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Rheological behavior of gelatin at high shear rates.

机译:明胶在高剪切速率下的流变行为。

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摘要

Gelatin is used as a model material or as a surrogate in biomedical investigation due to its properties being similar to human organ tissue. For successful utilization of this material in many biomedical applications, its properties must be determined at a range of loading conditions. In recent years, gelatin is being used to model the shock response of brain for studies related to traumatic brain injury (TBI) in soldiers deployed in Iraq and Afghanistan. The short time durations associated with shock loading causes high strain rate response in gelatin material. Therefore, the current investigation is focused on determining the high strain rate deformation behavior of gelatin. A coordinated modeling and experimental effort to investigate the uniaxial compressive stress-strain and high rate shear response of gelatin is presented in this dissertation. For compressive behavior, it was found that the compressive strength increased from 3 kPa at a strain rate of around 0.0013/s to 6 MPa at a strain rate of around 3,200/s. This dramatic increase in strength of gelatin at high rates is attributed to its shear-thickening behavior and is argued on the basis of hydrocluster formation mechanism and differences in internal energy absorption mechanism under static and dynamic loading. In addition, the stress relaxation response of gelatin was also analyzed and its elastic stiffness and time constant were determined. For shear response, on the other hand, a power law constitutive model that captures non-Newtonian shear-thickening behavior, the evolution of viscosity, and the momentum diffusion at high shear rates in the range of 2,000/s-8,000/s, is proposed. The model has been applied to experimental observations on double lap-shear test fixture with gelatin specimen subjected to high velocity input on the inner surface. This test fixture allows visualization of momentum diffusion through gelatin (when imaged by a high-speed camera) and measurement of shear stress on the outer surface.;The parameters in the power-law model can be extracted using two methods: (i) the measured velocity of striking plate and the transferred stress through gelatin to the stationary plate, and (ii) the time resolved images of unsteady deformation of gelatin and the self-similar solution. The power in this model was found to be 2.2 from first method and 2.25 from the second method. The results from both methods show a good agreement. This power value implies that gelatin is highly rate sensitive material and its behavior can be modeled as a strong shear-thickening fluid.;The above results are useful in computational models of human tissue deformation when subjected to high velocity or high strain rate loading. Determination of properties and constitutive behavior of surrogate materials facilitates progress in computational model development relating to TBI and other biomedical applications.;The suggested future work includes development of a constitutive model for intermediate shear rate regime and the determination for viscoelastic contribution under high shear rate loading. In addition, it is proposed that a similar technique can be utilized on other rheological fluids to determine their properties.
机译:明胶由于其性质与人体器官组织相似,因此在生物医学研究中可用作模型材料或替代物。为了在许多生物医学应用中成功利用该材料,必须在一定的负载条件下确定其性能。近年来,明胶被用于对部署在伊拉克和阿富汗的士兵进行的创伤性脑损伤(TBI)相关研究的模型,以模拟大脑的休克反应。与冲击载荷相关的短持续时间导致明胶材料中的高应变速率响应。因此,当前的研究集中在确定明胶的高应变速率变形行为。本文研究了明胶单轴压缩应力应变与高剪切速率响应的协调建模与实验工作。对于压缩行为,发现压缩强度从大约0.0013 / s的应变率的3kPa增加到大约3200 / s的应变率的6MPa。明胶在高速率下强度的急剧增加归因于其剪切增稠行为,并基于水团簇的形成机理和静态和动态载荷下内部能量吸收机理的差异而论证。此外,还分析了明胶的应力松弛响应,并确定了其弹性刚度和时间常数。另一方面,对于剪切响应,幂定律本构模型捕获了非牛顿剪切增稠行为,粘度的演变以及在2000 / s-8,000 / s范围内的高剪切速率下的动量扩散。建议。该模型已应用于双搭接试验夹具的实验观察,明胶样品在内表面上受到高速输入。该测试装置可以观察到动量在明胶中的扩散(当用高速相机成像时)以及测量外表面的切应力。;幂律模型中的参数可以使用两种方法提取:(i)测量打击板的速度以及通过明胶传递到固定板上的应力,以及(ii)明胶和自相似溶液的非稳态变形的时间分辨图像。从第一种方法得出的该模型的功效为2.2,从第二种方法得出的为2.25。两种方法的结果均显示出良好的一致性。此功效值表明明胶是高速率敏感材料,其行为可以建模为强剪切增稠流体。上述结果在高速或高应变速率载荷下对人体组织变形的计算模型中很有用。确定替代材料的特性和本构行为可促进与TBI和其他生物医学应用有关的计算模型的开发;建议的未来工作包括开发中等剪切速率模式的本构模型以及确定高剪切速率载荷下的粘弹性贡献。另外,提出可以在其他流变流体上使用类似的技术来确定其特性。

著录项

  • 作者

    Kwon, Jiwoon.;

  • 作者单位

    University of Florida.;

  • 授予单位 University of Florida.;
  • 学科 Engineering Biomedical.;Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 100 p.
  • 总页数 100
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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