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首页> 外文期刊>Journal of the mechanical behavior of biomedical materials >The effects of loading-direction and strain-rate on the mechanical behaviors of human frontal skull bone
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The effects of loading-direction and strain-rate on the mechanical behaviors of human frontal skull bone

机译:负载方向和应变率对人额颅骨力学行为的影响

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摘要

Most fatal human skull injuries occur under impact loading conditions, such as car collisions, where the strain rates fall in the range of intermediate (1/s-10(2)/s) and high (10(2)/s-10(3)/s) rates. Therefore, knowledge of the mechanical behaviors of human cranial bone at higher strain rates, i.e., intermediate and high strain rates, may provide insight into the prevention of skull injuries and help the design of efficient head protection systems. In the present study, the compressive mechanical behaviors of human frontal skull bone along and perpendicular to its through-the-thickness direction were experimentally characterized at quasi-static (0.01/s), intermediate (30/s) and high (625/s) strain rates in this study. A total number of 75 specimens prepared from three male donors with ages of 70-74 were separated into three groups: quasi-static (N = 23), intermediate (N = 23), and high (N = 29) strain rates. Experiments at quasi-static and intermediate strain rates were performed using a hydraulically driven materials testing system (MTS), while a Kolsky compression bar was used to load the skull bone specimen at high strain rates. X-ray computed tomography was performed to obtain the structural parameters and visualize the microstructures of the skull bone. The in-situ failure processes of the specimens under high-rate loading were documented by a high-speed camera. The human skull exhibited a loading-direction dependent mechanical behavior, as higher ultimate strength and elastic modulus were found in the direction perpendicular to the thickness when compared with those along the thickness direction, exhibiting an increasing ratio as high as 2 and 3 for strength and modulus, respectively. High-speed images revealed that the specimens loaded along the thickness direction generally failed due to the crushing in diploe (the trabecular bone tissue) whereas separation of the entire architecture was observed as the main failure mode when compressed in the perpendicular direction. The effect of loading rate was also evident: the skull specimens were increasingly brittle as strain rate increased from quasi-static to high rate for both the loading directions. The elastic modulus increased by a factor of 4 in radial direction and it increased by a factor of 2.5 in the tangential direction across the quasi-static, intermediate and high strain rates. Significant differences were also found in ultimate strength and work to failure as loading rate increased from quasi-static to high rates. The results also suggested that the strength in the radial direction was mainly depended on the diploe porosity while the diploe layer ratio played the predominant role in tangential direction.
机译:大多数致命的人颅骨损伤发生在冲击载荷条件下,如汽车碰撞,其中应变率下降在中间体(1 / s-10(2)/ s)和高(10(2)/ s-10( 3)/ s)率。因此,在较高的应变率下,人颅骨的力学行为知识,即中间和高应变率,可以深入了解防止头骨损伤并帮助设计高效的头保护系统。在本研究中,人体额头颅骨沿着和垂直于其贯穿厚度方向的压缩力学行为在正静态(0.01 / s),中间体(30 / s)和高(625 / s中)进行实验表征)在本研究中的应变率。将来自三个雄性供体制备的75个标本分为三组:准静态(n = 23),中间体(n = 23),高(n = 29)株。使用液压驱动的材料测试系统(MTS)进行准静态和中间应变率的实验,而Kolsky压缩棒用于在高应变率下装载颅骨骨样品。进行X射线计算断层扫描以获得结构参数并可视化颅骨的微观结构。通过高速摄像机记录了高速负载下标本的原位破坏过程。人的头骨表现出负载方向依赖性机械行为,随着沿厚度方向的厚度的垂直于厚度的方向上发现了更高的极限强度和弹性模量,表现出高达2和3的增加的比例,并且模量分别。高速图像显示沿厚度方向装载的样本通常由于碎片(小梁骨组织)中的破碎而导致的,而当在垂直方向上压缩时,将整个架构的分离被观察为主失效模式。负载率的效果也明显:颅骨标本越来越脆,因为应变速率从加载方向的准静态增加到高速率。弹性模量在径向方向上增加了4倍,并且在准静态,中间和高应变速率下切向方向上增加了2.5因子。由于加载率从准静态增加到高利率,因此也发现了显着的差异,并且失效失败。结果还提出了径向的强度主要取决于代孔孔隙率,而二级层比在切向方向上发挥了主要作用。

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