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Determination of Human Vertebral Force Response to +Gz Impact From Exterior Accelerations

机译:从外部加速度确定人椎体响应对+ GZ撞击的影响

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Modelling and simulation of complex biomechanical systems can be developed to provide insight into the loading of otherwise immeasurable conditions. Ejection from an aircraft is a highly dynamic event with a risk of injury during the entire sequence. During one of the phases of ejection, spinal compression injury is a definite possibility and test manikins are used to asses this risk. However, care must be taken before accepting the relationship between the measured load in a manikin and the assumed load in a human. Human impact tests are often conducted to asses the biodynamics at a sub-injury level. Correlating these human biodynamics with manikin dynamics, can provide this relationship. To complete this correlation, modelling and simulation can be used to augment the available human test data so that the parameters of interest can be calculated. To this end, a rigid body dynamics model was constructed to represent a vertical impact for both humans and manikins. This model was then validated through human impact test data and a method was developed to demonstrate how to build this correlative relationship. This method is a very robust and direct way to calculate the internal lumbar load for human testing.
机译:可以开发复杂生物力学系统的建模和仿真,以了解含量不可估量的条件的载入。来自飞机的喷射是一种高度动态的事件,在整个序列期间具有损伤的风险。在喷射的阶段之一期间,脊柱压缩损伤是一个明确的可能性,并且测试人体模型用于抑制这种风险。但是,在接受人体模型中测量的载荷与人类中的假定负载之间的关系之前,必须注意。人体撞击试验通常进行以在次伤水平下抑制生物动力学。将这些人体生物动力学与Manikin Dynamics相关联,可以提供这种关系。为了完成这种相关性,建模和仿真可用于增强可用的人类测试数据,以便计算感兴趣的参数。为此,构建了一种刚性的身体动力学模型,以代表人类和人体模型的垂直影响。然后通过人类影响测试数据验证该模型,并开发了一种方法来证明如何构建这种相关关系。这种方法是一种非常坚固且直接的方法来计算用于人体测试的内部腰部负荷。

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