Rotating Beam2.5 Hybrid Basis Functions; 2.6 Finite Element; 2.6.1 Uniform Rotating Beam; 2.7 Tapered Rotating Beam; 2.8 Summary; References; 3 Rational Interpolation Functions; 3.1 Governing Differential Equation; 3.2 Hermite Shape Functions; 3.3 New Shape Functions; 3.4 Static Finite Element Analysis; 3.5 Dynamic Finite Element Analysis; 3.5.1 Uniform Beam; 3.5.2 Tapered Rotating Beam; 3.6 Summary; References; 4 Fourier-p Superelement; 4.1 Governing Equation of Rotating Beams; 4.2 Shape Functions; 4.3 Superelement Matrices; 4.4 Numerical Results; 4.4.1 Uniform Rotating Beam | |
| 505 | 8 | _a4.4.2 Tapered Rotating Beam4.5 Summary; References; 5 Physics Based Basis Functions; 5.1 Basis Function; 5.2 Finite Element Analysis; 5.3 Numerical Results; 5.3.1 Uniform Beam; 5.3.2 Tapered Beam; 5.3.3 Beams with Hub Offset; 5.4 Summary; References; 6 Collocation Approach; 6.1 Governing Differential Equation; 6.2 Point Collocation Approach; 6.2.1 Collocation Point at a Variable Location Within Beam Element; 6.2.2 Collocation Point Near the Left Node of Beam Element; 6.2.3 Collocation Point at the Midpoint of Beam Element; 6.2.4 Collocation Point Near the Right Node of Beam Element | |
| 505 | 8 | _a6.2.5 Two Point Collocation6.2.6 Analysis of Shape Functions; 6.3 Finite Element Formulation; 6.4 Numerical Results; 6.4.1 Uniform Rotating Beam; 6.4.2 Tapered Rotating Beam; 6.5 Summary; References; 7 Rotor Blade Finite Element; 7.1 Energy Expressions; 7.2 Governing Differential Equations; 7.3 Derivation of the Shape Functions; 7.3.1 Shape Functions for Flapwise Bending; 7.3.2 Shape Functions for Lead-Lag Bending; 7.3.3 Shape Functions for Axial Deflection; 7.3.4 Shape Functions for Torsion; 7.4 Finite Element Method; 7.5 Numerical Results; 7.5.1 Analysis of Shape Functions | |
| 505 | 8 | _a7.5.2 Validation Study7.6 Convergence Study of New FEM Element and Polynomials; 7.7 Summary; References; 8 Spectral Finite Element Method; 8.1 Governing Differential Equation; 8.2 Spectral Finite Element Formulation; 8.2.1 Interpolating Function for SFER; 8.2.2 Interpolating Function for SFEN; 8.2.3 Dynamic Stiffness Matrix in Frequency Domain; 8.3 Free Vibration Results; 8.3.1 Uniform Beam; 8.3.2 Tapered Beam 1-Linear Mass and Cubic Flexural Stiffness Variation; 8.3.3 Tapered Beam 2-Linear Mass and Flexural Stiffness Variation; 8.4 Wave Propagation Study; 8.4.1 Convergence Study | |
| 520 | 3 | _aThis book addresses the solution of rotating beam free-vibration problems using the finite element method. It provides an introduction to the governing equation of a rotating beam, before outlining the solution procedures using Rayleigh-Ritz, Galerkin and finite element methods. The possibility of improving the convergence of finite element methods through a judicious selection of interpolation functions, which are closer to the problem physics, is also addressed. The book offers a valuable guide for students and researchers working on rotating beam problems ? important engineering structures used in helicopter rotors, wind turbines, gas turbines, steam turbines and propellers ? and their applications. It can also be used as a textbook for specialized graduate and professional courses on advanced applications of finite element analysis. | |
| 650 | 7 |
_aMétodo de elementos finitos _2embne _0(OCoLC)fst00924897 _0 _9141492 |
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| 856 | 4 | 0 |
_uhttps://go.openathens.net/redirector/universidadeuropea.es?url=http://link.springer.com/10.1007/978-981-10-1902-9 _zAcceso a este recurso digital (usuarios Universidad Europea de Madrid) |
| 988 | _aEBOOK, asignarmaterias, EBSPRINGER_2017A | ||
| 998 |
_b02/2018 _dz _e- _zSI |
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| 999 |
_c94489 _d94489 _x1 |
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