Literature DB >> 2263968

Injury biomechanics of the human cervical column.

N Yoganandan1, A Sances, F Pintar, D J Maiman, J Reinartz, J F Cusick, S J Larson.   

Abstract

In this study, the authors have developed a technique to replicate clinically relevant traumatic cervical spine injuries and determined the injury biomechanics. Because of the importance of compressive forces in neck injuries, this research was conducted using compression as the primary load vector. Six fresh human cadaveric head-neck complexes were prepared by fixing the distal end in methylmethacrylate. Tests were done with varying loading rates to include quasistatic and dynamic conditions. For quasistatic experiments, the proximal end was fixed to the piston of the testing device. In dynamic tests, the cranium was unconstrained, and to maintain stability, the effects of the spinal musculature were simulated by means of pulleys, deadweights, and springs in the anterior and posterior parts of the head-neck complex. Quasistatic tests conducted at a rate of 2.0 mm/sec produced cervical spine trauma at forces ranging from 1.7 to 2.3 kN, with deformations ranging from 2.2 to 3.7 cm. The specimens were deep-frozen at the level of injury, preserving the local deformation of the tissues to enable a detailed evaluation immediately after the injury. Dynamic tests conducted at velocities of 3.2 to 5.7 m/sec resulted in impact injuries at one level of the head-neck complex. The applied forces at the vertex were considerably higher than those recorded at the distal end. The failure deformations for both the quasistatic (2.2-3.7 cm) and dynamic (1.7-3.2 cm) tests, however, were found to be similar, suggesting that the human head-neck complex is a deformation-sensitive structure.

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Year:  1990        PMID: 2263968     DOI: 10.1097/00007632-199015100-00010

Source DB:  PubMed          Journal:  Spine (Phila Pa 1976)        ISSN: 0362-2436            Impact factor:   3.468


  5 in total

1.  Cervical spine functional anatomy and the biomechanics of injury due to compressive loading.

Authors:  Erik E Swartz; R T Floyd; Mike Cendoma
Journal:  J Athl Train       Date:  2005 Jul-Sep       Impact factor: 2.860

2.  Biomechanics of human thoracolumbar spinal column trauma from vertical impact loading.

Authors:  Narayan Yoganandan; Mike W J Arun; Brian D Stemper; Frank A Pintar; Dennis J Maiman
Journal:  Ann Adv Automot Med       Date:  2013

3.  Comparison of head-neck responses in frontal impacts using restrained human surrogates.

Authors:  Narayan Yoganandan; Frank A Pintar; Michael Schlick; Jason Moore; Dennis J Maiman
Journal:  Ann Adv Automot Med       Date:  2011

4.  Lateral neck injury assessments in side impact using post mortem human subject tests.

Authors:  Narayan Yoganandan; John Humm; Frank A Pintar; Christopher E Wolfla; Dennis J Maiman
Journal:  Ann Adv Automot Med       Date:  2011

5.  Influence of occupant collision state parameters on the lumbar spinal injury during frontal crash.

Authors:  S Sivasankari; Venkatesh Balasubramanian
Journal:  J Adv Res       Date:  2020-06-17       Impact factor: 10.479

  5 in total

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