Screw pull-out force predictions in porcine radii using efficient nonlinear µFE models including contact and pre-damage.

IF 4.3 3区 工程技术 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Frontiers in Bioengineering and Biotechnology Pub Date : 2025-03-24 eCollection Date: 2025-01-01 DOI:10.3389/fbioe.2025.1524235
Pia Stefanek, J D Silva-Henao, Victoria Fiedler, A G Reisinger, Dieter H Pahr, Alexander Synek
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引用次数: 0

Abstract

Nonlinear micro finite element (µFE) models have become the gold-standard for accurate numerical modeling of bone-screw systems. However, the detailed representation of bone microstructure, along with the inclusion of nonlinear material and contact, and pre-damage due to pre-drilling and screw-insertion, constitute significant computational demands and restrict model sizes. The goal of this study was to evaluate the agreement of screw pull-out predictions of computationally efficient, materially nonlinear µFE models with experimental measurements, taking both contact interface and pre-damage into account in a simplified way. Screw pull-out force was experimentally measured in ten porcine radius biopsies, and specimen-specific, voxel-based µFE models were created mimicking the experimental setup. µFE models with three levels of modeling details were compared: Fully bonded interface without pre-damage (FB), simplified contact interface without pre-damage (TED-M), and simplified contact interface with pre-damage (TED-M + P). In the TED-M + P models, the influence of pre-damage parameters (damage zone radial thickness and amount of damage) was assessed and optimal parameters were identified. The results revealed that pre-damage parameters highly impact the pull-out force predictions, and that the optimal parameters are ambiguous and dependent on the chosen bone material properties. Although all µFE models demonstrated high correlations with experimental data (R 2 > 0.85), they differed in their 1:1 correspondence. The FB and TED-M models overestimated maximum force predictions (mean absolute percentage error (MAPE) > 52%), while the TED-M + P model with optimized pre-damage parameters improved the predictions (MAPE <17%). In conclusion, screw pull-out forces predicted with computationally efficient, materially nonlinear µFE models showed strong correlations with experimental measurements. To achieve quantitatively accurate results, precise coordination of contact modeling, pre-damage representation, and material properties is essential.

螺杆拉出力预测猪半径使用有效的非线性微有限元模型,包括接触和预损伤。
非线性微有限元(µFE)模型已经成为骨螺钉系统精确数值建模的金标准。然而,骨微观结构的详细表示,以及非线性材料和接触的包含,以及预钻孔和螺钉插入造成的预损伤,构成了大量的计算需求并限制了模型尺寸。本研究的目的是以简化的方式考虑接触界面和预损伤,评估计算效率高的材料非线性微有限元模型与实验测量的螺杆拔出预测的一致性。实验测量了10个猪桡骨活检组织的螺钉拔出力,并建立了模拟实验设置的标本特异性、基于体素的µFE模型。对比了三种建模细节级别的微有限元模型:无预损伤的全粘结界面(FB)、无预损伤的简化接触界面(TED-M)和有预损伤的简化接触界面(TED-M + P)。在TED-M + P模型中,评估了预损伤参数(损伤区径向厚度和损伤量)的影响,并确定了最优参数。结果表明,损伤前参数对拔出力预测有很大影响,而最佳参数是模糊的,并且依赖于所选骨材料的性能。虽然所有的微有限元模型都显示出与实验数据的高度相关性(R 2 > 0.85),但它们的1:1对应关系不同。FB和TED-M模型高估了最大力预测值(平均绝对百分比误差(MAPE)),而优化损伤前参数的TED-M + P模型提高了预测值(MAPE)
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来源期刊
Frontiers in Bioengineering and Biotechnology
Frontiers in Bioengineering and Biotechnology Chemical Engineering-Bioengineering
CiteScore
8.30
自引率
5.30%
发文量
2270
审稿时长
12 weeks
期刊介绍: The translation of new discoveries in medicine to clinical routine has never been easy. During the second half of the last century, thanks to the progress in chemistry, biochemistry and pharmacology, we have seen the development and the application of a large number of drugs and devices aimed at the treatment of symptoms, blocking unwanted pathways and, in the case of infectious diseases, fighting the micro-organisms responsible. However, we are facing, today, a dramatic change in the therapeutic approach to pathologies and diseases. Indeed, the challenge of the present and the next decade is to fully restore the physiological status of the diseased organism and to completely regenerate tissue and organs when they are so seriously affected that treatments cannot be limited to the repression of symptoms or to the repair of damage. This is being made possible thanks to the major developments made in basic cell and molecular biology, including stem cell science, growth factor delivery, gene isolation and transfection, the advances in bioengineering and nanotechnology, including development of new biomaterials, biofabrication technologies and use of bioreactors, and the big improvements in diagnostic tools and imaging of cells, tissues and organs. In today`s world, an enhancement of communication between multidisciplinary experts, together with the promotion of joint projects and close collaborations among scientists, engineers, industry people, regulatory agencies and physicians are absolute requirements for the success of any attempt to develop and clinically apply a new biological therapy or an innovative device involving the collective use of biomaterials, cells and/or bioactive molecules. “Frontiers in Bioengineering and Biotechnology” aspires to be a forum for all people involved in the process by bridging the gap too often existing between a discovery in the basic sciences and its clinical application.
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