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    1. Medicin
    2. Medicin: icke kliniska discipliner
    3. Fysiologi

    Clinical Application of Computational Mechanics to the Cardiovascular System

    AvTakami Yamaguchi,T. Yamaguchi

    Inbunden, Engelska, 2000

    1 674 kr

    Beställningsvara. Skickas inom 10-15 vardagar. Fri frakt över 249 kr.

    Beskrivning

    The term "computational biomechanics" describes the approach taken in a 3-year project promoted by the National Cardiovascular Center of Japan to integrate fluid and solid mechanics in studies of the heart and vascular system. The goal was to create a new, comprehensive methodology in cardiovascular research, including both radiological and electrophysiological studies to achieve the most comprehensive view. This book compiles reports of the work conducted by leading researchers in biomechanics using a full array of cutting-edge technology - from the supercomputer in the National Cardiovascular Center to individual PCs. The book stresses application rather than development of theory, thus appealing to a wide audience ranging from researchers without extensive backgrounds in computation, to graduate students and clinical practitioners. Enhanced with color illustrations, the book is a valuable resource in biomedical engineering.

    Produktinformation

    • Utgivningsdatum:2000-12-01
    • Mått:155 x 235 x 25 mm
    • Vikt:712 g
    • Format:Inbunden
    • Språk:Engelska
    • Antal sidor:288
    • Upplaga:2000
    • Förlag:Springer Verlag, Japan
    • ISBN:9784431702887

    Utforska kategorier

    • Fysiologi inom Medicin
    • Medicinsk utrustning och medicinska tekniker inom Medicin

    Innehållsförteckning

    • 1. General Aspects of Computational Cardiovascular Mechanics.- 1.1 Computational Mechanical Model Studies in the Cardiovascular System.- 1.2 Inelastic Constitutive Models of Blood Vessels in Physiological Conditions.- 1.3 Stress and Strain Analyses of Blood Vessels in Physiological and Pathological Conditions.- 1.4 Development of Interactive Modeling System for the Computational Biomechanics Simulation Using Medical Imaging Data.- 1.5 A Modeling System of 3-Dimensional Blood Vessel Configuration for CFD Analysis.- 2. Wall Motion and Blood Flow in the Heart.- 2.1 Computational Analysis for Mechanical Functions of Left Ventricle.- 2.2 Automated Tracking of Tagged Magnetic Resonance Image for Assessment of Regional Cardiac Wall Function.- 2.3 Error Estimation and Smoothing for Regional Deformation Analysis of the Heart with Tagged Magnetic Resonance Images.- 2.4 Deformation Analysis of Human Left Ventricular Wall Using Magnetic Resonance Tagging Technique.- 2.5 Motion and Strain Analyses of Left Ventricular Wall Using Optical Flow.- 2.6 Intraventricular Blood Flow Analysis Using Robust CFD Models.- 3. Interactions Between the Blood Flow and Wall Motion in Vascular System.- 3.1 Computational Fluid Mechanics of the Blood Flow in an Aortic Vessel with Realistic Geometry.- 3.2 Numerical Simulation and Experiment of Pulsatile Flow in Modeled Aortic Arch.- 3.3 Flow Simulation of the Aortic Arch —Effect of the 3D Distortion on Flows in the Ordinary Helix Circular Tube—.- 3.4 Computational Fluid Mechanics of the Vortical Flow in Blood Vessel.- 3.5 Computational Study on LDL Transfer from Flowing Blood to Arterial Walls.- 3.6 Numerical Simulation of Co-operative Regulation in the Cerebral Microvascular Arcadal Network.- 3.7 Computational Fluid Dynamic Simulation of the FlowThrough Venous Valve.- 4. Clinical and Electrophysiological Aspacts of Computational Mechanics of the Heart.- 4.1 A High-Performance Computation Method for Simulation of Cardiac Excitation Propagation Using a Supercomputer.- 4.2 Simulated Electrocardiogram of Spiral Wave Reentry in a Mathematical Ventricular Model.- 4.3 Computational Analysis and Visualization of Spiral Wave Reentry in a Virtual Heart Model.- 4.4 Simulation of Platelet Adhesion Using a Discrete Element Method.- 4.5 Computational Fluid Dynamics as a Tool to Develop the Artificial Heart.- 4.6 Three-Dimensional Image Processing and Motion Analysis of the Heart Using Radionuclide Medical Images.- 4.7 The Modeling of the Heart and the Aortic Arch Applying Differential Geometrical Method and Simulation of Blood Flow.- 4.8 Orientation Response of Stress Fibers in Cultured Cells Under Biaxial Cyclic Stretch: Hypothesis and Theoretical Prediction.