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Compressive loads on the lumbar spine during lifting: 4D WATBAK versus inverse dynamics calculations

机译:提升过程中腰椎的压缩载荷:4D WaTBaK与逆动力学计算

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摘要

Numerous two-and three-dimensional biomechanical models exist for the purpose of assessing the stresses placed on the lumbar spine during the performance of a manual material handling task. More recently, researchers have utilised their knowledge to develop specific computer-based models that can be applied in an occupational setting; an example of which is 4D WATBAK. The model used by 4D WATBAK bases its predications on static calculations and it is assumed that these static loads reasonably depict the actual dynamic loads acting on the lumbar spine. Consequently, it was the purpose of this research to assess the agreement between the static predictions made by 4D WATBAK and those from a comparable dynamic model. Six individuals were asked to perform a series of five lifting tasks, which ranged from lifting 2.5 kg to 22.5 kg and were designed to replicate the lifting component of the Work Capacity Assessment Test used within Australia. A single perpendicularly placed video camera was used to film each performance in the sagittal plane. The resultant two-dimensional kinematic data were input into the 4D WATBAK software and a dynamic biomechanical model to quantify the compression forces acting at the L4/L5 intervertebral joint. Results of this study indicated that as the mass of the load increased from 2.5 kg to 22.5 kg, the static compression forces calculated by 4D WATBAK became increasingly less than those calculated using the dynamic model (mean difference ranged from 22.0% for 2.5 kg to 42.9% for 22.5 kg). This study suggested that, for research purposes, a validated three-dimensional dynamic model should be employed when a task becomes complex and when a more accurate indication of spinal compression or shear force is required. Additionally, although it is clear that 4D WATBAK is particularly suited to industrial applications, it is suggested that the limitations of such modelling tools be carefully considered when task-risk and employee safety are concerned.
机译:存在许多二维和三维生物力学模型,用于评估在执行手动材料处理任务期间施加在腰椎上的压力。最近,研究人员利用他们的知识来开发可以在职业环境中应用的基于计算机的特定模型。例如4D WATBAK。 4D WATBAK使用的模型的预测基于静态计算,并且假定这些静态负荷合理地描述了作用在腰椎上的实际动态负荷。因此,本研究的目的是评估4D WATBAK进行的静态预测与可比较的动态模型的静态预测之间的一致性。要求六个人执行一系列五项提升任务,其范围从提升2.5公斤到22.5公斤不等,其目的是复制澳大利亚使用的工作能力评估测试的提升部分。使用单个垂直放置的摄像机在矢状平面上拍摄每个表演。所得的二维运动学数据输入到4D WATBAK软件和动态生物力学模型中,以量化作用于L4 / L5椎间关节的压力。研究结果表明,随着负载质量从2.5千克增加到22.5千克,由4D WATBAK计算的静态压缩力变得越来越小于使用动态模型计算的静态压缩力(平均差范围从2.5千克的22.0%到42.9% 22.5公斤%)。这项研究表明,出于研究目的,当任务变得复杂并且需要更准确地指示脊柱压缩或剪切力时,应使用经过验证的三维动力学模型。此外,尽管很明显4D WATBAK特别适合工业应用,但建议在考虑任务风险和员工安全时,应仔细考虑此类建模工具的局限性。

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    Cole, M.; Grimshaw, P.;

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  • 年度 2005
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