Detailed development and validation of a finite element model for studying the entire spinal vibration behavior within a seated human body

传递率(结构动力学) 全身振动 振动 有限元法 流离失所(心理学) 结构工程 情态动词 模态分析 弯曲 变形(气象学) 颈椎 刚体 声学 工程类 地质学 材料科学 物理 医学 外科 海洋学 经典力学 高分子化学 隔振 心理治疗师 心理学
作者
Ruichun Dong,Zhuangqi Lu,Xiang Cheng,Yi Wang,Huanbao Liu,Zonggao Mu
出处
标识
DOI:10.1177/09544062241253504
摘要

Studying the vibration behavior of the entire spine can guide the design of seat comfort and vibration safety. However, due to simplification of traditional biomechanical models, very few studies have analyzed in detail the vibration behavior characteristics of the entire spine inside a seated human body. Therefore, this study aimed to provide guidance and reference for spinal modeling and biomechanical research in ergonomics. A developed finite element model of three-dimensional seated human body was validated and adjusted based on anatomical data of human spine in detail. Static analysis, modal analysis and random response analysis (under vertical excitation between 0 and 20 Hz at 1 m/s 2 r.m.s.) were conducted. The range of motion, modal frequencies and the tri-axial transmissibility of the developed models matched well with experimental results. In the vertical resonance mode, the entire spine contained both vertical deformation (60% of the total) and vertical displacement (40%), in addition, the cervical spine, especially the lumbar spine, also contained bending deformation which could alleviate the impact, but led to complex alternating stresses, increasing the risks of the spinal injuries under vertical whole-body vibration. From the bottom to the top of the spine, the frequency distribution of vertical transmissibility became steeper, the peak value increased, and the number of peaks decreased. This study provided new insights into the vibration behavior and frequency response of the entire spine inside a seated human body for improving seat comfort and vibration safety.

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