DocumentCode :
1072518
Title :
Modeling the Forces of Cutting With Scissors
Author :
Mahvash, Mohsen ; Voo, Liming M. ; Kim, Diana ; Jeung, Kristin ; Wainer, Joshua ; Okamura, Allison M.
Author_Institution :
Johns Hopkins Univ., Baltimore
Volume :
55
Issue :
3
fYear :
2008
fDate :
3/1/2008 12:00:00 AM
Firstpage :
848
Lastpage :
856
Abstract :
Modeling forces applied to scissors during cutting of biological materials is useful for surgical simulation. Previous approaches to haptic display of scissor cutting are based on recording and replaying measured data. This paper presents an analytical model based on the concepts of contact mechanics and fracture mechanics to calculate forces applied to scissors during cutting of a slab of material. The model considers the process of cutting as a sequence of deformation and fracture phases. During deformation phases, forces applied to the scissors are calculated from a torque-angle response model synthesized from measurement data multiplied by a ratio that depends on the position of the cutting crack edge and the curve of the blades. Using the principle of conservation of energy, the forces of fracture are related to the fracture toughness of the material and the geometry of the blades of the scissors. The forces applied to scissors generally include high-frequency fluctuations. We show that the analytical model accurately predicts the average applied force. The cutting model is computationally efficient, so it can be used for real-time computations such as haptic rendering. Experimental results from cutting samples of paper, plastic, cloth, and chicken skin confirm the model, and the model is rendered in a haptic virtual environment.
Keywords :
biomechanics; deformation; fracture; fracture toughness; haptic interfaces; mechanical contact; medical robotics; surgery; virtual instrumentation; biological material cutting; biological tissues; contact mechanics; cutting crack edge; cutting force modeling; deformation; energy conservation; fracture mechanics; fracture toughness; haptic displays; haptic rendering; haptic virtual environment; high-frequency fluctuations; physics-based modeling; robotics; scissor cutting; surgical simulation; torque-angle response model; Analytical models; Biological materials; Biological system modeling; Blades; Deformable models; Displays; Force measurement; Haptic interfaces; Slabs; Surgery; Biological tissues; haptic rendering; physics-based modeling; robotics; scissor cutting; Computer Simulation; Computer-Aided Design; Elasticity; Equipment Design; Equipment Failure Analysis; Hardness; Humans; Models, Biological; Stress, Mechanical; Surgery, Computer-Assisted; Surgical Instruments; Touch;
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/TBME.2007.908069
Filename :
4454044
Link To Document :
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