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Magnetic Resonance Measurement of Transient Shear Wave Propagation in a Viscoelastic Gel Cylinder

机译:粘弹性凝胶圆柱体中瞬时剪切波传播的磁共振测量

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摘要

A magnetic resonance measurement technique was developed to characterize the transient mechanical response of a gel cylinder subjected to angular acceleration. The technique employs tagged magnetic resonance imaging (MRI) synchronized to periodic impact excitation of a bulk specimen. The tagged MRI sequence provides, non-invasively, an array of distributed displacement and strain measurements with high spatial (here, 5 mm) and temporal (6 ms) resolution. The technique was validated on a cylindrical gelatin sample. Measured dynamic strain fields were compared to strain fields predicted using (1) a closed-form solution and (2) finite element simulation of shear waves in a three-parameter “standard” linear viscoelastic cylinder subjected to similar initial and boundary conditions. Material parameters used in the analyses were estimated from measurements made on the gelatin in a standard rheometer. The experimental results support the utility of tagged MRI for dynamic, non-invasive assays such as measurement of shear waves in brain tissue during angular acceleration of the skull. When applied in the inverse sense, the technique has potential for characterization of the mechanical behavior of gel biomaterials.
机译:开发了磁共振测量技术来表征凝胶圆柱体在受到角加速度时的瞬态机械响应。该技术采用了标记的磁共振成像(MRI),该成像与大块样本的周期性碰撞激发同步。标记的MRI序列非侵入性地提供了一系列具有高空间(此处为5 mm)和时间(6 ms)分辨率的分布式位移和应变测量结果。该技术在圆柱形明胶样品上得到验证。将测得的动态应变场与使用(1)封闭形式的解和(2)在三参数“标准”线性粘弹性圆柱体中经受相似初始和边界条件的剪切波预测的应变场进行了比较。分析中使用的材料参数是根据在标准流变仪中对明胶进行的测量估算的。实验结果支持标记MRI在动态,非侵入性测定中的实用性,例如在颅骨角加速度期间测量脑组织中的剪切波。当以相反的方式应用时,该技术具有表征凝胶生物材料的机械性能的潜力。

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