首页> 外文期刊>Journal of the mechanical behavior of biomedical materials >Verification and implementation of a modified split Hopkinson pressure bar technique for characterizing biological tissue and soft biosimulant materials under dynamic shear loading
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Verification and implementation of a modified split Hopkinson pressure bar technique for characterizing biological tissue and soft biosimulant materials under dynamic shear loading

机译:修改后的霍普金森压杆技术的验证和实施,该技术用于在动态剪切载荷下表征生物组织和软生物模拟材料

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摘要

Modeling human body response to dynamic loading events and developing biofidelic human surrogate systems require accurate material properties over a range of loading rates for various human organ tissues. This work describes a technique for measuring the shear properties of soft biomaterials at high rates of strain (100-1000 s -1) using a modified split Hopkinson pressure bar (SHPB). Establishing a uniform state of stress in the sample is a fundamental requirement for this type of high-rate testing. Input pulse shaping was utilized to tailor and control the ramping of the incident loading pulse such that a uniform stress state could be maintained within the specimen from the start of the test. Direct experimental verification of the stress uniformity in the sample was obtained via comparison of the force measured by piezoelectric quartz force gages on both the input and the output sides of the shear specimen. The technique was demonstrated for shear loading of silicone gel biosimulant materials and porcine brain tissue. Finite element simulations were utilized to further investigate the effect of pulse shaping on the loading rate and rise time. Simulations also provided a means for visualization of the degree of shear stress and strain uniformity in the specimen during an experiment. The presented technique can be applied to verify stress uniformity and ensure high quality data when measuring the dynamic shear modulus of soft biological simulants and tissue.
机译:对人体对动态负荷事件的响应进行建模并开发生物理想的人体替代系统,需要在各种人体器官组织的一系列负荷率上具有准确的材料特性。这项工作描述了一种使用改良的霍普金森分体式压力棒(SHPB)在高应变率(100-1000 s -1)下测量软生物材料的剪切特性的技术。在样品中建立均匀的应力状态是此类高速率测试的基本要求。输入脉冲整形用于调整和控制入射负载脉冲的斜率,以便从测试开始就可以在样品内保持均匀的应力状态。通过比较由压电石英测力计在剪切试样的输入侧和输出侧上测得的力,可以直接对样品中的应力均匀性进行实验验证。证明了该技术可用于硅胶生物模拟材料和猪脑组织的剪切载荷。有限元模拟被用来进一步研究脉冲整形对加载速率和上升时间的影响。模拟还提供了一种在实验过程中可视化试样中剪切应力和应变均匀度的方法。所提出的技术可用于验证应力均匀性,并在测量软生物模拟物和组织的动态剪切模量时确保高质量的数据。

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