首页> 外文会议>ASME International Mechanical Engineering Congress and Exposition >A STUDY OF WEIGHT-BASED COMPENSATION FOR ASYMMETRIC UPPER LIMB GROWTH SECONDARY TO PRE-PUBERTAL OPERATIVE HUMERAL EPIPHYSEAL PLATE DAMAGE
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A STUDY OF WEIGHT-BASED COMPENSATION FOR ASYMMETRIC UPPER LIMB GROWTH SECONDARY TO PRE-PUBERTAL OPERATIVE HUMERAL EPIPHYSEAL PLATE DAMAGE

机译:基于体积的上肢增长的基于体重补偿,二次普及特族手术肱骨肱骨骨骺板损伤

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Injuries to the growth plate of the humerus can occur in children during motor vehicle accidents. These injuries can then lead to growth abnormalities and musculoskeletal issues as the child develops. This research was conducted to analyze and develop a solution to musculoskeletal strain caused by uneven weight distribution inherent in a case of upper limb length discrepancy. The issue is an imbalance due to the growth of a shorter humerus in the individual's right upper limb (RUL) as the result of a prior surgery on the individual's right humeral growth plate. This shortened RUL weighs less than the left upper limb (LUL). This effectively lowers the mass moment of inertia of the RUL, thus lowering the balancing moment on the torso. When the individual sprints during physical exercise, there is an imbalance in rotational momentum that is created between the two arms. This imbalance in momentum requires that the opposing lower limb of the shorter RUL, the individual's left lower limb, drives harder, leading to eventual failure in the hip flexor. In order to solve this biomechanical problem, kinematic equations were developed to model the motion of a sprinter. These equations model the motions of the hands, torso, and legs. In particular, the model defines the influence of the imbalance of the upper limbs' motion on the lower limbs' motion, which results in a forward rotation of the torso while sprinting. To balance the rotational momentum of the upper limbs, a counter-acting weight was attached to the wrist of the RUL, minimizing the effects on the lower limb musculature. Hence, the left lower limb would not have to overcompensate for the shorter RUL's lack of momentum. The equations were then reconfigured to account for the counter-weight, and the effect was observed and analyzed. A simulation predicted an angle of tilt of up to 5.7° in the sagittal plane from the vertical. The force required to rotate the body to the normal position was 18N. This force was determined to cause a twist of 10.0° in the transverse plane from the frontal plane. While this study was conducted on an individual with a shortened right upper limb secondary to a surgical procedure, study results can readily be generalized to individuals with shortening of either upper limb secondary to other traumatic events, such as motor vehicle accidents.
机译:在机动车事故中,儿童可能发生对肱骨的生长板的伤害。然后,这些伤害可以导致儿童发展的生长异常和肌肉骨骼问题。进行该研究以分析和发展由上肢长度差异的情况下固有的不均匀重量分布引起的肌肉骨骼应变的溶液。由于个人正确的肱骨生长板上的先前手术,所以这个问题是由于个体右上肢(RUL)的较短肱骨的增长导致的不平衡。这缩短的RUL重量比左上肢(LUL)少。这有效地降低了ruL的惯性的质量力矩,从而降低了躯干上的平衡力矩。当在体育锻炼期间的单独冲刺时,在两个臂之间产生的旋转动量存在不平衡。这种失衡的动量要求较短的rul的相反的下肢,个体左下肢,较难的驱动,导致臀部屈肌的最终失败。为了解决这种生物力学问题,开发了运动方程以模拟短跑运动员的运动。这些方程式模拟了手,躯干和腿的运动。特别地,该模型限定了上肢运动对下肢运动的不平衡的影响,这导致躯干在冲刺时的正向旋转。为了平衡上肢的旋转动力,将反作用重量连接到RUL的手腕上,最大限度地减少了对下肢肌肉结构的影响。因此,左下肢不必过度补偿,因为较短的rul缺乏势头。然后重新配置等式以考虑反重,观察和分析效果。模拟预测从垂直的矢状平面中的倾斜角度高达5.7°。将体旋转到正常位置所需的力为18N。确定该力从前平面导致横向平面中的10.0°的扭曲。虽然该研究在具有缩短的右上肢的个体上进行了缩短的右上肢,但研究结果可以容易地推广到具有缩短其他创伤事件的上肢的个体,例如机动车事故。

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