Modeling of viscoelastic deformation and rate-dependent fracture damage in rat bone

IF 4 2区 工程技术 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY International Journal of Damage Mechanics Pub Date : 2024-05-01 DOI:10.1177/10567895241245716
Santosh Reddy Kommidi, Yong-Rak Kim, Do-Gyoon Kim
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Abstract

Bone is a complex hierarchical structural material whose organ-level response is highly influenced by its constitutive behavior at the microstructural level, which can dictate the inelastic nonlinear deformation and fracture within the organ. In the current study, a combined experimental-computational approach was sought to first obtain the local constitutive properties. Later, a multiscale modeling framework utilizing a novel rate-dependent nonlinear viscoelastic cohesive zone (NVCZ) model was used to explore the fracture behavior at the microstructure of the bone and its influence on the global scale (organ-level) response. Toward this end, nanoindentation testing was conducted within the cross-section of a rat femur bone specimen. An inverse optimization process was used to identify the isotropic linear viscoelastic (LVE) properties of cortical bone by integrating the test results with a finite element model simulation of the nanoindentation testing. Model results using different numbers of spring-dashpot units in the generalized Maxwell model showed that four spring-dashpot units are sufficient to capture the LVE behavior, while solely LVE constitutive relation is limited to fully characterize the rat femur. The LVE constitutive properties were then used along with the rate-dependent NVCZ fracture within the representative volume element (RVE), which was two-way coupled to the global scale bone. A parametric study was conducted by varying the fracture properties of the NVCZ model. The model demonstrated the capability and features to represent inelastic deformation and nonlinear fracture that are linked between length scales. This further implies that the inelastic fracture model and the two-way coupled modeling can elucidate the complex multiscale deformation and fracture of bone, while model validation and further advancements with test results remain a follow-up study and are currently in progress.
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大鼠骨骼粘弹性变形和随速率变化的断裂损伤建模
骨骼是一种复杂的分层结构材料,其器官层面的反应受微结构层面的构成行为影响很大,微结构层面的构成行为可决定器官内部的非弹性非线性变形和断裂。在当前的研究中,首先寻求一种实验与计算相结合的方法来获得局部构成特性。随后,利用新型速率依赖性非线性粘弹性内聚区(NVCZ)模型的多尺度建模框架,探索骨微观结构的断裂行为及其对整体(器官级)响应的影响。为此,在大鼠股骨试样的横截面上进行了纳米压痕测试。通过将测试结果与纳米压痕测试的有限元模型模拟相结合,使用反向优化过程来确定皮质骨的各向同性线性粘弹性(LVE)特性。在广义麦克斯韦模型中使用不同数量的弹簧-底座单元的模型结果表明,四个弹簧-底座单元足以捕捉到 LVE 行为,而仅有 LVE 构成关系不足以全面描述大鼠股骨的特征。然后,在代表体积元素(RVE)中使用了 LVE 构成特性和随速率变化的 NVCZ 断裂,RVE 与全局尺度骨进行了双向耦合。通过改变 NVCZ 模型的断裂属性进行了参数研究。该模型展示了表现长度尺度间非弹性变形和非线性断裂的能力和特征。这进一步表明,非弹性断裂模型和双向耦合建模可以阐明骨骼复杂的多尺度变形和断裂,而模型验证和测试结果的进一步改进仍是一项后续研究,目前正在进行中。
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来源期刊
International Journal of Damage Mechanics
International Journal of Damage Mechanics 工程技术-材料科学:综合
CiteScore
8.70
自引率
26.20%
发文量
48
审稿时长
5.4 months
期刊介绍: Featuring original, peer-reviewed papers by leading specialists from around the world, the International Journal of Damage Mechanics covers new developments in the science and engineering of fracture and damage mechanics. Devoted to the prompt publication of original papers reporting the results of experimental or theoretical work on any aspect of research in the mechanics of fracture and damage assessment, the journal provides an effective mechanism to disseminate information not only within the research community but also between the reseach laboratory and industrial design department. The journal also promotes and contributes to development of the concept of damage mechanics. This journal is a member of the Committee on Publication Ethics (COPE).
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