西安交通大学体育中心,西安,710049
网络首发:2018-05-10,
纸质出版:2018
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张军 1, 何旺骁 2, 金亮 3, 等. 评估有无负荷及不同步态下踝关节受力的简化动力学模型[J]. 西安交通大学学报, 2018,52(5):162.
A Simple Dynamic Model for Assessing the Forces on Ankle Joint under Different Loads and Different Gaits[J]. 2018, 52(5): 162.
张军 1, 何旺骁 2, 金亮 3, 等. 评估有无负荷及不同步态下踝关节受力的简化动力学模型[J]. 西安交通大学学报, 2018,52(5):162. DOI: 10.7652/xjtuxb201805023.
A Simple Dynamic Model for Assessing the Forces on Ankle Joint under Different Loads and Different Gaits[J]. 2018, 52(5): 162. DOI: 10.7652/xjtuxb201805023.
为了评价不同情况下的踝关节受力
以满足下肢保护器具以及鞋类的研发需求
建立了一个简化的下肢动力学模型:用二维刚性杆模型模拟下肢
踝关节和髋关节被简化为铰链连接
肌肉作用力分别由小腿两端的未知作用力表示
并根据测得的身体各部分重力和足底压力
利用力矩平衡方程来确定关节力矩。针对该模型建立了相应的动力学方程
结合高速摄像机和力平台获得的数据
并使用动作分析系统(APAS)对数据进行动态处理
便捷地得到了较高精度的踝关节受力数据。利用该动力学模型可以评估踝关节的受力情况
评价不同步态(如行走、跑步和踏步等)以及有、无负重时踝关节受力的差别
还可对穿着不同鞋类(跑鞋、登山鞋)和裸足时的踝关节受力进行对比分析。此项研究可应用于下肢保护器具、临床康复器具和鞋类的研发中对踝关节受力的评价。
To evaluate the forces on the ankle joint in different situations so as to meet the development requirements of lower limb protection appliances and footwear
a simple lower limb dynamic model is established. The lower limb is simulated by the two-dimensional rigid rod model
in which the ankle joint and the hip joint are simplified as hinge connections
and the muscle forces are expressed by unknown forces at both ends of the calf. Using the measured plantar pressure
the joint torque is determined based on the equilibrium equation of torques. For the dynamic model
the corresponding kinetic equation is derived. Accurate ankle joint force data are obtained through high-speed photography and force platform
and the dynamic data is processed by the action analysis system(APAS). The kinetic model can be used to assess the forces on the ankle joint
and evaluate the force difference among different gaits(such as walking
running and stepping)and between the conditions with and without load. Moreover
the model can be applied to force analysis of ankle joint with wearing different footwear(e.g. running shoes and hiking shoes)or bare feet
and is expected to be applicable to the evaluation of ankle joint force in development of clinical rehabilitation apparatus
lower limb protection appliances
and footwear.
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仲继泽,谢志强,沈渡,等.基于空间分布弹性模量的快速动网格方法[J].2018,52(2):136-139.[doi:10.7652/xjtuxb 201802021]
张胜伦,裴世源,徐华,等.考虑瞬态冲击和弹性变形的滑动轴承特性与动力学响应[J].2018,52(1):100-106.[doi:10.7652/xjtuxb201801015]
申建广,陶涛,梅雪松,等.一种数控滚齿机工作台动态特性建模方法及实验分析[J].2017,51(12):1-7.[doi:10.7652/xjtuxb201712001]
杨芳,陈渭,李培.接触力模型对含间隙铰接副多体系统分析的影响[J].2017,51(11):106-117.[doi:10.7652/xjtuxb2017 11015]
尹贵,张小栋,陈江城,等.下肢康复机器人按需辅助自适应控制方法[J].2017,51(10):39-46.[doi:10.7652/xjtuxb 201710007]
妥吉英,邓兆祥,张河山,等.新型扭转准零刚度的振动角度传感系统[J].2017,51(8):90-95.[doi:10.7652/xjtuxb2017 08015]
李文嘉,王安麟,曹岩,等.面向变矩器设计性能的平面流模型选用方法[J].2017,51(7):78-83.[doi:10.7652/xjtuxb 201707012]
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