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Experimental study of time response of bending deformation of bone cantilevers in an electric field

机译:电场骨悬臂弯曲变形时间响应的实验研究

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摘要

Bone is a complex composite material with hierarchical structures and anisotropic mechanical properties. Bone also processes electromechanical properties, such as piezoelectricity and streaming potentials, which termed as stress generated potentials. Furthermore, the electrostrictive effect and flexoelectric effect can also affect electromechanical properties of the bone. In the present work, time responses of bending deflections of bone cantilever in an external electric field are measured experimentally to investigate bone's electromechanical behavior. It is found that, when subjected to a square waveform electric field, a bone cantilever specimen begins to bend and its deflection increases gradually to a peak value. Then, the deflection begins to decrease gradually during the period of constant voltage. To analyze the reasons of the bending response of bone, additional experiments were performed. Experimental results obtained show the following two features. The first one is that the electric polarization, induced in bone by an electric field, is due to the Maxwell-Wagner polarization mechanism that the polarization rate is relatively slow, which leads to the electric field force acted on a bone specimen increase gradually and then its bending deflections increase gradually. The second one is that the flexoelectric polarization effect that resists the electric force to decrease and then leads to the bending deflection of a bone cantilever decrease gradually. It is concluded that the first aspect refers to the organic collagens decreasing the electric polarization rate of the bone, and the second one to the inorganic component influencing the bone's polarization intensity.
机译:骨是一种复合复合材料,具有分层结构和各向异性机械性能。骨骼还处理机电性质,例如压电和流媒体电位,其被称为应力产生的电位。此外,电致伸缩效应和柔性电效应也可以影响骨的机电性质。在本作工作中,实验地测量外部电场中骨悬臂弯曲偏转的时间响应,以研究骨骼的机电行为。发现,当经过方波形电场时,骨悬臂样本开始弯曲,并且其偏转逐渐增加到峰值。然后,在恒定电压期间偏转开始逐渐减小。为了分析骨弯曲响应的原因,进行了额外的实验。获得的实验结果显示出以下两个特征。第一个是通过电场诱导在骨中引起的电极,是由于偏振速率相对较慢的麦克斯韦 - 壁偏振机构,这导致电场力逐渐增加在骨标本上的电场力增加其弯曲偏转逐渐增加。第二个是抵抗电力降低的柔性偏振效果,然后导致骨悬臂的弯曲偏转逐渐降低。结论是,第一方面是指有机胶原蛋白降低骨的电偏振率,以及影响骨极化强度的无机成分。

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