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首页> 外文期刊>IEEE transactions on neural systems and rehabilitation engineering >Modeling Ankle Torque and Stiffness Induced by Functional Electrical Stimulation
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Modeling Ankle Torque and Stiffness Induced by Functional Electrical Stimulation

机译:用功能电刺激建模踝扭矩和刚度

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摘要

Functional electrical stimulation (FES) is commonly used for individuals with neuromuscular impairments to generate muscle contractions. Both joint torque and stiffness play important roles in maintaining stable posture and resisting external disturbance. However, most previous studies only focused on the modulation of joint torque using FES while ignoring the joint stiffness. A model that can simultaneously modulate both ankle torque and stiffness induced by FES was investigated in this study. This model was composed of four subparts including an FES-to-activation model, a musculoskeletal geometry model, a Hill-based muscle-tendon model, and a joint stiffness model. The model was calibrated by the maximum voluntary contraction test of the tibialis anterior (TA) and gastrocnemius medial (GAS) muscles. To validate the model, the estimated torque and stiffness by the model were compared with the measured torque and stiffness induced by FES, respectively. The results showed that the proposed model can estimate torque and stiffness with electrically stimulated TA or/and GAS, which was significantly correlated to the measured torque and stiffness. The proposed model can modulate both joint torque and stiffness induced by FES in the isometric condition, which can be potentially extended to modulate the joint torque and stiffness during FES-assisted walking.
机译:功能性电刺激(FES)通常用于具有神经血型损伤的个体以产生肌肉收缩。联合扭矩和刚度在保持稳定的姿势和抵抗外部干扰方面起着重要作用。然而,最先前的研究仅关注使用FES的关节扭矩的调制,同时忽略关节刚度。在本研究中研究了可以同时调节FES诱导的踝扭矩和刚度的模型。该模型由四个子部分组成,包括FES - 激活模型,肌肉骨骼几何模型,山座肌腱模型和关节刚度模型。该模型由胫骨前(TA)和腓肠肌内侧(气体)肌肉的最大自愿收缩试验校准。为了验证模型,将模型的估计扭矩和刚度分别与FES诱导的测量扭矩和刚度进行比较。结果表明,所提出的模型可以用电刺激的Ta或/和气体估计扭矩和刚度,这与测量的扭矩和刚度显着相关。所提出的模型可以在等距条件下调节由FES引起的关节扭矩和刚度,这可能延伸以在FES辅助行走期间调制关节扭矩和刚度。

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