Preface |
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xv | |
Acknowledgments |
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xix | |
Part I Anatomy, Biomechanics, And Alloarthroplasty Of Human Joints |
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1 | (72) |
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1 Biomechanics Of The Human Skeleton And The Problem Of Alloarthroplasty |
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3 | (6) |
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1.1 Introduction to History of Biomechanics and Alloarthroplasty |
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3 | (4) |
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1.2 Biomechanics of Human Joints and Tissues |
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7 | (2) |
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2 Introduction To The Anatomy Of The Skeletal System |
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9 | (25) |
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2.1 Anatomy of the Skeletal System |
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9 | (3) |
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2.2 Human Joints and Their Functions |
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12 | (2) |
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2.3 Tribology of Human Joints |
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14 | (1) |
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2.4 Biomechanics of the Skeletal System |
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15 | (19) |
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17 | (9) |
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26 | (2) |
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28 | (2) |
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30 | (1) |
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31 | (3) |
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3 Total Replacement Of Human Joints |
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34 | (39) |
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3.1 View of Arthroplasty Developments |
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34 | (3) |
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3.2 Static and Dynamic Loading of Human Joint Replacements |
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37 | (1) |
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3.3 Mechanical Destruction of Implants and Demands on Human Joint Arthroplasty |
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38 | (1) |
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3.3.1 Fatigue Fractures of Human Joint Replacements, Corrosion of Metal Implants |
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38 | (1) |
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3.3.2 Requirements Imposed on Human Joint Arthroplasty |
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39 | (1) |
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3.4 Biomaterials in Ostheosynthesis and Alloarthroplasty |
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39 | (15) |
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39 | (2) |
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3.4.2 Metal, Plastic, Ceramic, Composite Materials, and Bone Cement |
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41 | (13) |
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3.5 Artificial Joint Replacements |
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54 | (21) |
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54 | (6) |
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3.5.2 Knee Joint Arthroplasty |
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60 | (2) |
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3.5.3 Replacements of Other Joints of the Upper and Lower Limbs |
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62 | (3) |
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3.5.4 Treatment of Toracolumbar Fractures |
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65 | (5) |
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3.5.5 Fracture Treatments by Internal and External Fixations |
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70 | (3) |
Part II Mathematical Models Of Biomechanics |
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73 | (308) |
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4 Background Of Biomechanics |
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75 | (56) |
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75 | (2) |
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4.2 Fundamentals of Continuum Mechanics |
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77 | (11) |
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77 | (1) |
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4.2.2 Deformation, Motion, Stresses, Strains, and Conservation Equations |
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77 | (11) |
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4.3 Background of the Static and Dynamic Continuum Mechanics in Different Rheologies |
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88 | (22) |
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4.3.1 Conservation Laws in Their Integral and Differential Forms |
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88 | (6) |
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94 | (10) |
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4.3.3 Basic Boundary Value Problems of the Theory of Linear Elasticity |
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104 | (1) |
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4.3.4 Energetic Considerations |
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104 | (3) |
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4.3.5 Variational Principles in Small Displacement Theory |
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107 | (3) |
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4.4 Background of the Quasi-Static and Dynamic Continuum Mechanics in Thermo(visco)elastic Rheology |
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110 | (21) |
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4.4.1 Friction, Wear, and Lubrication in Contact Mechanics |
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110 | (5) |
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4.4.2 Equations of Equilibrium and Motion, Boundary, Contact, and Initial Conditions |
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115 | (16) |
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5 Mathematical Models Of Particular Parts Of The Human Skeleton And Joints And Their Replacements Based On Boundary Value Problem Analyses |
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131 | (61) |
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131 | (1) |
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5.2 Mathematical Models of Human Joints and of Their Total Replacements as Well as of Parts of the Human Body |
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131 | (2) |
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5.3 Mathematical Models of Human Body Parts and Human Joints and Their Total Replacements Based on the Boundary Value Problems in (Thermo)elasticity |
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133 | (5) |
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5.4 Biomechanical Model of a Long Bone |
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138 | (18) |
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5.4.1 Introduction of Bone Biomechanics |
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138 | (1) |
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5.4.2 Mathematical Model of Loaded Long Bones Based on Elastic Rheology in Two and Three Dimensions |
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139 | (3) |
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5.4.3 Numerical Solutions and Algorithms |
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142 | (14) |
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5.5 Mathematical Model of a Loaded Long Bone Based on Composite Biomaterials |
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156 | (6) |
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162 | (8) |
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5.7 Mathematical Model of Heat Generation and Heat Propagation in the Neighborhood of the Bone Cement. Problems of Bone Necrosis |
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170 | (22) |
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170 | (4) |
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5.7.2 Mathematical Models and Their Solutions |
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174 | (16) |
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190 | (2) |
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6 Mathematical Analyses And Numerical Solutions Of Fundamental Biomechanical Problems |
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192 | (189) |
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6.1 Background of Functional Analysis, Function Spaces, and Variational Inequalities |
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192 | (11) |
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6.1.1 Introduction to Functional Analysis |
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192 | (6) |
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6.1.2 Functional Spaces and Fundamental Theorems |
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198 | (5) |
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6.2 Variational Equations and Inequalities and Their Numerical Approximations |
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203 | (15) |
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6.2.1 Elliptic Variational Inequalities and Equations and Their Discrete Approximations |
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203 | (8) |
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6.2.2 Time-Dependent Variational Inequalities and Their Numerical Solution |
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211 | (2) |
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6.2.3 Hyperbolic Variational Inequalities and Equations and Their Discrete Approximations |
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213 | (2) |
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6.2.4 Nonlinear Variational Equations and Inequalities and Their Numerical Solutions |
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215 | (3) |
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6.3 Biomechanical Models of Human Joints and Their Total Replacements |
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218 | (6) |
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218 | (1) |
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6.3.2 Formulation of the Model Problems |
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219 | (5) |
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6.4 Stress-Strain Analysis of Total Human Joint Replacements in Linear, Nonlinear, Elasticity, and Thermoelasticity: Static Cases, Finite Element Approximations, Homogenization and Domain Decomposition Methods, and Algorithms |
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224 | (52) |
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6.4.1 Formulation of the Problem |
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224 | (4) |
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6.4.2 Formulation of the Contact Problem with Given Friction (the Tresca Model) |
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228 | (10) |
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238 | (13) |
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6.4.4 Nonlinear Elasticity |
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251 | (6) |
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6.4.5 Homogenization Approach-Bone Tissues as Composite Materials with Periodic Structures |
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257 | (9) |
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6.4.6 Domain Decomposition |
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266 | (10) |
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6.5 Stress–Strain Analyses of Human Joints and Their Replacements Based on Quasi-Static and Dynamic Multibody Contact Problems in Viscoelastic Rheologies |
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276 | (10) |
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276 | (3) |
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6.5.2 Weak Solutions of Problems in Viscoelastic Rheology with Short Memory |
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279 | (2) |
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6.5.3 Quasi-Static Contact Model Problem in Biomechanics of Human Joints |
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281 | (2) |
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6.5.4 Dynamic Contact Problem Formulated in Displacements and Its Numerical Solution |
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283 | (3) |
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286 | (54) |
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6.6.1 Consistency, Stability, and the Lax Condition |
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286 | (1) |
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6.6.2 Approximation of Biomechanic Models Based on the Central Difference Method, an Explicit Scheme |
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287 | (8) |
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6.6.3 Biomechanical Model of Human Joints Based on the Semi-implicit Scheme |
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295 | (4) |
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6.6.4 Biomechanical Model of Human Joints Based on the Approximate Mixed Variational Formulation of the Frictional Tresca Model |
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299 | (16) |
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315 | (1) |
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6.6.6 Biomechanic Models in Orthopedy Based on Thermoviscoelastic Rheology with Short Memory |
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316 | (5) |
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6.6.7 Biomechanic Models in Orthopedy Based on Viscoelastic Rheology with Long Memory |
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321 | (13) |
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6.6.8 Numerical Solution of the Problem |
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334 | (6) |
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6.7 Viscoplastic Model of Total Human Joint Replacements |
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340 | (6) |
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340 | (1) |
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6.7.2 Formulation of the Problem |
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340 | (3) |
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6.7.3 Numerical Solution-The Semidiscrete Approximation |
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343 | (3) |
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6.8 Optimal Shape Design in Biomechanics of Human Joint Replacements |
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346 | (7) |
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346 | (1) |
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6.8.2 Main Idea of the Optimal Shape Design Problem |
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346 | (2) |
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6.8.3 Optimal Shape Joint Design, Description of the Method |
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348 | (5) |
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6.9 Worst-Scenario Method in Biomechanics of Human Joint Replacements |
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353 | (9) |
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353 | (1) |
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6.9.2 Formulation of the Thermoelastic Contact Problem |
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354 | (3) |
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6.9.3 Uncertain Input Data and the Worst-Scenario Method |
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357 | (5) |
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6.10 Biomechanical Models of Human Joint Replacements Coupling Bi- and Unilateral Contacts, Friction, Adhesion, and Wear |
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362 | (21) |
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6.10.1 Biomechanical Model Based on Quasi-Static and Dynamic (Visco)elastic Contacts with Adhesion and Friction |
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363 | (16) |
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379 | (2) |
Part III Biomechanical Analyses Of Particular Parts Of The Human Skeleton, Joints, And Their Replacements |
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381 | (142) |
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7 Biomechanical Models Based On Contact Problems And Biomechanical Analyses Of Some Human Joints, Their Total Replacements, And Some Other Parts Of The Human Skeleton |
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383 | (140) |
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7.1 Introduction to the Biomechanics of Statically Loaded and of Moving Loaded Human Body |
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383 | (4) |
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7.2 Bone Remodeling and the Corresponding Mathematical Model |
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387 | (8) |
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7.3 Biomechanical Studies of Cysts, Osteophytes, and of Inter- and Subtrochanteric Osteotomy of the Femur and the Knee Joint |
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395 | (14) |
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7.3.1 Biomechanics of Cysts and Osteophytes |
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395 | (9) |
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7.3.2 Biomechanics of Osteotomy |
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404 | (5) |
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7.4 Biomechanical Analysis of the Loosened Total Hip Arthroplasty (THA) |
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409 | (5) |
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7.5 Biomechanical Analysis of the Hip Joint after THA Implanting and Subtrochanteric Osteotomy Healing |
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414 | (7) |
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7.6 Analysis of Loaded Tubular Long Bone Filled with Marrow Tissue |
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421 | (14) |
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421 | (2) |
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423 | (7) |
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7.6.3 Stationary Viscoplastic Model |
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430 | (4) |
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434 | (1) |
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7.7 Numerical Analysis of the Weight-Bearing Total Knee Replacement; Analysis of Effect of Axial Angle Changes on Weight-bearing Total Knee Arthroplasty |
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435 | (11) |
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7.7.1 Analysis of Effect of Axial Angle Changes on Weight-Bearing Total Knee Arthroplasty |
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435 | (10) |
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7.7.2 Evaluation of Numerical Results in Frontal and Sagittal Planes—The Dynamic Case |
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445 | (1) |
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7.8 Total Knee Replacement with Rotational Polyethylene Insert |
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446 | (3) |
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7.8.1 Evaluation of Numerical Results and Observations in Practice |
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446 | (1) |
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7.8.2 TKA with Rotating UHMWPE Insert |
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447 | (1) |
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7.8.3 Evaluation of Numerical Experiments |
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448 | (1) |
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7.9 Computer-Assisted Surgery in Orthopedics: A Perspective |
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449 | (12) |
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7.10 Biomechanical and Mathematical Models of the Thoracolumbal Spine |
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461 | (17) |
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461 | (1) |
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7.10.2 Biomechanics of the Spine |
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462 | (3) |
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465 | (13) |
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7.11 Biomechanical and Mathematical Models of Joints of the Upper Limbs |
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478 | (19) |
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478 | (1) |
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7.11.2 Anatomy and Biomechanics of Shoulder Joints |
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478 | (2) |
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7.11.3 Anatomy and Biomechanics of the Elbow |
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480 | (1) |
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7.11.4 Biomechanics of the Shoulder and Elbow Joint Replacements |
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481 | (1) |
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7.11.5 Model of the Main Joints of the Upper Limb |
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482 | (5) |
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7.11.6 Biomechanical and Mathematical Model of the Wrist and Hand |
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487 | (10) |
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7.12 Mathematical and Biomechanical Analyses of the Temporomandibular Joint |
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497 | (26) |
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497 | (1) |
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7.12.2 The Temporomandibular Joint-Anatomy and Physiology |
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498 | (1) |
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7.12.3 Biomechanics of TMJ and Its Function |
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499 | (2) |
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7.12.4 Formulation of the Contact Problem with Given Friction |
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501 | (6) |
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7.12.5 Finite Element Solution of the Problem |
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507 | (1) |
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7.12.6 Dynamically Loaded Temporomandibular Joint |
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508 | (1) |
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508 | (8) |
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7.12.8 Role of Medical Informatics in Dentist's Decision-Making TMJ Disorders |
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516 | (2) |
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518 | (1) |
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7.12.10 Temporomandibular Joint Reconstruction-Clinical Case Reports |
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519 | (4) |
Appendix |
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523 | (12) |
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523 | (2) |
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525 | (2) |
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A.3 Some Fundamental Theorems |
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527 | (1) |
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A.4 Elementary Inequalities |
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528 | (2) |
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A.5 Finite Element Method |
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530 | (5) |
References |
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535 | (30) |
Index |
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565 | |