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Human hip joint center analysis for biomechanical design of a hip joint exoskeleton

机译:人体髋关节中心分析用于髋关节外骨骼的生物力学设计

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We propose a new method for the customized design of hip exoskeletons based on the optimization of the human-machine physical interface to improve user comfort. The approach is based on mechanisms designed to follow the natural trajectories of the human hip as the flexion angle varies during motion. The motions of the hip joint center with variation of the flexion angle were measured and the resulting trajectory was modeled. An exoskeleton mechanism capable to follow the hip center’s movement was designed to cover the full motion ranges of flexion and abduction angles, and was adopted in a lower extremity assistive exoskeleton. The resulting design can reduce human-machine interaction forces by 24.1% and 76.0% during hip flexion and abduction, respectively, leading to a more ergonomic and comfortable-to-wear exoskeleton system. The human-exoskeleton model was analyzed to further validate the decrease of the hip joint internal force during hip joint flexion or abduction by applying the resulting design.
机译:我们提出了一种基于人机物理界面优化的髋关节外骨骼定制设计的新方法,以提高用户的舒适度。该方法基于旨在随着运动过程中屈曲角度变化而遵循人髋关节自然轨迹的机制。测量髋关节中心随着屈曲角度变化的运动,并对所形成的轨迹进行建模。能够跟随髋部中心运动的外骨骼机制被设计为覆盖屈曲和外展角的整个运动范围,并在下肢辅助外骨骼中采用。最终的设计可以在髋部屈曲和外展过程中分别减少24.1%和76.0%的人机交互力,从而实现更符合人体工程学且佩戴舒适的外骨骼系统。通过应用所得设计,分析了人骨骼模型,以进一步验证髋关节屈曲或外展过程中髋关节内力的降低。

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