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The high frequency properties of brain tissue

机译:脑组织的高频特性

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Computer modeling is becoming increasingly important in the realm of brain biomechanics and injury. New computer simulations range from modeling of brain surgery, a low frequency, high strain event, to predicting injury as a result of an impact to the head, a high frequency event with varying strain magnitudes. This range of modeling efforts requires characterization of the tissue over as wide a frequency and strain range as possible. Research done to date has concentrated on the low frequency properties of the tissue. Complex compression and complex shear moduli have been measured at frequencies up to 350 Hz. Impact modeling requires use of frequency data at significantly higher frequencies than these. The "wave-in-a-tube" ultrasonic method was applied to brain tissue to determine mechanical properties at frequencies between 100 kHz and 10 MHz. Of these properties, only complex bulk modulus |K~*| is fairly invariant (2133 MPa) with respect to frequency. Complex shear and complex Young's moduli vary with frequency and approach an asymptotic upper limit. Some variation in complex Poisson's ratio was also observed.
机译:在大脑生物力学和损伤领域,计算机建模变得越来越重要。新的计算机模拟范围从脑外科手术的建模,低频,高应变事件到预测因头部撞击而导致的伤害,应变程度不同的高频事件。这种建模工作范围要求在尽可能宽的频率和应变范围内表征组织。迄今为止完成的研究集中在组织的低频特性上。已经在高达350 Hz的频率下测量了复合压缩和复合剪切模量。影响建模需要使用频率数据,频率要远高于这些数据。将“管中波”超声方法应用于脑组织,以确定100 kHz至10 MHz频率下的机械性能。在这些特性中,仅复数弹性模量| K〜* |相对于频率而言是相当不变的(2133 MPa)。复数剪切力和复数杨氏模量随频率变化,并接近渐近上限。还观察到复泊松比的一些变化。

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