Swanstrom Michael D, Zarucco Laura, Hubbard Mont, Stover Susan M, Hawkins David A
Biomedical Engineering Graduate Group, University of California-Davis, One Shields Avenue, Davis, CA 95616, USA.
J Biomech Eng. 2005 Apr;127(2):318-28. doi: 10.1115/1.1865196.
Because thoroughbred racehorses have a high incidence of forelimb musculoskeletal injuries, a model was desired to screen potential risk factors for injuries. This paper describes the development of a musculoskeletal model of the thoroughbred forelimb and a dynamic simulation of the motion of the distal segments during the stance phase of high-speed (18 m/s) gallop. The musculoskeletal model is comprised of segment, joint, muscle-tendon, and ligament information. The dynamic simulation incorporates a proximal forward-driving force, a distal ground reaction force model, muscle activations, and initial positions and velocities. A simulation of the gallop after transection of an accessory ligament demonstrated increased soft tissue strains in the remaining support structures of the distal forelimb. These data were consistent with those previously reported from in vitro experimental data and supported usefulness of the model for the study of distal forelimb soft tissue mechanics during the stance phase of the gallop.
由于纯种赛马前肢肌肉骨骼损伤的发生率很高,因此需要一个模型来筛选损伤的潜在风险因素。本文描述了纯种马前肢肌肉骨骼模型的开发以及在高速(18米/秒)疾驰站立阶段远端节段运动的动态模拟。肌肉骨骼模型由节段、关节、肌腱和韧带信息组成。动态模拟包括近端向前驱动力、远端地面反作用力模型、肌肉激活以及初始位置和速度。副韧带横断后疾驰的模拟表明,前肢远端其余支撑结构中的软组织应变增加。这些数据与先前体外实验数据报告的数据一致,并支持该模型在研究疾驰站立阶段前肢远端软组织力学方面的实用性。