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研究眼压计几何形状和患者个体差异对桡动脉眼压测量影响的计算研究。

Computational study to investigate effect of tonometer geometry and patient-specific variability on radial artery tonometry.

作者信息

Singh Pranjal, Choudhury Mohammed Ikbal, Roy Sitikantha, Prasad Anamika

机构信息

Mechanical Engineering, Indian Institute of Technology Delhi, India.

Applied Mechanics, Indian Institute of Technology Delhi, India.

出版信息

J Biomech. 2017 Jun 14;58:105-113. doi: 10.1016/j.jbiomech.2017.04.023. Epub 2017 May 5.

Abstract

Tonometry-based devices are valuable method for vascular function assessment and for measurement of blood pressure. However current design and calibration methods rely on simple models, neglecting key geometrical features, and anthropometric and property variability among patients. Understanding impact of these influences on tonometer measurement is thus essential for improving outcomes of current devices, and for proposing improved design. Towards this goal, we present a realistic computational model for tissue-device interaction using complete wrist section with hyperelastic material and frictional contact. Three different tonometry geometries were considered including a new design, and patient-specific influences incorporated via anthropometric and age-dependent tissue stiffness variations. The results indicated that the new design showed stable surface contact stress with minimum influence of the parameters analyzed. The computational predictions were validated with experimental data from a prototype based on the new design. Finally, we showed that the underlying mechanics of vascular unloading in tonometry to be fundamentally different from that of oscillatory method. Due to directional loading in tonometry, pulse amplitude maxima was observed to occur at a significantly lower compression level (around 31%) than previously reported, which can impact blood pressure calibration approaches based on maximum pulse pressure recordings.

摘要

基于眼压测量的设备是评估血管功能和测量血压的重要方法。然而,目前的设计和校准方法依赖于简单模型,忽略了关键的几何特征以及患者之间的人体测量学和属性变异性。因此,了解这些影响因素对眼压计测量的影响对于改善现有设备的性能以及提出改进设计至关重要。为了实现这一目标,我们提出了一种逼真的计算模型,用于模拟使用具有超弹性材料和摩擦接触的完整手腕截面的组织-设备相互作用。考虑了三种不同的眼压测量几何形状,包括一种新设计,并通过人体测量学和年龄相关的组织刚度变化纳入患者特异性影响因素。结果表明,新设计显示出稳定的表面接触应力,所分析参数的影响最小。计算预测结果通过基于新设计的原型实验数据进行了验证。最后,我们表明眼压测量中血管卸载的潜在力学原理与振荡法的原理有根本不同。由于眼压测量中的定向加载,观察到脉搏幅度最大值出现在比先前报道的显著更低的压缩水平(约31%),这可能会影响基于最大脉搏压力记录的血压校准方法。

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