首页> 美国卫生研究院文献>Springer Open Choice >On the AIC-based model reduction for the general Holzapfel–Ogden myocardial constitutive law
【2h】

On the AIC-based model reduction for the general Holzapfel–Ogden myocardial constitutive law

机译:Holzapfel–Ogden心肌本构律的基于AIC的模型简化

代理获取
本网站仅为用户提供外文OA文献查询和代理获取服务,本网站没有原文。下单后我们将采用程序或人工为您竭诚获取高质量的原文,但由于OA文献来源多样且变更频繁,仍可能出现获取不到、文献不完整或与标题不符等情况,如果获取不到我们将提供退款服务。请知悉。

摘要

Constitutive laws that describe the mechanical responses of cardiac tissue under loading hold the key to accurately model the biomechanical behaviour of the heart. There have been ample choices of phenomenological constitutive laws derived from experiments, some of which are quite sophisticated and include effects of microscopic fibre structures of the myocardium. A typical example is the strain-invariant-based Holzapfel–Ogden 2009 model that is excellently fitted to simple shear tests. It has been widely used and regarded as the state-of-the-art constitutive law for myocardium. However, there has been no analysis to show if it has both adequate descriptive and predictive capabilities for other tissue tests of myocardium. Indeed, such an analysis is important for any constitutive laws for clinically useful computational simulations. In this work, we perform such an analysis using combinations of tissue tests, uniaxial tension, biaxial tension and simple shear from three different sets of myocardial tissue studies. Starting from the general 14-parameter myocardial constitutive law developed by Holzapfel and Ogden, denoted as the general HO model, we show that this model has good descriptive and predictive capabilities for all the experimental tests. However, to reliably determine all 14 parameters of the model from experiments remains a great challenge. Our aim is to reduce the constitutive law using Akaike information criterion, to maintain its mechanical integrity whilst achieving minimal computational cost. A competent constitutive law should have descriptive and predictive capabilities for different tissue tests. By competent, we mean the model has least terms but is still able to describe and predict experimental data. We also investigate the optimal combinations of tissue tests for a given constitutive model. For example, our results show that using one of the reduced HO models, one may need just one shear response (along normal-fibre direction) and one biaxial stretch (ratio of 1 mean fibre : 1 cross-fibre) to satisfactorily describe Sommer et al. human myocardial mechanical properties. Our study suggests that single-state tests (i.e. simple shear or stretching only) are insufficient to determine the myocardium responses. We also found it is important to consider transmural fibre rotations within each myocardial sample of tests during the fitting process. This is done by excluding un-stretched fibres using an “effective fibre ratio”, which depends on the sample size, shape, local myofibre architecture and loading conditions. We conclude that a competent myocardium material model can be obtained from the general HO model using AIC analysis and a suitable combination of tissue tests.
机译:描述负荷下心脏组织机械反应的本构定律是准确模拟心脏生物力学行为的关键。从实验中获得了丰富的现象本构定律选择,其中一些相当复杂,并包括心肌微观纤维结构的影响。一个典型的例子是基于应变不变性的Holzapfel–Ogden 2009模型,非常适合简单的剪切试验。它已被广泛使用,并被认为是最先进的心肌构成法。但是,没有分析表明它对于心肌的其他组织检查是否具有足够的描述性和预测性。实际上,对于任何本构定律,这种分析对于临床上有用的计算模拟都是重要的。在这项工作中,我们使用组织测试,三组不同的心肌组织研究的单轴张力,双轴张力和简单剪切力的组合来进行此类分析。从Holzapfel和Ogden提出的通用14参数心肌本构律开始,表示为通用HO模型,我们证明该模型对所有实验测试都具有良好的描述和预测能力。然而,从实验中可靠地确定模型的所有14个参数仍然是一个巨大的挑战。我们的目标是使用Akaike信息准则减少本构定律,以保持其机械完整性,同时实现最低的计算成本。主管的本构法应具有针对不同组织测试的描述和预测能力。通过称职,我们意味着该模型具有最少的术语,但仍然能够描述和预测实验数据。我们还研究了给定本构模型的组织测试的最佳组合。例如,我们的结果表明,使用简化的HO模型之一,可能只需要一个剪切响应(沿正常纤维方向)和一个双轴拉伸(1个平均纤维比:1个交叉纤维)即可令人满意地描述Sommer等人。等人的心肌力学性能。我们的研究建议单状态测试(即仅简单的剪切或拉伸)不足以确定心肌反应。我们还发现,在拟合过程中,在每个测试的心肌样本中考虑透壁纤维旋转也很重要。这是通过使用“有效纤维比率”排除未拉伸的纤维来完成的,“有效纤维比率”取决于样品的大小,形状,局部肌纤维结构和加载条件。我们得出结论,可以使用AIC分析和组织测试的适当组合从通用HO模型中获得有效的心肌材料模型。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
代理获取

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号