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Transmission attenuation and reflection of shear waves in the human brain

机译:人脑中剪切波的传输衰减和反射

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摘要

Traumatic brain injuries (TBIs) are caused by acceleration of the skull or exposure to explosive blast, but the processes by which mechanical loads lead to neurological injury remain poorly understood. We adapted motion-sensitive magnetic resonance imaging methods to measure the motion of the human brain in vivo as the skull was exposed to harmonic pressure excitation (45, 60 and 80 Hz). We analysed displacement fields to quantify the transmission, attenuation and reflection of distortional (shear) waves as well as viscoelastic material properties. Results suggest that internal membranes, such as the falx cerebri and the tentorium cerebelli, play a key role in reflecting and focusing shear waves within the brain. The skull acts as a low-pass filter over the range of frequencies studied. Transmissibility of pressure waves through the skull decreases and shear wave attenuation increases with increasing frequency. The skull and brain function mechanically as an integral structure that insulates internal anatomic features; these results are valuable for building and validating mathematical models of this complex and important structural system.
机译:外伤性颅脑损伤(TBI)是由颅骨加速或暴露于爆炸性爆炸引起的,但对机械负荷导致神经损伤的过程仍知之甚少。当颅骨暴露于谐波压力激发(45、60和80 Hz)时,我们采用了运动敏感的磁共振成像方法来测量人脑在体内的运动。我们分析了位移场,以量化变形(剪切)波的传输,衰减和反射以及粘弹性材料的性能。结果表明,内膜(例如小脑和小脑膜)在反射和聚焦脑内的剪切波中起关键作用。在所研究的频率范围内,颅骨充当低通滤波器。压力波通过颅骨的透射率随频率的增加而减小,而剪切波的衰减随频率的增加而增加。头骨和大脑在机械上是不可分割的整体结构,可将内部解剖特征隔离开来。这些结果对于建立和验证这个复杂而重要的结构系统的数学模型非常有价值。

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