Design and characterize of kirigami-inspired springs and the application in vertebrae exoskeleton for adolescent idiopathic scoliosis brace treatment

IF 4.7 2区 工程技术 Q1 ENGINEERING, MECHANICAL Frontiers of Mechanical Engineering Pub Date : 2023-03-22 DOI:10.3389/fmech.2023.1152930
Q. Lei, Jing Shu, Junming Wang, H. Cheung, J. Cheung, Wing Fai Wong, Sanders Cheuk Yin Lau, J. Yip, Raymond K. Tong
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引用次数: 1

Abstract

Adolescent idiopathic scoliosis is a common condition that affects children between the age of 10 and young adulthood. Rigid brace treatment is an effective treatment to control the progression of spinal deformity. However, it limits mobility and causes discomfort, which leads to low treatment compliance. In this study, we developed and characterized a kirigami-inspired CT/MRI compatible spring that could be employed to modify our previously designed exoskeleton hinge vertebrae to provide immediate in-brace correction, good wear comfort, and one that does not inhibit mobility simultaneously. Additive manufacturing has drawn significant interest in academic and industrial terms due to its ability to produce geometrically complex structures. The structural design and dimension of the proposed 3D printed kirigami-inspired springs were optimized with the finite element method (FEM). The carbon-fiber-reinforced nylon material (PA-CF) was selected as the material of the kirigami-inspired spring with the balance of printing easiness and performance of the material. The stiffness of designed kirigami-inspired springs varied between 1.20 and 42.01 N/mm. A case series study with three scoliosis patients has been conducted to investigate the immediate in-brace effect on reducing the spinal curvature and asymmetry of the body contours using radiographic examination. The experiment results show that there are 4.6%–50.5% improvements in Cobb angle for different sections of spines. The X-ray images proved that our kirigami-inspired springs would not block views for Cobb angle measurements.
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基里伽米弹簧的设计、特点及在青少年特发性脊柱侧凸支架治疗中的应用
青少年特发性脊柱侧弯是一种常见的疾病,影响10岁至成年期的儿童。刚性支架治疗是控制脊柱畸形进展的有效治疗方法。然而,它限制了行动能力并导致不适,从而导致治疗依从性低。在这项研究中,我们开发并表征了一种受基里加米启发的CT/MRI兼容弹簧,该弹簧可用于修改我们之前设计的外骨骼铰链椎骨,以提供即时的支架内矫正、良好的佩戴舒适性,并且不会同时抑制活动性。增材制造因其生产几何复杂结构的能力而引起了学术界和工业界的极大兴趣。采用有限元法对所提出的基于基里加米的3D打印弹簧的结构设计和尺寸进行了优化。选择碳纤维增强尼龙材料(PA-CF)作为基里加米风格弹簧的材料,兼顾了材料的印刷容易性和性能。设计的基里加米风格弹簧的刚度在1.20和42.01 N/mm之间变化。对三名脊柱侧弯患者进行了一项病例系列研究,以研究支架内放疗在减少脊柱弯曲和身体轮廓不对称方面的即时效果。实验结果表明,不同节段脊柱的Cobb角有4.6%-50.5%的改善。X射线图像证明,我们受基里加米启发的弹簧不会阻挡Cobb角测量的视野。
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来源期刊
Frontiers of Mechanical Engineering
Frontiers of Mechanical Engineering Engineering-Mechanical Engineering
CiteScore
7.20
自引率
6.70%
发文量
731
期刊介绍: Frontiers of Mechanical Engineering is an international peer-reviewed academic journal sponsored by the Ministry of Education of China. The journal seeks to provide a forum for a broad blend of high-quality academic papers in order to promote rapid communication and exchange between researchers, scientists, and engineers in the field of mechanical engineering. The journal publishes original research articles, review articles and feature articles.
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