A continuum mechanical porous media model for vertebroplasty: Numerical simulations and experimental validation

The outcome of vertebroplasty is hard to predict due to its dependence on complex factors like bone cement and marrow rheologies. Cement leakage could occur if the procedure is done incorrectly, potentially causing adverse complications. A reliable simulation could predict the patient-specific outco...

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Bibliographic Details
Main Authors: Gehweiler, D. (Author), Gueorguiev, B. (Author), Ricken, T. (Author), Röhrle, O. (Author), Trivedi, Z. (Author), Wagner, A. (Author), Wychowaniec, J.K (Author)
Format: Article
Language:English
Published: Springer Science and Business Media Deutschland GmbH 2023
Subjects:
Online Access:View Fulltext in Publisher
LEADER 03050nam a2200409Ia 4500
001 10.1007-s10237-023-01715-4
008 230526s2023 CNT 000 0 und d
020 |a 16177959 (ISSN) 
245 1 0 |a A continuum mechanical porous media model for vertebroplasty: Numerical simulations and experimental validation 
260 0 |b Springer Science and Business Media Deutschland GmbH  |c 2023 
856 |z View Fulltext in Publisher  |u https://doi.org/10.1007/s10237-023-01715-4 
520 3 |a The outcome of vertebroplasty is hard to predict due to its dependence on complex factors like bone cement and marrow rheologies. Cement leakage could occur if the procedure is done incorrectly, potentially causing adverse complications. A reliable simulation could predict the patient-specific outcome preoperatively and avoid the risk of cement leakage. Therefore, the aim of this work was to introduce a computationally feasible and experimentally validated model for simulating vertebroplasty. The developed model is a multiphase continuum-mechanical macro-scale model based on the Theory of Porous Media. The related governing equations were discretized using a combined finite element–finite volume approach by the so-called Box discretization. Three different rheological upscaling methods were used to compare and determine the most suitable approach for this application. For validation, a benchmark experiment was set up and simulated using the model. The influence of bone marrow and parameters like permeability, porosity, etc., was investigated to study the effect of varying conditions on vertebroplasty. The presented model could realistically simulate the injection of bone cement in porous materials when used with the correct rheological upscaling models, of which the semi-analytical averaging of the viscosity gave the best results. The marrow viscosity is identified as the crucial reference to categorize bone cements as ‘high- ’or ‘low-’ viscosity in the context of vertebroplasty. It is confirmed that a cement with higher viscosity than the marrow ensures stable development of the injection and a proper cement interdigitation inside the vertebra. © 2023, The Author(s). 
650 0 4 |a Bone cement 
650 0 4 |a Complex factors 
650 0 4 |a Continuum mechanics 
650 0 4 |a Developed model 
650 0 4 |a Experimental validations 
650 0 4 |a Mechanical 
650 0 4 |a Non Newtonian flow 
650 0 4 |a Non-newtonian 
650 0 4 |a Non-Newtonian 
650 0 4 |a Patient specific 
650 0 4 |a Porous materials 
650 0 4 |a Porous media 
650 0 4 |a Porous medium 
650 0 4 |a Porous medium model 
650 0 4 |a Simulation validation 
650 0 4 |a Vertebroplasty 
650 0 4 |a Viscosity 
700 1 0 |a Gehweiler, D.  |e author 
700 1 0 |a Gueorguiev, B.  |e author 
700 1 0 |a Ricken, T.  |e author 
700 1 0 |a Röhrle, O.  |e author 
700 1 0 |a Trivedi, Z.  |e author 
700 1 0 |a Wagner, A.  |e author 
700 1 0 |a Wychowaniec, J.K.  |e author 
773 |t Biomechanics and Modeling in Mechanobiology  |x 16177959 (ISSN)