Ratajczak Monika, Ptak Mariusz, Chybowski Leszek, Gawdzińska Katarzyna, Będziński Romuald
Faculty of Mechanical Engineering, University of Zielona Góra, 65-516 Zielona Góra, Poland.
Faculty of Mechanical Engineering, Wrocław University of Science and Technology, 50-370 Wrocław, Poland.
Materials (Basel). 2019 Jan 15;12(2):271. doi: 10.3390/ma12020271.
The aim of this work was to assess the numerous approaches to structural and material modeling of brain tissue under dynamic loading conditions. The current technological improvements in material modeling have led to various approaches described in the literature. However, the methods used for the determination of the brain's characteristics have not always been stated or clearly defined and material data are even more scattered. Thus, the research described in this paper explicitly underlines directions for the development of numerical brain models. An important element of this research is the development of a numerical model of the brain based on medical imaging methods. This approach allowed the authors to assess the changes in the mechanical and geometrical parameters of brain tissue caused by the impact of mechanical loads. The developed model was verified through comparison with experimental studies on post-mortem human subjects described in the literature, as well as through numerical tests. Based on the current research, the authors identified important aspects of the modeling of brain tissue that influence the assessment of the actual biomechanical response of the brain for dynamic analyses.
这项工作的目的是评估在动态加载条件下对脑组织进行结构和材料建模的多种方法。材料建模方面当前的技术进步催生了文献中描述的各种方法。然而,用于确定大脑特征的方法并非总是有明确阐述或清晰定义,而且材料数据更加分散。因此,本文所述研究明确强调了数值脑模型的发展方向。这项研究的一个重要内容是基于医学成像方法开发大脑的数值模型。这种方法使作者能够评估机械负荷冲击导致的脑组织力学和几何参数变化。通过与文献中描述的对死后人体受试者的实验研究进行比较以及通过数值测试,对所开发的模型进行了验证。基于当前研究,作者确定了脑组织建模中影响动态分析时大脑实际生物力学响应评估的重要方面。