简化人体腰椎(L3/L4)材料,为未来的建模创造一个基本结构。

Q3 Biochemistry, Genetics and Molecular Biology Australasian Physical & Engineering Sciences in Medicine Pub Date : 2019-09-01 Epub Date: 2019-06-10 DOI:10.1007/s13246-019-00768-z
Neda Salsabili, Joaquín Santiago López, María Isabel Prieto Barrio
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引用次数: 5

摘要

人类腰椎结合了自然界中最好的关节,因为它具有最佳的静态和动态行为,可以抵抗内部和外部负载。在这个关节的基础上发展一个基本的结构,需要在保持人类腰椎的机械和解剖行为所使用的材料方面进行简化。在本研究中,基于CT扫描数据作为椎骨几何的基础,开发了人类腰椎(L3/L4)两个运动节段的有限元(FE),验证了两个运动节段另一部分的几何特性,以及从验证资源中获得的材料和载荷的组合。然后,通过省略年轮基质纤维、将年轮基质的物质表示到核、将年轮基质的物质也表示到终板、省略椎骨小梁部分四个连续步骤进行简化。本研究旨在提出通过简化上述4个步骤的材料来发育人体腰椎基本结构的方法,分析这4个步骤的内外反应的生物力学效应,并验证有限元方法得到的数据。本研究中引入的经过验证的简化方法可以用于未来的研究,在工业设计、建筑结构或关节等其他领域制作基于人体腰椎的植入物、假体和建模,从而使模型更容易、更便宜、更有效。
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Simplifying the human lumbar spine (L3/L4) material in order to create an elemental structure for the future modeling.

The human lumbar spine incorporates the best joints in nature due to its optimal static and dynamic behavior against the internal and external loads. Developing an elemental structure based on this joint requires simplification in terms of the materials employed by keeping the mechanical and anatomical behaviors of the human lumbar spine. In the present study, the finite element (FE) of two motion segments of the human lumbar spine (L3/L4) was developed based on the CT scan data as the base for vertebrae geometry, verified geometry properties for another part of two motion segments, and combination of materials and loads obtained from the validated resources. Then, simplification occurred in four continuous steps such as omitting the annual fibers of annual matrix, representing the material of the annual matrix to the nucleus, demonstrating the material of annual matrix to the endplates too, and omitting the trabecular part of vertebrae. The present study aimed to propose the method for developing the basic structure of the human lumbar spine by simplifying its materials in the above-mentioned steps, analyzing the biomechanical effects of these four steps in terms of their internal and external responses, and validating the data obtained from the FE method. The validated simplified way introduced in this study can be used for future research by making implants, prosthesis, and modeling based on the human lumbar spine in other fields such as industrial design, building structures, or joints, which results in making the model easier, cheaper, and more effective.

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来源期刊
CiteScore
2.00
自引率
0.00%
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0
审稿时长
6-12 weeks
期刊介绍: Australasian Physical & Engineering Sciences in Medicine (APESM) is a multidisciplinary forum for information and research on the application of physics and engineering to medicine and human physiology. APESM covers a broad range of topics that include but is not limited to: - Medical physics in radiotherapy - Medical physics in diagnostic radiology - Medical physics in nuclear medicine - Mathematical modelling applied to medicine and human biology - Clinical biomedical engineering - Feature extraction, classification of EEG, ECG, EMG, EOG, and other biomedical signals; - Medical imaging - contributions to new and improved methods; - Modelling of physiological systems - Image processing to extract information from images, e.g. fMRI, CT, etc.; - Biomechanics, especially with applications to orthopaedics. - Nanotechnology in medicine APESM offers original reviews, scientific papers, scientific notes, technical papers, educational notes, book reviews and letters to the editor. APESM is the journal of the Australasian College of Physical Scientists and Engineers in Medicine, and also the official journal of the College of Biomedical Engineers, Engineers Australia and the Asia-Oceania Federation of Organizations for Medical Physics.
期刊最新文献
Acknowledgment of Reviewers for Volume 35 Acknowledgment of Reviewers for Volume 34 A comparison between EPSON V700 and EPSON V800 scanners for film dosimetry. Nanodosimetric understanding to the dependence of the relationship between dose-averaged lineal energy on nanoscale and LET on ion species. EPSM 2019, Engineering and Physical Sciences in Medicine : 28-30 October 2019, Perth, Australia.
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