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.

anthropometric data - a data set for the validation of models. Clin. Biomech.<br />

2001;16:S111-26.<br />

[5] Sato K, Kikuchi S, Yonezawa T. In vivo intradiscal pressure measurement in healthy<br />

individuals and in patients with ongoing back problems. Spine 1999;24:2468-74.<br />

[6] Rohlmann A, Bergmann G, Graichen F. Loads on internal spinal fixators measured<br />

in different body positions. Eur. Spine J. 1999;8:354-9<br />

[7] Rohlmann A, Graichen F, Weber U, Bergmann G. 2000 Volvo Award winner in<br />

biomechanical studies: Monitoring in vivo implant loads with a telemeterized<br />

internal spinal fixation device. Spine 2000;25:2981-6.<br />

[8] Rohlmann A, Claes L, Bergmann G, Graichen F, Neef P, Wilke H-J. Comparison of<br />

intradiscal pressures and spinal fixator loads for different body positions and<br />

exercises. Ergonomics 2001;44:781 - 94<br />

[9] Rohlmann A, Graichen F, Bender A, Kayser R, Bergmann G. Loads on a<br />

telemeterized vertebral body replacement measured in three patients within the<br />

first postoperative month. Clin. Biomech. 2008;23:147-58<br />

[10] Rohlmann A, Hinz B, Bluthner R, Graichen F, Bergmann G. Loads on a spinal<br />

implant measured in vivo during whole-body vibration. Eur. Spine J.<br />

2010;19:1129-35<br />

[11] Rohlmann A, Zander T, Graichen F, Dreischarf M, Bergmann G. Measured loads<br />

on a vertebral body replacement during sitting. Spine J 2011;11:870-5<br />

[12] Schultz AB, Andersson GB. Analysis of loads on the lumbar spine. Spine<br />

1981;6:76-82<br />

[13] De Zee M, Hansen L, Wong C, Rasmussen J, Simonsen EB. A generic detailed<br />

rigid-body lumbar spine model. J. Biomech. 2007;40:1219-27<br />

[14] Han KS, Zander T, Taylor WR, Rohlmann A. An enhanced and validated generic<br />

thoraco-lumbar spine model for prediction of muscle forces. Med. Eng. Phys.<br />

<strong>2012</strong><br />

[15] Crisco J, Panjabi M, Yamamoto I, Oxland T. Euler stability of the human<br />

ligamentous lumbar spine. Part II: Experiment. Clin. Biomech. 1992;7:27-32<br />

[16] Patwardhan AG, Havey RM, Carandang G, Simonds J, Voronov LI, Ghanayem AJ,<br />

Meade KP, Gavin TM and Paxinos O. Effect of compressive follower preload on<br />

the flexion-extension response of the human lumbar spine. J. Orthop. Res.<br />

2003;21:540-6<br />

[17] Patwardhan AG, Havey RM, Meade KP, Lee B, Dunlap B. A follower load<br />

increases the load-carrying capacity of the lumbar spine in compression. Spine<br />

1999;24:1003-9.<br />

[18] Shirazi-Adl A. Analysis of large compression loads on lumbar spine in flexion and<br />

in torsion using a novel wrapping element. J. Biomech. 2006;39:267-75<br />

[19] Shirazi-Adl A, Parnianpour M. Load-bearing and stress analysis of the human<br />

spine under a novel wrapping compression loading. Clin. Biomech.<br />

2000;15:718-25.<br />

[20] Dreischarf M, Zander T, Bergmann G, Rohlmann A. A non-optimized follower<br />

load path may cause considerable intervertebral rotations. J. Biomech.<br />

2010;43:2625-8<br />

[21] Dreischarf M, Rohlmann A, Bergmann G, Zander T. Optimised loads for the<br />

simulation of axial rotation in the lumbar spine. J. Biomech. 2011;44:2323-7<br />

[22] Rohlmann A, Zander T, Rao M, Bergmann G. Applying a follower load delivers<br />

realistic results for simulating standing. J. Biomech. 2009;42:1520-6<br />

[23] Rohlmann A, Zander T, Rao M, Bergmann G. Realistic loading conditions for<br />

upper body bending. J. Biomech. 2009;42:884-90

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

Saved successfully!

Ooh no, something went wrong!