Harrison Simon M, Whitton R Chris, Stover Susan M, Symons Jennifer E, Cleary Paul W
Data61, CSIRO, Clayton, VIC, Australia.
Faculty of Veterinary and Agricultural Sciences, University of Melbourne, Melbourne, VIC, Australia.
Front Bioeng Biotechnol. 2022 Feb 21;10:766748. doi: 10.3389/fbioe.2022.766748. eCollection 2022.
Distal limb injuries are common in racing horses and track surface properties have been associated with injury risk. To better understand how track surfaces may contribute to equine limb injury, we developed the first 3D computational model of the equine hoof interacting with a racetrack and simulated interactions with model representations of 1) a dirt surface and 2) an all-weather synthetic track. First, a computational track model using the Smoothed Particle Hydrodynamics (SPH) method with a Drucker-Prager (D-P) elastoplastic material model was developed. It was validated against analytical models and published data and then calibrated using results of a custom track testing device applied to the two racetrack types. Second, a sensitivity analysis was performed to determine which model parameters contribute most significantly to the mechanical response of the track under impact-type loading. Third, the SPH track model was coupled to a biomechanical model of the horse forelimb and applied to hoof-track impact for a horse galloping on each track surface. We found that 1) the SPH track model was well validated and it could be calibrated to accurately represent impact loading of racetrack surfaces at two angles of impact; 2) the amount of harrowing applied to the track had the largest effect on impact loading, followed by elastic modulus and cohesion; 3) the model is able to accurately simulate hoof-ground interaction and enables study of the relationship between track surface parameters and the loading on horses' distal forelimbs.
远端肢体损伤在赛马中很常见,赛道表面特性与受伤风险有关。为了更好地理解赛道表面如何导致马的肢体损伤,我们开发了首个马蹄与赛道相互作用的三维计算模型,并模拟了与以下两种模型的相互作用:1)泥地表面;2)全天候合成赛道。首先,使用光滑粒子流体动力学(SPH)方法和德鲁克-普拉格(D-P)弹塑性材料模型开发了一个计算赛道模型。该模型通过与解析模型和已发表数据进行验证,然后使用应用于两种赛道类型的定制赛道测试装置的结果进行校准。其次,进行了敏感性分析,以确定哪些模型参数对冲击型载荷下赛道的力学响应贡献最大。第三,将SPH赛道模型与马前肢的生物力学模型耦合,并应用于在每个赛道表面飞驰的马蹄与赛道的冲击。我们发现:1)SPH赛道模型得到了很好的验证,并且可以校准以准确表示在两个冲击角度下赛道表面的冲击载荷;2)对赛道进行耙地的程度对冲击载荷影响最大,其次是弹性模量和内聚力;3)该模型能够准确模拟蹄与地面的相互作用,并能够研究赛道表面参数与马前肢远端载荷之间的关系。