<p>Numerous experiments reported in the biomechanical literature have shown that soft tissues are highly nonlinear viscoelastic materials. Attempts to model their mechanical behaviour have led to different kinds of mathematical relationships depending on the approach adopted. The use of these models
Soft Tissue Biomechanical Modeling for Computer Assisted Surgery
β Scribed by Yohan Payan (auth.), Yohan Payan (eds.)
- Publisher
- Springer-Verlag Berlin Heidelberg
- Year
- 2012
- Tongue
- English
- Leaves
- 385
- Series
- Studies in Mechanobiology, Tissue Engineering and Biomaterials 11
- Edition
- 1
- Category
- Library
No coin nor oath required. For personal study only.
β¦ Synopsis
This volume focuses on the biomechanical modeling of biological tissues in the context of Computer Assisted Surgery (CAS). More specifically, deformable soft tissues are addressed since they are the subject of the most recent developments in this field. The pioneering works on this CAS topic date from the 1980's, with applications in orthopaedics and biomechanical models of bones. More recently, however, biomechanical models of soft tissues have been proposed since most of the human body is made of soft organs that can be deformed by the surgical gesture. Such models are much more complicated to handle since the tissues can be subject to large deformations (non-linear geometrical framework) as well as complex stress/strain relationships (non-linear mechanical framework).
Part 1 of the volume presents biomechanical models that have been developed in a CAS context and used during surgery. This is particularly new since most of the soft tissues models already proposed concern Computer Assisted Planning, with a pre-operative use of the models. Then, the volume addresses the two key issues raised for an intra-operative use of soft tissues models, namely (Part 2) βhow to estimate the in vivo mechanical behavior of the tissues?β (i.e. what are the values of the mechanical parameters that can deliver realistic patient-specific behavior?) and (Part 3) βhow to build a modeling platform that provides generic real-time (or at least interactive-time) numerical simulations?β
β¦ Table of Contents
Front Matter....Pages i-ix
Introduction....Pages 1-3
Model-Assisted Image-Guided Liver Surgery Using Sparse Intraoperative Data....Pages 7-40
Viscoelastic and Nonlinear Liver Modeling for Needle Insertion Simulation....Pages 41-67
Application of Biomechanical Modelling to Image-Guided Breast Surgery....Pages 71-94
Estimation of Intraoperative Brain Deformation....Pages 97-133
Doppler Ultrasound Driven Biomechanical Model of the Brain for Intraoperative Brain-Shift Compensation: A Proof of Concept in Clinical Conditions....Pages 135-165
Biomechanical Modeling of the Prostate for Procedure Guidance and Simulation....Pages 169-198
Measuring the In Vivo Behavior of Soft Tissue and Organs Using the Aspiration Device....Pages 201-228
Dynamic Material Properties of Human and Animal Livers....Pages 229-241
Validation of a Light Aspiration Device for In Vivo Soft Tissue Characterization (LASTIC)....Pages 243-256
Harmonic Motion Imaging for Tumor Imaging and Treatment Monitoring....Pages 257-280
SOFA: A Multi-Model Framework for Interactive Physical Simulation....Pages 283-321
CamiTK: A Modular Framework Integrating Visualization, Image Processing and Biomechanical Modeling....Pages 323-354
ArtiSynth: A Fast Interactive Biomechanical Modeling Toolkit Combining Multibody and Finite Element Simulation....Pages 355-394
Back Matter....Pages 395-396
β¦ Subjects
Biomedical Engineering; Biomaterials; Continuum Mechanics and Mechanics of Materials
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