
doi: 10.3233/bme-151307
pmid: 26405985
Abstract This paper presents a new method for real-time modelling soft tissue deformation. It improves the traditional mass-spring model with conical springs to deal with nonlinear mechanical behaviours of soft tissues. A conical spring model is developed to predict soft tissue deformation with reference to deformation patterns. The model parameters are formulated according to tissue deformation patterns and the nonlinear behaviours of soft tissues are modelled with the stiffness variation of conical spring. Experimental results show that the proposed method can describe different tissue deformation patterns using one single equation and also exhibit the typical mechanical behaviours of soft tissues.
Compressive Strength, Models, Biological, Weight-Bearing, Connective Tissue, Hardness, Elastic Modulus, Animals, Humans, Computer Simulation, Stress, Mechanical
Compressive Strength, Models, Biological, Weight-Bearing, Connective Tissue, Hardness, Elastic Modulus, Animals, Humans, Computer Simulation, Stress, Mechanical
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