DocumentCode
2338344
Title
Deformation simulation using a viscoelastic and nonlinear Organ model for control of a needle insertion manipulator
Author
Kobayashi, Yo ; Onishi, Akinori ; Hoshi, Takeharu ; Kawamura, Kazuya ; Fujie, Masakatsu G.
Author_Institution
Waseda Univ., Ohkubo
fYear
2007
fDate
Oct. 29 2007-Nov. 2 2007
Firstpage
1801
Lastpage
1808
Abstract
This paper shows the viscoelastic and nonlinear organ deformation model for organ model-based control of needle insertion, in which the deformation of an organ is calculated intraoperatively and the needle is manipulated with organ deformation taken into consideration. An organ model including such detailed material characteristics is important to achieve the control method in question. Firstly, the material properties of the liver are modeled from the measured data and its viscoelastic characteristics are represented by differential equations, including the term of the fractional derivative. Nonlinearity in terms of the fractional derivative was measured, and modeled using the quadratic function of strain. Next, a solution of an FE model using such material properties is shown. We use sampling time scaling property as the solution for the viscoelastic system. The solution for a nonlinear system using the Modified Newton-Raphson method is also shown. Finally, the organ deformation, assuming the needle is inserted, is simulated using an organ model and the overall deformation and distribution of the strain is computed in these simulations.
Keywords
Newton-Raphson method; control nonlinearities; deformation; differential equations; liver; manipulators; medical robotics; nonlinear control systems; sampling methods; surgery; FE model; Newton-Raphson method; control nonlinearity; deformation simulation; differential equations; fractional derivative; liver material properties; needle insertion manipulator control; nonlinear organ model based control; nonlinear system; sampling time scaling property; viscoelastic organ model; Computational modeling; Deformable models; Differential equations; Elasticity; Iron; Liver; Material properties; Needles; Strain measurement; Viscosity;
fLanguage
English
Publisher
ieee
Conference_Titel
Intelligent Robots and Systems, 2007. IROS 2007. IEEE/RSJ International Conference on
Conference_Location
San Diego, CA
Print_ISBN
978-1-4244-0912-9
Electronic_ISBN
978-1-4244-0912-9
Type
conf
DOI
10.1109/IROS.2007.4399286
Filename
4399286
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