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Part One Introduction to the Spectral Element Method and Spectral Analysis of Signals. |
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1.1 Theoretical Background. |
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1.2 Historical Background. |
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2 Spectral Analysis of Signals. |
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2.2 Discrete Fourier Transform and the FFT. |
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2.8 General Procedure of DFT Processing. |
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2.9 DFTs of Typical Functions. |
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Part Two Theory of Spectral Element Method. |
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3 Methods of Spectral Element Formulation. |
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3.1 Force-Displacement Relation Method. |
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3.3 State-Vector Equation Method. |
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3.4 Reduction from the Finite Models. |
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4 Spectral Element Analysis Method. |
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4.1 Formulation of Spectral Element Equation. |
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4.2 Assembly and the Imposition of Boundary Conditions. |
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4.3 Eigenvalue Problem and Eigensolutions. |
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4.4 Dynamic Responses with Null Initial Conditions. |
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4.5 Dynamic Responses with Arbitrary Initial Conditions. |
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4.6 Dynamic Responses of Nonlinear Systems. |
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Part Three Applications of Spectral Element Method. |
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5 Dynamics of Beams and Plates. |
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6 Flow-Induced Vibrations of Pipelines. |
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6.1 Theory of Pipe Dynamics. |
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6.2 Pipelines Conveying Internal Steady Fluid. |
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6.3 Pipelines Conveying Internal Unsteady Fluid. |
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Appendix 6.A: Finite Element Matrices: Steady Fluid. |
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Appendix 6.B: Finite Element Matrices: Unsteady Fluid. |
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7 Dynamics of Axially Moving Structures. |
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7.1 Axially Moving String. |
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7.2 Axially Moving Bernoulli–Euler Beam. |
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7.3 Axially Moving Timoshenko Beam. |
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7.4 Axially Moving Thin Plates. |
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Appendix 7.A: Finite Element Matrices for Axially Moving String. |
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Appendix 7.B: Finite Element Matrices for Axially Moving Bernoulli–Euler Beam. |
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Appendix 7.C: Finite Element Matrices for Axially Moving Timoshenko Beam. |
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Appendix 7.D: Finite Element Matrices for Axially Moving Plate. |
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8 Dynamics of Rotor Systems. |
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8.2 Spectral Element Modeling. |
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8.3 Finite Element Model. |
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Appendix 8.A: Finite Element Matrices for the Transverse Bending Vibration. |
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9 Dynamics of Multi-Layered Structures. |
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9.1 Elastic–Elastic Two-Layer Beams. |
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9.2 Elastic–Viscoelastic–elastic–Three-Layer (PCLD) Beams. |
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Appendix 9.A: Finite Element Matrices for the Elastic–Elastic Two-Layer Beam. |
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Appendix 9.B: Finite Element Matrices for the Elastic–VEM–Elastic Three-Layer Beam. |
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10 Dynamics of Smart Structures. |
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10.1 Elastic–Piezoelectric Two-Layer Beams. |
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10.2 Elastic–Viscoelastic–Piezoelctric Three-Layer (ACLD) Beams. |
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11 Dynamics of Composite Laminated Structures. |
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11.1 Theory of Composite Mechanics. |
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11.2 Equations of Motion for Composite Laminated Beams. |
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11.3 Dynamics of Axial–Bending–Shear Coupled Composite Beams. |
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11.4 Dynamics of Bending–Torsion–Shear Coupled Composite Beams. |
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Appendix 11.A: Finite Element Matrices for Axial–Bending–Shear Coupled Composite Beams. |
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Appendix 11.B: Finite Element Matrices for Bending–Torsion–Shear Coupled Composite Beams. |
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12 Dynamics of Periodic Lattice Structures. |
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12.1 Continuum Modeling Method. |
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12.2 Spectral Transfer Matrix Method. |
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13 Biomechanics: Blood Flow Analysis. |
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13.1 Governing Equations. |
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13.2 Spectral Element Modeling: I. Finite Element. |
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13.3 Spectral Element Modeling: II. Semi-Infinite Element. |
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13.4 Assembly of Spectral Elements. |
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13.5 Finite Element Model. |
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Appendix 13.A: Finite Element Model for the 1-D Blood Flow. |
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14 Identification of Structural Boundaries and Joints. |
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14.1 Identification of Non-Ideal Boundary Conditions. |
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14.2 Identification of Joints. |
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15 Identification of Structural Damage. |
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15.1 Spectral Element Modeling of a Damaged Structure. |
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15.2 Theory of Damage Identification. |
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15.3 Domain-Reduction Method. |
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16.1 SEM–FEM Hybrid Method. |
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16.2 Identification of Impact Forces. |
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