首页> 外文期刊>Journal of the mechanical behavior of biomedical materials >Deformation partitioning provides insight into elastic, plastic, and viscous contributions to bone material behavior.
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Deformation partitioning provides insight into elastic, plastic, and viscous contributions to bone material behavior.

机译:变形分区可以深入了解弹性,塑性和粘性对骨骼材料行为的影响。

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The relative contributions of elastic, plastic, and viscous material behavior are poorly described by the separate extraction and analysis of the plane strain modulus, E('), the contact hardness, H(c) (a hybrid parameter encompassing both elastic and plastic behavior), and various viscoelastic material constants. A multiple element mechanical model enables the partitioning of a single indentation response into its fundamental elastic, plastic, and viscous deformation components. The objective of this study was to apply deformation partitioning to explore the role of hydration, tissue type, and degree of mineralization in bone and calcified cartilage. Wet, ethanol-dehydrated, and PMMA-embedded equine cortical bone samples and PMMA-embedded human femoral head tissues were analyzed for contributions of elastic, plastic and viscous deformation to the overall nanoindentation response at each site. While the alteration of hydration state had little effect on any measure of deformation, unembedded tissues demonstrated significantly greater measures of resistance to plastic deformation than PMMA-embedded tissues. The PMMA appeared to mechanically stabilize the tissues and prevent extensive permanent deformation within the bone material. Increasing mineral volume fraction correlated with positive changes in E('), H(c), and resistance to plastic deformation, H; however, the partitioned deformation components were generally unaffected by mineralization. The contribution of viscous deformation was minimal and may only play a significant role in poorly mineralized tissues. Deformation partitioning enables a detailed interpretation of the elastic, plastic, and viscous contributions to the nanomechanical behavior of mineralized tissues that is not possible when examining modulus and contact hardness alone. Varying experimental or biological factors, such as hydration or mineralization level, enables the understanding of potential mechanisms for specific mechanical behavior patterns that would otherwise be hidden within a more complex set of material property parameters.
机译:通过分别提取和分析平面应变模量E('),接触硬度H(c)(包含弹性和塑性行为的混合参数),无法很好地描述弹性,塑性和粘性材料行为的相对贡献。 ),以及各种粘弹性材料常数。多元素力学模型可以将单个压痕响应划分为其基本的弹性,塑性和粘性变形分量。这项研究的目的是应用变形分区来探讨骨骼和钙化软骨中水化,组织类型和矿化程度的作用。分析了湿的,乙醇脱水的,PMMA嵌入的马皮质骨样品和PMMA嵌入的人类股骨头组织在每个部位的整体纳米压痕响应的弹性,塑性和粘性变形的贡献。虽然水合状态的改变对任何变形量几乎没有影响,但未包埋的组织显示出比PMMA包埋的组织显着更大的抗塑性变形的措施。 PMMA似乎可以机械地稳定组织,并防止骨骼材料内的广泛永久变形。矿物体积分数的增加与E('),H(c)的正变化以及抗塑性变形H有关;但是,分区变形分量通常不受矿化的影响。粘性变形的贡献很小,可能仅在矿化度差的组织中起重要作用。变形分区可以详细解释弹性,塑性和粘性对矿化组织的纳米力学行为的影响,而仅检查模量和接触硬度是不可能的。变化的实验或生物学因素(例如水合或矿化水平)使您能够了解特定机械行为模式的潜在机制,否则这些机制可能隐藏在一组更复杂的材料特性参数中。

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