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A multi-species analysis of biomechanical responses of the head to a shock wave.

机译:头部对冲击波的生物力学响应的多物种分析。

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摘要

Shock wave induced brain injury remains a field of research that has great consequences for the rehabilitation of soldiers and civilians that are exposed to an explosion. As such, for the research to be successful in developing strategies to mitigate the effects of these injuries, appropriate research methods need to be developed. Animal models are currently employed to understand the brain's response to a shock wave exposure. Unfortunately no criteria have been established that indicates in what way the mechanical inputs that the cells in an animal's brain are subjected to are similar to a human. The purpose of this dissertation was to investigate these biomechanical responses.;To address this question, the biomechanical responses of the rat, pig, and post mortem human subject were analyzed. Each of the species was exposed to multiple shock waves within a shock tube. Skull strain was measured using strain gages and intracranial pressure was measured using fiber optic pressure sensors. The effect of orientation was also addressed for the cadaver and the porcine.;The results of the project indicate that for all three species, as the incident shock wave amplitude increases, the peak strain and ICP also increases. Also, the response of the head is unique to orientation. A front facing head will respond differently than a side facing head. The relationships between skull strain and ICP were also demonstrated. Skull flexure has a dominate effect on the ICP response. Additionally key characteristic waveforms describing the skull surface and ICP wave dynamics were identified.;Overall this project provides much needed information in the field of blast biomechanics. The results of the study indicate that each species will experience pressure wave profiles in the brain partially by means of skull flexure. And that the intracranial pressure environment is dependent on intensity, orientation of the head, and species being tested. It is possible that the responses of each species can be simplified into relative contributions of the identified waveforms. This research provides a basis for further studies that will either investigate methods for mitigating the effects of shock wave exposure or investigating brain cell response to pressure waveforms that are generated within the brain when exposed to a shock wave.
机译:冲击波引起的脑损伤仍然是一个研究领域,它对遭受爆炸的士兵和平民的康复产生了重大影响。因此,为了使研究成功地制定减轻这些伤害影响的策略,需要开发适当的研究方法。目前正在使用动物模型来了解大脑对冲击波暴露的反应。不幸的是,还没有建立任何标准来表明动物大脑中的细胞所经历的机械输入与人类相似。本文的目的是研究这些生物力学反应。为了解决这个问题,分析了大鼠,猪和尸体人类受试者的生物力学反应。每个物种都暴露在冲击管内的多个冲击波中。使用应变计测量颅骨应变,并使用光纤压力传感器测量颅内压。方向的影响也针对尸体和猪进行了研究。该项目的结果表明,对于所有三个物种,随着入射冲击波幅度的增加,峰值应变和ICP也会增加。而且,头部的响应对于定向是唯一的。正面朝向的头部与侧面朝向的头部会有不同的响应。还证明了颅骨应变与ICP之间的关系。头骨弯曲对ICP的反应起主要作用。此外,还确定了描述颅骨表面和ICP波动力学的关键特征波形。总体而言,该项目提供了爆炸生物力学领域急需的信息。研究结果表明,每个物种都会通过颅骨弯曲部分地在大脑中经历压力波曲线。并且颅内压环境取决于强度,头部的方向和所测试的物种。每个物种的响应可能会简化为所识别波形的相对贡献。这项研究为进一步的研究提供了基础,这些研究要么研究减轻冲击波暴露的影响的方法,要么研究大脑细胞对暴露于冲击波时大脑内部产生的压力波形的反应。

著录项

  • 作者

    Bolander, Richard.;

  • 作者单位

    Wayne State University.;

  • 授予单位 Wayne State University.;
  • 学科 Engineering Biomedical.;Biophysics Biomechanics.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 268 p.
  • 总页数 268
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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