Integrated assessment of the neck during whiplash-like perturbations
Integrated assessment of the neck during whiplash-like perturbations
批准号:
217170-2007
负责人:
Dickey, James
金额:
$0.03万
依托单位国家:
加拿大
项目类别:
Discovery Grants Program - Individual
财政年份:
2008
资助国家:
加拿大
项目状态:
已结题
起止时间:
2008-01-01 至 2009-12-31
中文摘要
鞭击伤是由汽车碰撞中头部和胸部的加速造成的,在曲棍球等运动中也是如此。尽管鞭鞭伤一般不会危及生命,但它们很常见,费用很高,可能会产生重大的长期后果;在美国,与鞭鞭伤有关的经济成本,包括医疗、残疾、病假和工作生产率损失,估计每年高达39亿美元,在加拿大,根据人口计算,类似的比例也是如此。这项拟议的研究将我正在进行的生物力学关节形态和功能的研究扩展到颈椎。拟议的研究包括基于实验室的研究,使用解剖学标本来研究头部和颈部对鞭子样扰动的反应。这项研究将通过使用机器人控制标本的运动的生物力学测试来确定在鞭打扰动过程中单个脊柱韧带内的载荷。有必要使用解剖学标本,因为使用活人进行这种水平的分析是不可能的。然而,这种测试方法不能评估肌肉的贡献。因此,我们将进行人体志愿者研究,以评估颈部肌肉在鞭子样扰动中的作用。扰动将通过机器人平台的运动来控制,类似于碰碰车相撞。这两个研究领域将有助于确定颈部韧带和肌肉如何承受鞭打负荷。这些信息将被组装成一个框架(模型),以便能够在更严重的汽车碰撞中分析颈部韧带和肌肉内的载荷,并将被应用于帮助开发新的方法,以提高汽车安全性和降低发生扭伤的风险。
英文摘要
Whiplash injuries are caused by accelerations of the head and thorax in automobile collisions, and also in sports such as hockey. Although whiplash injuries are generally not life threatening, they are common, expensive and can have significant long-term consequences; the economic cost related to whiplash injury, including medical care, disability, sick leave, and lost work productivity, has been estimated to be as high as $3.9 billion annually in the United States, and a similar proportion in Canada based on population. The proposed research extends my ongoing investigations of biomechanical joint form and function to the cervical spine. The proposed studies involve laboratory-based studies of head and neck response to whiplash-like perturbations using anatomical specimens. This research will determine the loads within individual spinal ligaments throughout the whiplash perturbation via biomechanical testing using a robot to control the motion of the specimen. It is necessary to use anatomical specimens since it is impossible to perform this level of analysis using living people. However, this testing approach can not assess the contribution of muscles. Accordingly we will perform human volunteer studies to evaluate the role of the neck muscles during whiplash-like perturbations. The perturbations will be controlled through motion of a robotic platform, and are similar to a bumper car collision. Together these two research areas will help determine how whiplash loads are borne by the neck ligaments and muscles. This information will be assembed into a framework (model) to permit analysis of loads within the neck ligaments and muscles during more severe automobile collisions, and will be applied to help develop new approaches for improving automobile safety and decreasing the risk of developing whiplash.
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