Nordquist Josh, Hull M L
Department of Mechanical Engineering, University of California at Davis, One Shields Avenue, Davis, CA 95616, USA.
J Biomech Eng. 2007 Apr;129(2):231-9. doi: 10.1115/1.2486107.
Joint injuries during sporting activities might be reduced by understanding the extent of the dynamic motion of joints prone to injury during maneuvers performed in the field. Because instrumented spatial linkages (ISLs) have been widely used to measure joint motion, it would be useful to extend the functionality of an ISL to measure joint motion in a dynamic environment. The objectives of the work reported by this paper were to (i) design and construct an ISL that will measure dynamic joint motion in a field environment, (ii) calibrate the ISL and quantify its static measurement error, (iii) quantify dynamic measurement error due to external acceleration, and (iv) measure ankle joint complex rotation during snowboarding maneuvers performed on a snow slope. An "elbow-type" ISL was designed to measure ankle joint complex rotation throughout its range (+/-30 deg for flexion/extension, +/-15 deg for internal/external rotation, and +/-15 deg for inversion/eversion). The ISL was calibrated with a custom six degree-of-freedom calibration device generally useful for calibrating ISLs, and static measurement errors of the ISL also were evaluated. Root-mean-squared errors (RMSEs) were 0.59 deg for orientation (1.7% full scale) and 1.00 mm for position (1.7% full scale). A custom dynamic fixture allowed external accelerations (5 g, 0-50 Hz) to be applied to the ISL in each of three linear directions. Maximum measurement deviations due to external acceleration were 0.05 deg in orientation and 0.10 mm in position, which were negligible in comparison to the static errors. The full functionality of the ISL for measuring joint motion in a field environment was demonstrated by measuring rotations of the ankle joint complex during snowboarding maneuvers performed on a snow slope.
通过了解在野外进行的动作中易受伤关节的动态运动程度,或许可以减少体育活动期间的关节损伤。由于仪器化空间连杆机构(ISL)已被广泛用于测量关节运动,因此扩展ISL的功能以在动态环境中测量关节运动将很有用。本文所报告工作的目标是:(i)设计并构建一种能在野外环境中测量关节动态运动的ISL;(ii)校准该ISL并量化其静态测量误差;(iii)量化由外部加速度引起的动态测量误差;(iv)测量在雪坡上进行单板滑雪动作时踝关节复合体的旋转。设计了一种“肘型”ISL,以测量踝关节复合体在其整个范围内的旋转(屈伸为±30度,内旋/外旋为±15度,内翻/外翻为±15度)。使用一种通常可用于校准ISL的定制六自由度校准装置对该ISL进行校准,并评估了ISL的静态测量误差。方向的均方根误差(RMSE)为0.59度(满量程的1.7%),位置的均方根误差为1.00毫米(满量程的1.7%)。一种定制的动态夹具允许在三个线性方向中的每个方向上对ISL施加外部加速度(5g,0 - 50Hz)。由外部加速度引起的最大测量偏差在方向上为0.05度,在位置上为0.10毫米,与静态误差相比可忽略不计。通过测量在雪坡上进行单板滑雪动作时踝关节复合体的旋转,证明了该ISL在野外环境中测量关节运动的全部功能。