Title :
Viscoelastic Modeling of the Contact Interaction Between a Tactile Sensor and an Atrial Tissue
Author :
Shen, Jing Jin ; Kalantari, Masoud ; Kövecses, Jòzsef ; Angeles, Jorge ; Dargahi, Javad
Author_Institution :
Coll. of Mech. Eng., Nanjing Univ. of Aeronaut. & Astronaut., Nanjing, China
fDate :
6/1/2012 12:00:00 AM
Abstract :
Modeling and parameter identification of soft tissue are essential in establishing an accurate contact model for tool-tissue interaction, which can be used in the development of high-fidelity surgical instruments. This paper discusses the interaction between a tissue and a tactile sensor in minimally invasive surgery, the focus being a novel technique for robotic-assisted mitral valve repair, in which tactile sensors are used to distinguish between different kinds of tissue by their relative softness. A discrete viscoelastic model is selected to represent the tissue behavior. To populate the model of the tissue with actual data, a set of tissue-testing experiments is designed and implemented on the atrial tissue of a swine heart by analyzing its dynamic response. By means of a genetic algorithm, data of the complex compliance are extracted and used to find the coefficients of the model. Further, a viscoelastic contact model is developed to model the interaction between the tissue and the tactile sensor with annular shape. Finally, the relation among the indentation displacement, the ratio of the radii, and the applied force is established parametrically.
Keywords :
biological tissues; biomechanics; genetic algorithms; medical robotics; surgery; tactile sensors; viscoelasticity; atrial tissue; contact interaction; genetic algorithm; high fidelity surgical instruments; minimally invasive surgery; parameter identification; robotic assisted mitral valve repair; soft tissue; tactile sensor; tool-tissue interaction; viscoelastic modeling; Catheters; Force; Force sensors; Heart; Materials; Surgery; Tactile sensors; Parametric contact model; tissue modelling; tool-tissue interaction; viscoelastic contact model; Algorithms; Atrial Function; Biosensing Techniques; Computer Simulation; Elastic Modulus; Hardness; Humans; Models, Cardiovascular; Physical Stimulation; Stress, Mechanical; Surface Properties; Touch; Transducers, Pressure; Viscosity;
Journal_Title :
Biomedical Engineering, IEEE Transactions on
DOI :
10.1109/TBME.2012.2193127