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跳跃着陆时节段加速度和冲击力与膝关节角度的相关性。

The correlation of segment accelerations and impact forces with knee angle in jump landing.

作者信息

Elvin Niell G, Elvin Alex A, Arnoczky Steven P, Torry Michael R

机构信息

Department of Civil and Environmental Engineering, Michigan State University, East Lansing, MI, USA.

出版信息

J Appl Biomech. 2007 Aug;23(3):203-12. doi: 10.1123/jab.23.3.203.

Abstract

Impact forces and shock deceleration during jumping and running have been associated with various knee injury etiologies. This study investigates the influence of jump height and knee contact angle on peak ground reaction force and segment axial accelerations. Ground reaction force, segment axial acceleration, and knee angles were measured for 6 male subjects during vertical jumping. A simple spring-mass model is used to predict the landing stiffness at impact as a function of (1) jump height, (2) peak impact force, (3) peak tibial axial acceleration, (4) peak thigh axial acceleration, and (5) peak trunk axial acceleration. Using a nonlinear least square fit, a strong (r = 0.86) and significant (p < or = 0.05) correlation was found between knee contact angle and stiffness calculated using the peak impact force and jump height. The same model also showed that the correlation was strong (r = 0.81) and significant (p < or = 0.05) between knee contact angle and stiffness calculated from the peak trunk axial accelerations. The correlation was weaker for the peak thigh (r = 0.71) and tibial (r = 0.45) axial accelerations. Using the peak force but neglecting jump height in the model, produces significantly worse correlation (r = 0.58). It was concluded that knee contact angle significantly influences both peak ground reaction forces and segment accelerations. However, owing to the nonlinear relationship, peak forces and segment accelerations change more rapidly at smaller knee flexion angles (i.e., close to full extension) than at greater knee flexion angles.

摘要

跳跃和跑步过程中的冲击力和冲击减速与多种膝关节损伤病因相关。本研究调查了跳跃高度和膝关节接触角度对地面峰值反作用力和节段轴向加速度的影响。在垂直跳跃过程中,对6名男性受试者测量了地面反作用力、节段轴向加速度和膝关节角度。使用一个简单的弹簧 - 质量模型来预测着地时的冲击刚度,该模型是关于以下因素的函数:(1)跳跃高度,(2)峰值冲击力,(3)胫骨峰值轴向加速度,(4)大腿峰值轴向加速度,以及(5)躯干峰值轴向加速度。通过非线性最小二乘法拟合发现,使用峰值冲击力和跳跃高度计算得到的膝关节接触角度与刚度之间存在强相关性(r = 0.86)且具有显著性(p ≤ 0.05)。同一模型还表明,从躯干峰值轴向加速度计算得到的膝关节接触角度与刚度之间也存在强相关性(r = 0.81)且具有显著性(p ≤ 0.05)。对于大腿峰值(r = 0.71)和胫骨峰值(r = 0.45)轴向加速度,相关性较弱。在模型中使用峰值力但忽略跳跃高度,会导致相关性显著变差(r = 0.58)。研究得出结论,膝关节接触角度对地面峰值反作用力和节段加速度均有显著影响。然而,由于非线性关系,在较小的膝关节屈曲角度(即接近完全伸展时),峰值力和节段加速度的变化比在较大膝关节屈曲角度时更快。

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