Literature DB >> 24515978

Development and validation of a distal radius finite element model to simulate impact loading indicative of a forward fall.

Timothy A Burkhart1, Cheryl E Quenneville, Cynthia E Dunning, David M Andrews.   

Abstract

The purpose of this work was to develop and validate a finite element model of the distal radius to simulate impact loading. Eight-node hexahedral meshes of the bone and impactor components were created. Three separate impact events were simulated by altering the impact velocity assigned to the model projectile (pre-fracture, crack and fracture). Impact forces and maximum and minimum principal strains were calculated and used in the validation process by comparing with previously collected experimental data. Three measures of mesh quality (Jacobians, aspect ratios and orthogonality) and four validation methods (validation metric, error assessment, fracture comparisons and ensemble averages) assessed the model. The element Jacobians, aspect ratios and orthogonality measures ranged from 0.08 to 12, 1.1 to 26 and -70° to 80°, respectively. The force and strain validation metric ranged from 0.10 to 0.54 and 0.35 to 0.67, respectively. The estimated peak axial force was found to be a maximum of 28.5% greater than the experimental (crack) force, and all forces fell within ±2 standard deviation of the mean experimental fracture forces. The predicted strains were found to differ by a mean of 33% across all impact events, and the model was found to accurately predict the location and severity of bone damage. Overall, the model presented here is a valid representation of the distal radius subjected to impact.

Entities:  

Keywords:  Radius; forward fall; impact; validation metric

Mesh:

Year:  2014        PMID: 24515978     DOI: 10.1177/0954411914522781

Source DB:  PubMed          Journal:  Proc Inst Mech Eng H        ISSN: 0954-4119            Impact factor:   1.617


  3 in total

1.  Simplified boundary conditions alter cortical-trabecular load sharing at the distal radius; A multiscale finite element analysis.

Authors:  Joshua E Johnson; Karen L Troy
Journal:  J Biomech       Date:  2017-11-04       Impact factor: 2.712

2.  Variations in Strain Distribution at Distal Radius under Different Loading Conditions.

Authors:  Jonas A Pramudita; Wataru Hiroki; Takuya Yoda; Yuji Tanabe
Journal:  Life (Basel)       Date:  2022-05-16

3.  The Comparison of Biomechanical Volar and Dorsal Plating in Distal Part Radius Fractures; a Finite Element Analysis Study.

Authors:  Ali Ghaem-Maghami; Ehsan Fallah; Hamid Namazi; Mohammad-Taghi Karimi; Seyed Iman Hosseini
Journal:  Bull Emerg Trauma       Date:  2021-01
  3 in total

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