Influence of geometrical personalization on the simulation of clavicle fractures.

Finite element body models enable the evaluation of car occupant protection. In general, these models represent average males and inter-individual geometry variability is not taken into account. As the most frequent shoulder injury during car lateral accidents is a clavicle fracture, the purpose of this study is to investigate whether clavicle geometry has an influence on bone response until failure, and whether geometrical personalization of clavicle models is required. Eighteen clavicles from 9 subjects (5 males and 4 females, mean age: 76 +/- 12 years) were harvested. Six clavicles were scanned, enabling the development of subject-specific models and the quantification of geometrical features defining shape and cortical thickness. Bone mineral densities (BMD) were measured through double X-ray absorptiometry. Then, the general clavicle responses to dynamic compression until failure were studied. Simulations of the compression tests were carried out with the subject-specific models to assess the sensitivity of force-deflection clavicle responses to geometrical features. Clavicle fractures occurred at an average velocity of 1.41 +/- 0.4 ms(-1), with a fracture force of 1.48 +/- 0.46 kN and a deflection of 5.4 +/- 1.1 mm. A significant difference was found between male and female clavicle force values at rupture although their BMDs were not significantly different. Simulations with subject-specific models led to the conclusion that cortical bone thickness and bone shape have large effects on bone responses until failure and on fracture location. This study highlights the need for a geometrical personalization of clavicle models in order to take into account both gender discrepancies concerning clavicle shape and aging effects affecting cortical thickness.

[1]  Masami Iwamoto,et al.  DEVELOPMENT OF A FINITE ELEMENT MODEL OF THE TOTAL HUMAN MODEL FOR SAFETY (THUMS) AND APPLICATION TO INJURY RECONSTRUCTION , 2002 .

[2]  S. Robin,et al.  HUMOS: HUMAN MODEL FOR SAFETY - A JOINT EFFORT TOWARDS THE DEVELOPMENT OF REFINED HUMAN-LIKE CAR OCCUPANT MODELS , 2001 .

[3]  Katsuya Furusu,et al.  Development of practical and simplified human whole body FEM model , 2001 .

[4]  C. Robinson,et al.  Fractures of the clavicle in the adult: Epidemiology and Classification , 1998 .

[5]  E. Meyer LE CHOC LATERAL SUR L'EPAULE : BASES ANATOMIQUES, CLINIQUES, EPIDEMIOLOGIQUES ET EXPERIMENTALES , 1992 .

[6]  John M. Cavanaugh,et al.  Finite Element Modeling of Gross Motion of Human Cadavers in Side Impact , 1994 .

[7]  Rötger Jost Finite element simulation of the human body in vehicle side impact , 2000 .

[8]  J. Koebke,et al.  Anatomy of the clavicle and the intramedullary nailing of midclavicular fractures , 2007, Clinical anatomy.

[9]  Feng Luan,et al.  DEVELOPMENT OF A FINITE ELEMENT MODEL OF THE HUMAN NECK , 1998 .

[10]  P. Gregory,et al.  Injuries of the shoulder girdle. , 1995, Clinical orthopaedics and related research.

[11]  King H. Yang,et al.  Development of a Finite Element Model of the Human Shoulder , 1999, Crashworthiness, Occupant Protection and Biomechanics in Transportation Systems.

[12]  R A Saul,et al.  Shoulder response characteristics and injury due to lateral glenohumeral joint impacts. , 2000, Stapp car crash journal.

[13]  C. Robinson,et al.  Fractures of the clavicle in the adult. Epidemiology and classification. , 1998, The Journal of bone and joint surgery. British volume.

[14]  Benoît Besnault,et al.  DEVELOPMENT OF A 3D FINITE ELEMENT MODEL OF THE HUMAN BODY , 1998 .