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一种使用电子散斑干涉和有限元分析确定羊骨折愈合组织材料特性的计算方法。

A computational method for determining tissue material properties in ovine fracture calluses using electronic speckle pattern interferometry and finite element analysis.

机构信息

Institute of Orthopaedic Research and Biomechanics, Center of Musculoskeletal Research Ulm, University of Ulm, Germany.

出版信息

Med Eng Phys. 2012 Dec;34(10):1521-5. doi: 10.1016/j.medengphy.2012.09.013. Epub 2012 Oct 18.

DOI:10.1016/j.medengphy.2012.09.013
PMID:23084282
Abstract

For numerical simulations of biological processes the assignment of reliable material properties is essential. Since literature data show huge variations for each parameter, this study presents a method for determining tissue properties straight from the investigated specimens by combining electronic speckle pattern interferometry (ESPI) with finite element (FE) analysis in a two-step parameter analysis procedure. ESPI displacement data from two mid-sagittal ovine fracture callus slices under 5 N compressive load were directly compared to data from FE simulations of the respective experimental setup. In the first step a parameter sensitivity analysis quantified the influence of single tissues on the mechanical behavior of the callus specimens. In the second step, material properties (i.e. Young's moduli and Poisson's ratios) for the most dominant material of each callus specimen were determined through a parameter sampling procedure minimizing the mean local deviations between the simulated (FE) and measured (ESPI) equivalent element strains. The resulting material properties showed reasonable ranges downsizing the variability of previous published values, especially for Young's modulus which was 1881 MPa for woven bone and 16 MPa for cartilage in average. In conclusion, a numerical method was developed to determine material properties straight from independent fracture callus specimens based on experimentally derived local mechanical conditions.

摘要

对于生物过程的数值模拟,可靠的材料特性的赋值是至关重要的。由于文献数据显示每个参数都存在巨大的变化,因此本研究提出了一种方法,通过在两步参数分析过程中将电子散斑干涉(ESPI)与有限元(FE)分析相结合,直接从研究的标本中确定组织特性。在 5N 压缩载荷下,对两块绵羊骨折愈合组织的中矢状切片进行了 ESPI 位移数据测量,并将其与相应实验设置的 FE 模拟数据进行了直接比较。在第一步的参数敏感性分析中,量化了单个组织对骨痂标本力学行为的影响。在第二步中,通过参数抽样程序确定了每个骨痂标本中最主要材料的材料特性(即杨氏模量和泊松比),该程序通过最小化模拟(FE)和测量(ESPI)等效单元应变之间的局部平均偏差来实现。所得的材料特性显示出合理的范围,缩小了之前发表值的可变性,特别是杨氏模量,编织骨的杨氏模量平均值为 1881MPa,软骨的杨氏模量平均值为 16MPa。总之,本研究开发了一种从独立的骨折愈合组织标本中直接确定材料特性的数值方法,该方法基于实验得出的局部力学条件。

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引用本文的文献

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Biomechanical duality of fracture healing captured using virtual mechanical testing and validated in ovine bones.利用虚拟力学测试捕捉骨折愈合的生物力学双重性,并在羊骨中得到验证。
Sci Rep. 2022 Feb 15;12(1):2492. doi: 10.1038/s41598-022-06267-8.
2
Finite element analysis of a bone healing model: 1-year follow-up after internal fixation surgery for femoral fracture.骨愈合模型的有限元分析:股骨骨折内固定手术后 1 年的随访。
Pak J Med Sci. 2014 Mar;30(2):343-7.
3
Prediction of fracture healing under axial loading, shear loading and bending is possible using distortional and dilatational strains as determining mechanical stimuli.
使用变形和膨胀应变作为确定机械刺激的因素,可以预测轴向加载、剪切加载和弯曲下的骨折愈合。
J R Soc Interface. 2013 Jul 3;10(86):20130389. doi: 10.1098/rsif.2013.0389. Print 2013 Sep 6.