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首页> 外文期刊>Acta biomaterialia >A viscoelastic analysis of the P56 mouse brain under large-deformation dynamic indentation
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A viscoelastic analysis of the P56 mouse brain under large-deformation dynamic indentation

机译:大变形动力学压痕下P56小鼠脑的粘弹性分析

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The brain is a complex organ made up of many different functional and structural regions consisting of different types of cells such as neurons and glia, as well as complex anatomical geometries. It is hypothesized that the different regions of the brain exhibit significantly different mechanical properties which may be attributed to the diversity of cells within individual brain regions. The regional viscoelastic properties of P56 mouse brain tissue, up to 70 mu m displacement, are presented and discussed in the context of traumatic brain injury, particularly how the different regions of the brain respond to mechanical loads. Force-relaxation data obtained from micro-indentation measurements were fit to both linear and quasi-linear viscoelastic models to determine the time and frequency domain viscoelastic response of the pons, cortex, medulla oblongata, cerebellum, and thalamus. The damping ratio of each region was also determined. Each region was found to have a unique mechanical response to the applied displacement, with the pons and thalamus exhibiting the largest and smallest force-response, respectively. All brain regions appear to have an optimal frequency for the dissipation of energies which lies between 1 and 10 Hz.
机译:大脑是一种复杂的器官,由许多不同的功能和结构区域组成,包括不同类型的细胞,如神经元和胶质胶质,以及复杂的解剖学几何形状。假设大脑的不同区域表现出显着不同的机械性能,这可能归因于单个脑区域内的细胞的多样性。在创伤性脑损伤的背景下,呈现并讨论了P56小鼠脑组织的区域粘弹性,高达70 mu m位移,特别是脑的不同区域如何应对机械负荷。从微压痕测量获得的力松弛数据适合线性和准线性粘弹性模型,以确定PON,皮质,髓质胶囊,小脑和丘脑的时间和频域粘弹性响应。还确定了每个区域的阻尼比。每个区域被发现对所施加的位移具有独特的机械响应,分别具有最大和最小的力响应的PON和Thalamus。所有大脑区域似乎具有最佳频率,用于耗散1至10Hz之间的能量。

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