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相关概念视频

Kinematic Equations - III01:18

Kinematic Equations - III

8.6K
The first two kinematic equations have time as a variable, but the third kinematic equation is independent of time. This equation expresses final velocity as a function of the acceleration and distance over which it acts. The fourth kinematic equation does not have an acceleration term and provides the final position of the object at time t in terms of the initial and final velocities. This equation is useful when the value of the constant acceleration is unknown.
Using the kinematic equations,...
8.6K
Kinematic Equations - II01:17

Kinematic Equations - II

10.9K
The second kinematic equation expresses the final position of an object in terms of its initial position, the distance traveled with the initial constant velocity, and the distance traveled due to a change in velocity. Similar to the first kinematic equation, this equation is also only valid when the acceleration is constant throughout the motion of an object.
Suppose a car merges into freeway traffic on a 200 m long ramp. If its initial velocity is 10 m/s and it accelerates at 2 m/s2, then the...
10.9K
Kinematic Equations - I01:26

Kinematic Equations - I

12.1K
When an object moves with constant acceleration, the velocity of the object changes at a constant rate throughout the motion. The kinematic equations of motions are derived for such cases where the acceleration of the object is constant. The first kinematic equation gives an insight into the relationship between velocity, acceleration, and time. We can see, for example:
12.1K
Kinematic Equations: Problem Solving01:15

Kinematic Equations: Problem Solving

14.9K
When analyzing one-dimensional motion with constant acceleration, the problem-solving strategy involves identifying the known quantities and choosing the appropriate kinematic equations to solve for the unknowns. Either one or two kinematic equations are needed to solve for the unknowns, depending on the known and unknown quantities. Generally, the number of equations required is the same as the number of unknown quantities in the given example. Two-body pursuit problems always require two...
14.9K
Kinematic Equations for Rotation01:30

Kinematic Equations for Rotation

380
In mechanics, when one observes a rigid body in rotational motion with constant angular acceleration, it is possible to establish equations for its rotational kinematics. This process resembles how linear kinematics are dealt with in simpler motion studies.
For instance, imagine a point A on a rigid body engaged in circular motion. The translational velocity of this particular point can be calculated by taking the time derivatives of the displacement equation, which essentially measures the...
380
Relative Motion Analysis using Rotating Axes01:25

Relative Motion Analysis using Rotating Axes

543
Consider a component AB undergoing a linear motion. Along with a linear motion, point B also rotates around point A. To comprehend this complex movement, position vectors for both points A and B are established using a stationary reference frame.
However, to express the relative position of point B relative to point A, an additional frame of reference, denoted as x'y', is necessary. This additional frame not only translates but also rotates relative to the fixed frame, making it...
543

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相关实验视频

Updated: Sep 16, 2025

An Inertial Measurement Unit Based Method to Estimate Hip and Knee Joint Kinematics in Team Sport Athletes on the Field
06:52

An Inertial Measurement Unit Based Method to Estimate Hip and Knee Joint Kinematics in Team Sport Athletes on the Field

Published on: May 26, 2020

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实时开源动态估计与可穿戴IMU.

Chenquan Xu, Yuanshuo Tan, Zach Strout

    IEEE ... International Conference on Rehabilitation Robotics : [proceedings]
    |July 11, 2025
    PubMed
    概括

    这项研究引入了实时全身运动分析,使用可穿戴惯性测量单元 (IMU) 进行可访问的家庭康复. 该系统准确地捕捉运动,为传统中心提供了可行的替代方案.

    科学领域:

    • 生物医学工程 生物医学工程
    • 康复技术 康复技术 康复技术
    • 人类运动分析分析

    背景情况:

    • 人口老龄化增加了对医疗保健服务的需求.
    • 传统的康复中心面临成本,不适和时间等障碍.
    • 家庭康复需要有效的,实时的动力学监测.

    研究的目的:

    • 开发和验证使用可穿戴惯性测量单元 (IMU) 的实时全身运动分析系统.
    • 评估开发系统对各种物理活动的准确性和延迟性.
    • 为先进的家庭康复和运动评估提供基础.

    主要方法:

    • 使用了12个可穿戴的惯性测量单元 (IMU) 进行全身运动数据采集.
    • 在各种活动 (步行,跑步,等) 期间,以20Hz进行实时运动估计. ) 的情况.
    • 根据光学运动捕捉和离线计算对基于IMU的验证估计.

    主要成果:

    • 实现了高精度,平均根平均平方误差 (RMSE) 为5.4°在行走和7.2°整体.
    • 与离线100 Hz计算相比,RMSE的平均值为1.0度.
    • 报告了从数据采集到动态输出的平均系统延迟时间为44.1毫秒.

    更多相关视频

    Measuring the Kinematics of Daily Living Movements with Motion Capture Systems in Virtual Reality
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    Quantified Assessment of Infant's Gross Motor Abilities Using a Multisensor Wearable
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    Quantified Assessment of Infant's Gross Motor Abilities Using a Multisensor Wearable

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    相关实验视频

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    An Inertial Measurement Unit Based Method to Estimate Hip and Knee Joint Kinematics in Team Sport Athletes on the Field
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    An Inertial Measurement Unit Based Method to Estimate Hip and Knee Joint Kinematics in Team Sport Athletes on the Field

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    Measuring the Kinematics of Daily Living Movements with Motion Capture Systems in Virtual Reality
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    Measuring the Kinematics of Daily Living Movements with Motion Capture Systems in Virtual Reality

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    Quantified Assessment of Infant's Gross Motor Abilities Using a Multisensor Wearable
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    Quantified Assessment of Infant's Gross Motor Abilities Using a Multisensor Wearable

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    结论:

    • 开发的基于IMU的系统提供准确的实时全身动力学分析,适合家庭康复.
    • 这项技术可以实现快速评估和实时生物反,潜在地改善患者的结果和合规性.
    • 它有望在骨科和神经疾病中彻底改变康复.