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A portable instrumentation system to evaluate lower extremity athletic performance and injury risk.

机译:一种便携式仪器系统,用于评估下肢的运动表现和受伤风险。

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摘要

There is considerable interest in understanding the physical factors that affect an athlete's ability to perform at the highest level without sustaining an injury. Current tests to assess an athlete's ability to perform the movements required in a given sport or evaluate risk for injury are fairly simple, based mainly on anecdotal evidence, and do not discriminate among athletes' current abilities to perform given movements (as determined from literature and correspondence with athletic trainers, physical therapists, and coaches). Including quantitative biomechanical tests in these athlete evaluations would allow variables believed to influence performance and injury risk to be quantified, tracked over time, and their actual affects on performance and injury risk determined. Such information is needed to develop science-based injury prevention guidelines. Currently, injury prevention guidelines are rather limited because little information is available regarding basic injury mechanisms and the state of the musculoskeletal structures prior to injury. The purpose of this study was to develop a portable instrumentation system that can record biomechanical quantities believed to affect lower extremity athletic performance and injury risk. To this author's knowledge, no such portable system currently exists. The system was designed for in-the-field testing to increase athlete accessibility and to allow the quantities of interest to be tracked over time, thus providing a database that can be used to test various theories regarding factors affecting performance and overuse injury mechanisms.;A set of biomechanical quantities deemed most relevant to lower extremity athletic performance and injury risk was selected from careful inspection of clinical and research literature, and discussion with athletic trainers and coaches. The instrumentation system consists of standard biomechanical components necessary to collect the selected quantities. Tape measures and goniometers are used to determine basic anthropometric measurements (height, weight, leg length, foot arch height, and Q-angle). A manual goniometer is used to quantify ankle, knee and hip flexibility/range of motion (ROM). Force transducers and a customized limb testing fixture are used to quantify absolute isometric strengths and strength ratios for the hamstrings, quadriceps, gastrocnemius/soleus and tibialis anterior. A single camera video system is used to record sagittal plane ankle, knee and hip kinematics while the athlete performs prescribed movements. A Bertec force plate is used to measure ground reaction forces during the prescribed movements. Electromyography (EMG) data are collected to quantify activation timing and magnitude of the previously mentioned muscles. Video, force plate, and EMG data are synchronized. The synchronized force plate and video data are utilized in an inverse dynamics analysis to determine the net forces and moments acting at the knee and ankle throughout the movement. The net forces and moments can be used in a lumped parameter model and distribution analysis to estimate forces in individual structures. This information can then be used to identify movement strategies that can reduce structure loads. A custom reaction timing test involving a visual and audio cue and EMG is used to quantify reaction time.;The instrumentation system met all portability design criteria, allowing for timely data collection at outdoor locations easily accessible to athletes. The system was also successful in collecting the selected quantities that have been proposed to affect lower extremity athletic performance and injury risk. While some video and force components sacrificed a small amount of accuracy or precision for portability, overall accuracy and precision of the system allowed for meaningful biomechanical analysis.;A multifactorial analysis of the collected quantities combined with performance and injury incidence reports provided data needed to determine the relationship between these quantities, performance and injury risk. Interactions of quantities were investigated to provide a more thorough description of performance and injury risk. For example, low levels of knee flexion combined with large ground reaction forces during jump stops and running impacts can reveal movement mechanics that may be damaging to an athlete's anterior cruciate ligament. Subtle modifications to the athlete's mechanics may improve performance and reduce injury risk. The portable data acquisition system provides an opportunity to obtain the data necessary to test various theories regarding performance and non-contact, overuse injury mechanisms. Data tracked over time for specific populations may reveal quantity thresholds required to achieve a particular performance level or to avoid injury for specific tasks. Ultimately, systems such as this will provide the data needed to establish science-based guidelines for screening athletes for performance capabilities/limitations and injury risk and thus serve as a valuable tool for the coach, trainer, and athlete.
机译:人们非常了解理解影响运动员在不受伤的情况下发挥最高水平的能力的身体因素。当前的评估运动员完成一项特定运动所需动作的能力或评估受伤风险的测试相当简单,主要是基于轶事证据,并且不能区分运动员当前进行某项动作的能力(根据文献和与运动教练,理疗师和教练的联系)。在这些运动员评估中包括定量的生物力学测试,可以量化,追踪随时间变化而被认为影响绩效和伤害风险的变量,并确定其对绩效和伤害风险的实际影响。需要这些信息来制定基于科学的伤害预防指南。当前,伤害预防指南是相当有限的,因为关于基本伤害机制和伤害前肌肉骨骼结构状态的信息很少。这项研究的目的是开发一种便携式仪器系统,该系统可以记录据信会影响下肢运动表现和受伤风险的生物力学量。据作者所知,目前尚不存在这种便携式系统。该系统被设计用于现场测试,以增加运动员的可及性,并允许随着时间的推移跟踪感兴趣的数量,从而提供了一个数据库,可用于测试影响成绩和过度使用伤害机制的各种理论。从临床和研究文献的仔细检查以及与运动教练和教练的讨论中选择了一组与下肢运动表现和受伤风险最相关的生物力学量。仪器系统由收集选定数量所必需的标准生物力学组件组成。卷尺和测角仪用于确定基本的人体测量(高度,体重,腿长,足弓高度和Q角)。手动测角仪用于量化脚踝,膝盖和臀部的柔韧性/运动范围(ROM)。力传感器和定制的肢体测试夹具用于量化quant绳肌,股四头肌,腓肠肌/比目鱼肌和胫骨前肌的绝对等距强度和强度比。当运动员进行规定的动作时,使用单个摄像机视频系统记录矢状面的踝,膝和髋运动学。 Bertec测力板用于在规定的运动过程中测量地面反作用力。收集肌电图(EMG)数据以量化激活时间和前面提到的肌肉的大小。视频,测力板和EMG数据同步。在逆动力学分析中利用同步的力板和视频数据来确定整个运动过程中作用在膝盖和脚踝处的净力和力矩。净力和力矩可用于集总参数模型和分布分析中,以估计单个结构中的力。然后,可以使用此信息来确定可以减少结构载荷的运动策略。定制的反应时间测试包括视觉和听觉提示以及EMG,用于量化反应时间。仪器系统符合所有便携性设计标准,可以在运动员容易接近的室外位置及时收集数据。该系统还成功地收集了已提出的影响下肢运动表现和受伤风险的选定量。尽管某些视频和力组件在便携性上牺牲了少量的精度或精确度,但系统的整体精度和精确度允许进行有意义的生物力学分析。;对收集到的数量进行多因素分析,并结合性能和伤害发生报告提供确定所需的数据这些数量,性能和伤害风险之间的关系。对数量的相互作用进行了研究,以提供对性能和伤害风险的更全面描述。例如,低水平的膝关节屈曲结合跳跃停止和奔跑撞击期间的大地面反作用力,可以揭示可能损害运动员前交叉韧带的运动机制。对运动员的力学进行细微的修改可以改善运动表现并降低受伤风险。便携式数据采集系统提供了获取必要数据的机会,以测试有关性​​能和非接触式,过度使用伤害机制的各种理论。随时间推移跟踪特定人群的数据可能会揭示达到特定性能水平或避免伤害特定任务所需的数量阈值。最终这样的系统将提供必要的数据,以建立基于科学的准则来对运动员的表现能力/局限性和受伤风险进行筛查,从而成为教练,教练和运动员的宝贵工具。

著录项

  • 作者

    Whittaker, Eric Charles.;

  • 作者单位

    University of California, Davis.;

  • 授予单位 University of California, Davis.;
  • 学科 Engineering Biomedical.;Health Sciences Recreation.
  • 学位 M.S.
  • 年度 2009
  • 页码 132 p.
  • 总页数 132
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物医学工程;预防医学、卫生学;
  • 关键词

  • 入库时间 2022-08-17 11:37:36

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