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A coupled biomechanical-Smoothed Particle Hydrodynamics model for predicting the loading on the body during elite platform diving

机译:耦合的生物力学-平滑粒子流体动力学模型,用于预测精英跳台潜水期间人体的负荷

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摘要

Platform diving injuries are common, especially in the arms, neck and back, and appear to arise from cumulative damage from multiple overload events as well as singular cases of acute loading. Experimental measures of forces on the body are impractical so instead computational simulation is used to estimate this loading. A coupled Biomechanical-Smoothed Particle Hydrodynamics (B-SPH) model for diver and water is developed and applied to a reverse pike dive performed by an elite athlete. The body surface is represented by a mesh that deforms in response to measured skeleton kinematics acquired from multi-camera video. Calculations of the fluid forces on the body and the transmission of torque through the upper body joints are made. Loading on the body segments and joints is found to be closely related to the dynamic behaviour of the body and water. The sensitivity of the results of the model to variations in water entry pitch angle (EPA) is explored. Simulation results suggest that altering the timing of contact between the water and different body segments changes the loading and potentially the injury risk of the dive. The simulation framework presented shows promise as a tool for coaches and sports scientists to evaluate the performance, strength requirements and safety of diving technique.
机译:平台跳水受伤是常见的,尤其是在手臂,颈部和背部,并且似乎是由于多次超载事件以及单例急性负荷而造成的累积损坏而引起的。对身体上的力进行实验测量是不切实际的,因此使用计算模拟来估算此载荷。开发了一种针对潜水员和水的耦合生物力学-平滑粒子流体动力学(B-SPH)模型,并将其应用于精英运动员进行的反向派克潜水。身体表面由网格表示,该网格响应于从多摄像机视频获取的测量骨骼运动学而变形。计算了作用在车身上的流体力以及通过上车身接头的扭矩传递。发现身体各部分和关节的负荷与身体和水的动态行为密切相关。探索了模型结果对进水俯仰角(EPA)变化的敏感性。仿真结果表明,改变水与不同身体部位之间的接触时间会改变潜水负荷,并潜在地损害潜水的伤害风险。提出的模拟框架显示了作为教练和体育科学家评估潜水技术的性能,强度要求和安全性的工具的希望。

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