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A comparative study on dynamic stiffness in typical finite element model and multi-body model of C6-C7 cervical spine segment
- Source :
- International Journal for Numerical Methods in Biomedical Engineering. 32:e02750
- Publication Year :
- 2015
- Publisher :
- Wiley, 2015.
-
Abstract
- In contrast to numerous researches on static or quasi-static stiffness of cervical spine segments, very few investigations on their dynamic stiffness were published. Currently, scale factors and estimated coefficients were usually used in multi-body models for including viscoelastic properties and damping effects, meanwhile viscoelastic properties of some tissues were unavailable for establishing finite element models. Because dynamic stiffness of cervical spine segments in these models were difficult to validate because of lacking in experimental data, we tried to gain some insights on current modeling methods through studying dynamic stiffness differences between these models. A finite element model and a multi-body model of C6-C7 segment were developed through using available material data and typical modeling technologies. These two models were validated with quasi-static response data of the C6-C7 cervical spine segment. Dynamic stiffness differences were investigated through controlling motions of C6 vertebrae at different rates and then comparing their reaction forces or moments. Validation results showed that both the finite element model and the multi-body model could generate reasonable responses under quasi-static loads, but the finite element segment model exhibited more nonlinear characters. Dynamic response investigations indicated that dynamic stiffness of this finite element model might be underestimated because of the absence of dynamic stiffen effect and damping effects of annulus fibrous, while representation of these effects also need to be improved in current multi-body model. Copyright © 2015 John Wiley & Sons, Ltd.
- Subjects :
- 030110 physiology
0301 basic medicine
Engineering
Scale (ratio)
0206 medical engineering
Biomedical Engineering
02 engineering and technology
Viscoelasticity
03 medical and health sciences
Annulus (firestop)
medicine
Direct stiffness method
Representation (mathematics)
Molecular Biology
business.industry
Applied Mathematics
Stiffness
Structural engineering
musculoskeletal system
020601 biomedical engineering
Finite element method
Nonlinear system
Computational Theory and Mathematics
Modeling and Simulation
medicine.symptom
business
Software
Subjects
Details
- ISSN :
- 20407939
- Volume :
- 32
- Database :
- OpenAIRE
- Journal :
- International Journal for Numerical Methods in Biomedical Engineering
- Accession number :
- edsair.doi...........d8f2776a7c5c4491a3f6fa353c9d6692
- Full Text :
- https://doi.org/10.1002/cnm.2750