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CRAFT Simulator: A Robotic Device for the Identification of Human Foot Structure and Function

CRAFT Simulator: A Robotic Device for the Identification of Human Foot Structure and Function
CRAFT Simulator:用于识别人体足部结构和功能的机器人装置
批准号:
RTI-2022-00022
负责人:
Asmussen, Michael
金额:
$9.1万
依托单位:
依托单位国家:
加拿大
项目类别:
Research Tools and Instruments
财政年份:
2021
资助国家:
加拿大
项目状态:
已结题
起止时间:
2021-01-01 至 2022-12-31

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中文摘要
翻译
脚和脚踝是人类在各种环境中完成运动任务所必需的重要结构。脚和脚踝有26块骨头,33个关节,100多条肌腱、肌肉和韧带,本质上是复杂的结构,仍然是人类身体中生物力学了解最少的部分之一。在运动过程中,脚部和脚踝的骨骼承受着巨大的负荷。然而,由于复杂性如此之大,脚和脚踝具有适应、变形和感知环境的能力,从而使人类能够毫不费力地在各种地形上移动。脚和脚踝如何能够雄辩地执行运动任务尚不清楚,这种理解是必不可少的,因为脚和脚踝的任何功能障碍都会严重影响运动。NSERC RTI的目的是申请资金,用于建造一种机器人设备,该设备可以记录骨骼运动和负载,并控制脚和脚踝的内在和外部肌肉-该设备将被命名为身体机器人脚踝-脚踏(工艺)模拟器。目前最先进的机器人步态模拟器操作外部肌肉来产生身体脚踝的粗大运动,同时记录地面反作用力。但最近的证据表明,内在肌肉对于调节活体中的足中和足弓行为也是至关重要的,但目前还没有办法用现有的步态模拟器来激活这些肌肉。此外,目前还没有研究彻底描述在许多日常活动中,如站立、行走或跑步时,内在肌肉、肌腱和韧带网络是如何在足部分布力量的。因此,我们建议将工艺模拟器作为一种新的步态模拟设备,它将控制多达12个脚部和脚踝的外部和内部肌肉的力/刚度。该设备将与使用两种不同设计的先进成像技术测量三维骨骼运动相结合。在设计1中,Stewart平台将通过安装测力板向人类脚部施力,光学运动捕获设备将记录具有受控地面反作用力的骨骼运动。在设计2中,该设备将进行改进,以与动态计算机断层扫描(CT)、负重CT和双荧光透视等成像技术兼容,以通过机器人控制脚的内在和外部肌肉来捕捉更全面的脚部和脚踝的骨骼运动和负荷。这种机器人装置将用于促进脚在负重、全身稳定性和运动中的作用的实验和模型识别。该机器人设备将为HQP提供丰富的培训环境,允许学术界和工业界在鞋类、假肢、矫形设备和可穿戴传感器方面进行新的研究应用和工业产品开发。
英文摘要
The foot and ankle are critical structures that are essential to human locomotor tasks across a wide range of environments. With 26 bones, 33 joints, and over a hundred tendons, muscles, and ligaments, the foot and ankle are inherently complex structures and remain one of the least biomechanically understood parts of the human body. During locomotion, bones of the foot and ankle experience tremendous loads. However, with so much complexity, the foot and ankle have the ability to adapt, deform, and sense the environment it is interacting with to allow humans to move effortlessly across a variety of terrains. How the foot and ankle are able to perform locomotor tasks eloquently is unknown and this understanding is essential because any dysfunction in the foot and ankle severely compromises locomotion. The purpose of this NSERC RTI is to request funds for the building of a robotic device that can record bone motion and loading as well as control both the intrinsic and extrinsic muscles of the foot and ankle - this device will be named the Cadaveric, Robotic Ankle-Foot Treading (CRAFT) simulator. The current state-of-the-art in robotic gait simulators manipulates the extrinsic muscles to produce gross motions of the cadaveric foot-ankle, while recording ground reaction forces. But recent evidence shows that the intrinsic muscles are also critically important for modulating mid-foot and arch behaviors in vivo, yet there is no way to actuate these muscles with existing gait simulators. Further to this point, there is currently no research that has thoroughly characterized how the intrinsic muscles, tendons, and ligamentous network distribute forces throughout the foot during many day-to-day activities such as standing, walking, or running. We therefore propose the CRAFT Simulator as a new gait simulation device that will control the force/stiffness of up to a dozen extrinsic and intrinsic muscles of the foot and ankle. This device will be coupled with measurements of three-dimensional bone motions with advanced imaging technologies using two different designs. In Design 1, a Stewart Platform will apply forces to the human foot with a mounted force plate and optical motion capture device will record bone motion with controlled ground reaction forces. In Design 2, the device will be modified to be compatible with imaging technologies such as dynamic computed tomography (CT), weight-bearing CT, and dual-fluoroscopy to capture more comprehensive bone motion and loading of the foot and ankle with the robotic control of intrinsic and extrinsic muscles of the foot. This robotic device will be used to facilitate experiments and model identification of the foot's role in load bearing, whole body stability, and locomotion. The robotic device will provide a rich training environment for HQP allowing new research applications and industrial product development of footwear, prosthetic feet, orthotic devices, and wearable sensors in both academia and industry.
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Neuromechanics and Human Physiology
  • 批准号:
    CRC-2019-00276
  • 项目类别:
    Canada Research Chairs
  • 资助金额:
    $8.74万
  • 财政年份:
    2022
  • 负责人:
    Asmussen, Michael
  • 依托单位:
Foot-Ankle Complex: Mechanisms Underpinning its Stability and Control
  • 批准号:
    RGPIN-2021-02461
  • 项目类别:
    Discovery Grants Program - Individual
  • 资助金额:
    $2.04万
  • 财政年份:
    2022
  • 负责人:
    Asmussen, Michael
  • 依托单位:
Foot-Ankle Complex: Mechanisms Underpinning its Stability and Control
  • 批准号:
    RGPIN-2021-02461
  • 项目类别:
    Discovery Grants Program - Individual
  • 资助金额:
    $2.04万
  • 财政年份:
    2021
  • 负责人:
    Asmussen, Michael
  • 依托单位:
Neuromechanics And Human Physiology
  • 批准号:
    CRC-2019-00276
  • 项目类别:
    Canada Research Chairs
  • 资助金额:
    $8.74万
  • 财政年份:
    2021
  • 负责人:
    Asmussen, Michael
  • 依托单位:
海外基金