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A. Vasavada, Siping Li, S. Delp (1998)
Influence of Muscle Morphometry and Moment Arms on the Moment‐Generating Capacity of Human Neck MusclesSpine, 23
K. Yamazaki, K. Ono, K. Kaneoka (2000)
A SIMULATION ANALYSIS OF HUMAN CERVICAL SPINE MOTION DURING LOW SPEED REAR-END IMPACTS
D. Camacho, R. Nightingale, J. Robinette, Sanjay Vanguri, Douglas Coates, B. Myers (1997)
Experimental Flexibility Measurements for the Development of a Computational Head-Neck Model Validated for Near-Vertex Head ImpactSAE transactions, 41
M. Panjabi, T. Oxland, Edward Parks (1991)
Quantitative anatomy of cervical spine ligaments. Part I. Upper cervical spine.Journal of spinal disorders, 4 3
(2001)
Virtual muscle 3.1.5: muscle model for matlab. Users manual, 2001, available from http://ami.usc.edu/Projects/ MuscluarModeling/index.asp
D. Jager (1996)
Mathematical head-neck models for acceleration impacts
J.G.P. Williams (1971)
First and Last Experiments in Muscle MechanicsAnnals of the Rheumatic Diseases, 30
J. Winters, S. Woo (1990)
Multiple Muscle Systems
B. Doherty, M. Heggeness (1994)
The Quantitative Anatomy of the AtlasSPINE, 19
N. Milne (1991)
The role of zygapophysial joint orientation and uncinate processes in controlling motion in the cervical spine.Journal of anatomy, 178
S. Scott, I. Brown, G. Loeb (1996)
Mechanics of feline soleus: I. Effect of fascicle length and velocity on force outputJournal of Muscle Research & Cell Motility, 17
R. Snyder, D. Chaffin, D. Foust (1975)
Bioengineering Study of Basic Physical Measurements Related to Susceptibility to Cervical Hyperextension-Hyperflexion Injury
M. Panjabi, Jiri Dvorak, J. Crisco, T. Oda, A. Hilibrand, Dieter Grob (1991)
Flexion, extension, and lateral bending of the upper cervical spine in response to alar ligament transections.Journal of spinal disorders, 4 2
B. Doherty, M. Heggeness (1995)
Quantitative Anatomy of the Second Cervical VertebraSpine, 20
(2000)
Morphology of cervical muscles and relevance to whiplash
Frances Richmond, Frances Richmond, Kan Singh, Kan Singh, B. Corneil (2001)
Neck muscles in the rhesus monkey. I. Muscle morphometry and histochemistry.Journal of neurophysiology, 86 4
J. Warfel, M. Maxwell (1994)
Book Reviews - The Head, Neck and TrunkPhysiotherapy, 80
M. Panjabi, J. Duranceau, V. Goel, T. Oxland, K. Takata (1991)
Cervical Human Vertebrae Quantitative Three‐Dimensional Anatomy of the Middle and Lower RegionsSPINE, 16
J. Chazal, A. Tanguy, M. Bourges, G. Gaurel, G. Escande, M. Guillot, G. Vanneuville (1985)
Biomechanical properties of spinal ligaments and a histological study of the supraspinal ligament in traction.Journal of biomechanics, 18 3
W. Herzog, S. Kamal, H. Clarke (1992)
Myofilament lengths of cat skeletal muscle: theoretical considerations and functional implications.Journal of biomechanics, 25 8
M. Panjabi, J. Dvořák, J. Crisco, T. Oda, Pingnian Wang, D. Grob (1991)
Effects of Alar ligament transection on upper cervical spine rotationJournal of Orthopaedic Research, 9
J. Brault, G. Siegmund, J. Wheeler (2000)
Cervical muscle response during whiplash: evidence of a lengthening muscle contraction.Clinical biomechanics, 15 6
H. Moriya, M. Mimura, Kazuhisa Takahashi, M. Yamagata, T. Tamaki (1989)
Three-Dimensional Motion Analysis of the Cervical Spine with Special Reference to the Axial RotationSpine, 14
S. Reid, G. Raviv, S. Reid (1981)
Neck muscle resistance to head impact.Aviation, space, and environmental medicine, 52 2
I. Brown, Ernest Cheng, G. Loeb (1999)
Measured and modeled properties of mammalian skeletal muscle. II. The effectsof stimulus frequency on force-length and force-velocity relationshipsJournal of Muscle Research & Cell Motility, 20
Ernest Cheng, I. Brown, G. Loeb (2000)
Virtual muscle: a computational approach to understanding the effects of muscle properties on motor controlJournal of Neuroscience Methods, 101
D. Lopik (2004)
A computational model of the human head and cervical spine for dynamic impact simulation.
J. Winters, J. Winters, L. Stark, Lawrence Stark (1988)
Estimated mechanical properties of synergistic muscles involved in movements of a variety of human joints.Journal of biomechanics, 21 12
A. Nowitzke, M. Westaway, Nikolai Bogduk (1994)
Cervical zygapophyseal joints: geometrical parameters and relationship to cervical kinematics.Clinical biomechanics, 9 6
T. Oda, M. Panjabi, J. Crisco (1991)
Three-dimensional translational movements of the upper cervical spine.Journal of spinal disorders, 4 4
M. Mayoux-Benhamou, M. Revel (1993)
Influence of head position on dorsal neck muscle efficiency.Electromyography and clinical neurophysiology, 33 3
(1980)
Grays anatomy, 36th edition
F. Zajac (1989)
Muscle and tendon: properties, models, scaling, and application to biomechanics and motor control.Critical reviews in biomedical engineering, 17 4
T. Tominaga, C. Dickman, V. Sonntag, S. Coons (1995)
Comparative Anatomy of the Baboon and the Human Cervical SpineSpine, 20
M. Schaffler, M. Alson, J. Heller, S. Garfin (1992)
Morphology of the Dens; A Quantitative StudySpine, 17
M. Nissan, I. Gilad (1984)
The cervical and lumbar vertebrae--an anthropometric model.Engineering in medicine, 13 3
J. Thunnissen, J. Wismans, C. Ewing, D. Thomas (1995)
Human Volunteer Head-Neck Response in Frontal Flexion: a New AnalysisSAE transactions, 39
Alan Jordan, Jesper Mehlsen, P. Bülow, Keld Østergaard, Bente Danneskiold-Samsøe (1999)
Maximal isometric strength of the cervical musculature in 100 healthy volunteers.Spine, 24 13
L. Kamibayashi, F. Richmond (1998)
Morphometry of Human Neck MusclesSpine, 23
Virtual muscle 3 . 1 . 5 : muscle model for matlab
Karin Harms-Ringdahl, K. Schüldt (1989)
Maximum neck extension strength and relative neck muscular load in different cervical spine positions.Clinical biomechanics, 4 1
K. Ono, K. Kaneoka, A. Wittek, J. Kajzer (1997)
Cervical injury mechanism based on the analysis of human cervical vertebral motion and head-neck-torso kinematics during low speed rear impactsSAE transactions, 106
(1980)
Grays anatomy
B. Stemper, N. Yoganandan, F. Pintar (2004)
Validation of a head-neck computer model for whiplash simulationMedical and Biological Engineering and Computing, 42
Mj Horst, V. Der (2002)
Human head neck response in frontal, lateral and rear end impact loading : modelling and validation
N. Yoganandan, S. Kumaresan, F. Pintar (2001)
Biomechanics of the cervical spine Part 2. Cervical spine soft tissue responses and biomechanical modeling.Clinical biomechanics, 16 1
L. Jakobsson, H. Norin, C. Jernstroem, S. Svensson, P. Johnsen, I. Isaksson-Hellman, M. Svensson (1994)
Analysis of different head and neck responses in rear-end car collisions using a new humanlike mathematical model, 22
Sean Moroney, A. Schultz, James Miller, Gunnar Andersson (1988)
Load-displacement properties of lower cervical spine motion segments.Journal of biomechanics, 21 9
Rongming Xu, M. Nadaud, N. Ebraheim, R. Yeasting (1995)
Morphology of the Second Cervical Vertebra and the Posterior Projection of the C2 Pedicle AxisSpine, 20
Takenori Oda, M. Panjabi, J. Crisco, H. Bueff, Dieter Grob, Jiri Dvorak (1992)
Role of tectorial membrane in the stability of the upper cervical spine.Clinical biomechanics, 7 4
M. Panjabi, J. Dvořák, J. Duranceau, I. Yamamoto, M. Gerber, W. Rauschning, H. Bueff (1988)
Three-Dimensional Movements of the Upper Cervical SpineSpine, 13
L. Walker, E. Harris, U. Pontius (1973)
Mass, Volume, Center of Mass, and Mass Moment of Inertia of Head and Head and Neck of Human Body, 17
N. Yoganandan, S. Kumaresan, F. Pintar (2000)
Geometric and mechanical properties of human cervical spine ligaments.Journal of biomechanical engineering, 122 6
L. Boyd‐Clark, C. Briggs, M. Galea (2001)
Comparative histochemical composition of muscle fibres in a pre‐ and a postvertebral muscle of the cervical spineJournal of Anatomy, 199
Garth Johnson, Nikolai Bogduk, A. Nowitzke, D. House (1994)
Anatomy and actions of the trapezius muscle.Clinical biomechanics, 9 1
van Horst, J. Thunnissen, R. Happee, van Haaster, J. Wismans (1997)
The influence of muscle activity on head-neck response during impactSAE transactions, 41
N. Palastanga (1989)
The head, neck and trunk
N. Bogduk, S. Mercer (2000)
Biomechanics of the cervical spine. I: Normal kinematics.Clinical biomechanics, 15 9
F. Queisser, R. Blüthner, H. Seidel (1994)
Control of positioning the cervical spine and its application to measuring extensor strength.Clinical biomechanics, 9 3
A. Vasavada, Siping Li, S. Delp (2001)
Three-Dimensional Isometric Strength of Neck Muscles in HumansSpine, 26
P. Rack, D. Westbury (1969)
The effects of length and stimulus rate on tension in the isometric cat soleus muscleThe Journal of Physiology, 204
I. Brown, T. Satoda, F. Richmond, G. Loeb (1998)
Feline caudofemoralis muscle Muscle fibre properties, architecture, and motor innervationExperimental Brain Research, 121
D. Lopik, M. Acar (2007)
Dynamic verification of a multi-body computational model of human head and neck for frontal, lateral, and rear impactsProceedings of the Institution of Mechanical Engineers, Part K: Journal of Multi-body Dynamics, 221
van Kroonenberg, J. Thunnissen, J. Wismans (1997)
A HUMAN MODEL FOR LOW-SEVERITY REAR-IMPACTS, 25
(2001)
Virtual muscle 3.1.5: muscle model for matlab. Users manual
P. Hobbs (1974)
An anthropometric survey of 500 Royal Air Force aircrew heads, 1972 : Royal Aircraft Establishment, Farnborough, Technical Report 73137 Nov. 1973Applied Ergonomics, 5
I. Brown, G. Loeb (2004)
Measured and modeled properties of mammalian skeletal muscle: IV. Dynamics of activation and deactivationJournal of Muscle Research & Cell Motility, 21
(1974)
The physiology of the joints, the trunk and vertebral column
M. Panjabi, T. Oxland, K. Takata, Vijay Goel, J. Duranceau, M. Krag (1993)
Articular Facets of the Human Spine Quantitative Three‐Dimensional AnatomySpine, 18
AbstractExperimental studies using human volunteers are limited to low acceleration impacts while whole cadavers, isolated cervical spine specimens, and impact dummies do not normally reflect the true human response. Computational modelling offers a cost effective and useful alternative to experimental methods to study the behaviour of the human head and neck and their response to impacts to gain insight into injury mechanisms.This article reports the approach used in the development of a detailed multi-body computational model that reproduces the head and cervical spine of an adult in the upright posture representing the natural lordosis of the neck with mid-sagittal symmetry. The model comprises simplified but accurate representations of the nine rigid bodies representing the head, seven cervical vertebrae of the neck, and the first thoracic vertebra, as well as the soft tissues, i.e. muscles, ligaments, and intervertebral discs. The rigid bodies are interconnected by non-linear viscoelastic intervertebral discs elements in flexion and extension, non-linear viscoelastic ligaments and supported through frictionless facet joints. Eighteen muscle groups and 69 individual muscle segments of the head and neck on each side of the body are also included in the model. Curving the muscle around the vertebrae and soft tissues of the neck during the motion of the neck is also modelled. Simulation is handled by the multi-body dynamic software MSC.visuaNastran4D. Muscle mechanics is handled by an external application, Virtual Muscle, in conjunction with MSC.visuaNastran4D that provides realistic muscle properties. Intervertebral discs are modelled as non-linear viscoelastic material in flexion and extension but represented by ‘bushing elements’ in Visual Nastran 4D, which allows stiffness and damping properties to be assigned to a joint with required number of degrees of freedom of the motion. Ligaments are modelled as non-linear viscoelastic spring-damper elements.As the model is constructed, the cervical spine motion segments are validated by comparing the segment response to published experimental data on the load-displacement behaviour for both small and large static loads. The response of the entire ligamentous cervical spine model to quasi-static flexion and extension loading is also compared to experimental data to validate the model before the effect of muscle stiffening is included. Moreover the moment-generating capacity of the neck muscle elements has been compared against in vivo experimental data.The main and coupled motions of the model segments are shown to be accurate and realistic, and the whole model is in good agreement with experimental findings from actual human cervical spine specimens. It has been shown that the model can predict the loads and deformations of the individual soft-tissue elements making the model suitable for injury analysis. The validation of the muscle elements shows the morphometric values, origins, and insertions selected to be reasonable. The muscles can be activated as required, providing a more realistic representation of the human head and neck. The curved musculature results in a more realistic representation of the change in muscle length during the head and neck motion.
Proceedings of the Institution of Mechanical Engineers, Part K: Journal of Multi-body Dynamics – SAGE
Published: Jun 1, 2007
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