Failure Analysis of Composite Pre-tightened Multi-hierarchy Tooth Joint Based on Suture Structure

IF 4.9 3区 计算机科学 Q1 ENGINEERING, MULTIDISCIPLINARY
Fei Li, Weizhao Chen, Yong Xiao, Linjian Ma, Yifeng Gao
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引用次数: 0

Abstract

The connection efficiency of composite pre-tightened multi-tooth joint is low because of uneven load distribution and single load transmission path. In this paper, based on the principle of bio-tooth (suture) structure, combining soft material with fractal, a composite pre-tightened multi-hierarchy tooth joint is proposed, and the bearing performance and failure process of the joint through experiments and finite element method under tensile load. First, the ultimate bearing capacity, load distribution ratio, and failure process of different hierarchies of teeth joints are studied through experiments. Then, the progressive damage models of different hierarchies of tooth joints are established, and experiments verify the validity of the finite element model. Finally, the effects of soft material and increasing tooth hierarchy on the failure process and bearing capacity of composite pre-tightened tooth joints are analyzed by the finite element method. The following conclusions can be drawn: (1) The embedding of soft materials changed the failure process of the joint. Increasing the tooth hierarchy can give the joint more load transfer paths, but the failure process of the joint is complicated. (2) Embedding soft materials and increasing the tooth hierarchy simultaneously can effectively improve the bearing capacity of composite pre-tightened tooth joints, which is 87.8% higher than that of traditional three-tooth joints.

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来源期刊
Journal of Bionic Engineering
Journal of Bionic Engineering 工程技术-材料科学:生物材料
CiteScore
7.10
自引率
10.00%
发文量
162
审稿时长
10.0 months
期刊介绍: The Journal of Bionic Engineering (JBE) is a peer-reviewed journal that publishes original research papers and reviews that apply the knowledge learned from nature and biological systems to solve concrete engineering problems. The topics that JBE covers include but are not limited to: Mechanisms, kinematical mechanics and control of animal locomotion, development of mobile robots with walking (running and crawling), swimming or flying abilities inspired by animal locomotion. Structures, morphologies, composition and physical properties of natural and biomaterials; fabrication of new materials mimicking the properties and functions of natural and biomaterials. Biomedical materials, artificial organs and tissue engineering for medical applications; rehabilitation equipment and devices. Development of bioinspired computation methods and artificial intelligence for engineering applications.
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