27.12.2012 Views

ARUP; ISBN: 978-0-9562121-5-3 - CMBBE 2012 - Cardiff University

ARUP; ISBN: 978-0-9562121-5-3 - CMBBE 2012 - Cardiff University

ARUP; ISBN: 978-0-9562121-5-3 - CMBBE 2012 - Cardiff University

SHOW MORE
SHOW LESS

You also want an ePaper? Increase the reach of your titles

YUMPU automatically turns print PDFs into web optimized ePapers that Google loves.

well suited for analyzing the behavior of TKRs under laxity loading conditions. The<br />

small RMSD values for the VV rotation, which were found to generally be comparable<br />

to or lower than the literature [5], allow for accurate virtual assessment of ligament<br />

balancing after virtual TKR, thus establishing a basis for all other laxity tests analyzed<br />

with the models.<br />

Based on the findings above the virtual models under low compression load can be<br />

considered validated for the VV laxity test with a maximum averaged rotational RMSD<br />

of 0.9° ± 0.4°. For the IE laxity tests the virtual models are validated with a maximum<br />

averaged RMSD of 4.2° ± 3°. Using the virtual models for AP laxity test, the models are<br />

validated with a maximum averaged RMSD of 3.7mm ± 2.8mm.<br />

6 REFERENCES<br />

1. Blankevoort, L., Kuiper, J. H., Huiskes, R., and Grootenboer, H. J., Articular contact in a threedimensional<br />

model of the knee, Journal of Biomechanics, 1991, 24, 1019-31.<br />

2. Godest, A. C., Beaugonin, M., Haug, E., Taylor, M., and Gregson, P. J., Simulation of a knee joint<br />

replacement during a gait cycle using explicit finite element analysis, Journal of Biomechanics,<br />

2002, 35, 267-75.<br />

3. Halloran, J. P., Petrella, A. J., and Rullkoetter, P. J., Explicit finite element modeling of total knee<br />

replacement mechanics, Journal of Biomechanics, 2005, 38, 323-31.<br />

4. Halloran, J. P., Clary, C. W., Maletsky, L. P., Taylor, M., Petrella, A. J., and Rullkoetter, P. J.,<br />

Verification of predicted knee replacement kinematics during simulated gait in the Kansas knee<br />

simulator, Journal of Biomechanical Engineering, 2010, 132, 081010.<br />

5. Baldwin, M. A., Clary, C. W., Fitzpatrick, C. K., Deacy, J. S., Maletsky, L. P., and Rullkoetter, P.<br />

J., Danymic finite element knee simulation for evaluation of knee replacement mechanics, Journal<br />

of Biomechanics, 1-2-<strong>2012</strong>, 45, 474-83.<br />

6. Walker, P. S., Blunn, G. W., Broome, D. R., Perry, J., Watkins, A., Sathasivam, S., Dewar, M. E.,<br />

and Paul, J. P., A knee simulating machine for performance evaluation of total knee replacements,<br />

Journal of Biomechanics, 1997, 30, 83-9.<br />

7. Sathasivam, S. and Walker, P. S., A computer model with surface friction for the prediction of total<br />

knee kinematics, Journal of Biomechanics, 1997, 30, 177-84.<br />

8. Woo, S. L., Abramowitch, S. D., Kilger, R., and Liang, R., Biomechanics of knee ligaments:<br />

injury, healing, and repair, Journal of Biomechanics, 2006, 39, 1-20.<br />

9. Sauerberg, I., Bandi, M., and Siggelkow, E., Robot-Based Test Method to Determine Specimen-<br />

Specific and Joint-Position-Dependent Knee Ligament Kinetics, <strong>2012</strong>, Poster No. 0866.<br />

10. Halloran, J. P., Easley, S. K., Petrella, A. J., and Rullkoetter, P. J., Comparison of deformable and<br />

elastic foundation finite element simulations for predicting knee replacement mechanics, Journal of<br />

Biomechanical Engineering, 2005, 127, 813-8.<br />

11. Fregly, B. J., Sawyer, W. G., Harman, M. K., and Banks, S. A., Computational wear prediction of<br />

a total knee replacement from in vivo kinematics, Journal of Biomechanics, 2005, 38, 305-14.<br />

12. Johnson, K. L., Contact Mechanics, 1985,<br />

13. Schwenke, T., Klabunde, R., Seebeck, J., and Morlock, M., Contact pressure and sliding velocity<br />

dependence of the coefficient of friction in metal-polyethylene articulation, 2010, Poster No. 2330.<br />

14. Muenchinger, M., Siggelkow, E., Sieber, D., Kersh, M., and Ploeg, H., Modeling knee ligaments<br />

by a joint elastic functon (JEF), 2008, 550-6.<br />

15. Nelles, O., Nonlinear system identification, 2001,<br />

16. Sauerberg, I., Bandi, M., and Siggelkow, E., Robot-Based Test Method to Determine Specimen-<br />

Specific and Joint-Position-Dependent Knee Ligament Kinetics, 1-2-0012,<br />

17. Iwaki, H., Pinskerova, V., and Freeman, M. A., Tibiofemoral movement 1: the shapes and relative<br />

movements of the femur and tibia in the unloaded cadaver knee, The Journal of Bone and Joint<br />

Surgery (British Vol.), 2000, 82, 1189-95.

Hooray! Your file is uploaded and ready to be published.

Saved successfully!

Ooh no, something went wrong!