...
首页> 外文期刊>Journal of biomechanical engineering. >Combined in Vivolin Vitro Method to Study Anteriomedial Bundle Strain in the Anterior Cruciate Ligament Using a Dynamic Knee Simulator
【24h】

Combined in Vivolin Vitro Method to Study Anteriomedial Bundle Strain in the Anterior Cruciate Ligament Using a Dynamic Knee Simulator

机译:结合体内体外方法研究使用动态膝关节模拟器在前十字韧带中的前内侧束应变

获取原文
获取原文并翻译 | 示例
   

获取外文期刊封面封底 >>

       

摘要

The mechanism of noncontact anterior cruciate ligament (ACL) injury is not well understood. It is partly because previous studies have been unable to relate dynamic knee muscle forces during sports activities such as landing from a jump to the strain in the ACL. We present a combined in vivo/in vitro method to relate the muscle group forces to ACL strain during jump-landing using a newly developed dynamic knee simulator. A dynamic knee simulator system was designed and developed to study the sagittal plane biomechanics of the knee. The simulator is computer controlled and uses six powerful electromechanical actuators to move a cadaver knee in the sagittal plane and to apply dynamic muscle forces at the insertion sites of the quadriceps, hamstring, and gas-trocnemius muscle groups and the net moment at the hip joint. In order to demonstrate the capability of the simulator to simulate dynamic sports activities on cadaver knees, motion capture of a live subject landing from a jump on a force plate was performed. The kinematics and ground reaction force data obtained from the motion capture were input into a computer based musculoskeletal lower extremity model. From the model, the force-time profile of each muscle group across the knee during the movement was extracted, along with the motion profiles of the hip and ankle joints. This data was then programmed into the dynamic knee simulator system. Jump-landing was simulated on a cadaver knee successfully. Resulting strain in the ACL was measured using a differential variable reluctance transducer (DVRT). Our results show that the simulator has the capability to accurately simulate the dynamic sagittal plane motion and the dynamic muscle forces during jump-landing. The simulator has high repeatability. The ACL strain values agreed with the values reported in the literature. This combined in vivo/in vitro approach using this dynamic knee simulator system can be effectively used to study the relationship between sagittal plane muscle forces and ACL strain during dynamic activities.
机译:非接触式前交叉韧带(ACL)损伤的机制尚不清楚。部分原因是以前的研究未能将运动膝关节运动中的动态膝部肌肉力量关联起来,例如在ACL中从跳跃着陆到劳损。我们提出了一种体内/体外结合的方法,以使用新开发的动态膝盖模拟器,在跳跃着陆过程中将肌肉群力与ACL应变相关联。设计并开发了动态膝盖模拟器系统,以研究膝盖的矢状面生物力学。该模拟器由计算机控制,并使用六个功能强大的机电执行器在尸体矢状面上移动尸体膝盖,并在股四头肌,绳肌和腓肠肌腓肠肌群的插入部位以及髋关节的净力矩上施加动态肌肉力。为了演示模拟器模拟尸体膝盖上的动态体育活动的能力,对从受力板上跳跃着地的活着的受试者进行了运动捕捉。从运动捕捉获得的运动学和地面反作用力数据被输入到基于计算机的肌肉骨骼下肢模型中。从模型中,提取出运动过程中跨膝盖的每个肌肉群的受力时间曲线,以及髋关节和踝关节的运动曲线。然后将这些数据编程到动态膝盖模拟器系统中。跳跃着陆成功地模拟了尸体膝盖。使用差动可变磁阻传感器(DVRT)测量了ACL中产生的应变。我们的结果表明,模拟器具有准确模拟跳跃着陆期间的动态矢状面运动和动态肌肉力的能力。该模拟器具有很高的重复性。 ACL应变值与文献报道的值一致。使用此动态膝关节模拟器系统的体内/体外组合方法可以有效地用于研究动态活动过程中矢状面肌力与ACL应变之间的关系。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号