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相关概念视频

Knee Joint01:23

Knee Joint

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The knee joint is the most complicated joint in the body. It consists of three articulations– two tibiofemoral and one patellofemoral. As is characteristic of synovial joints, the knee joint has a thin articular capsule that partially surrounds this joint cavity. Additionally, several ligaments, muscles, and cartilaginous structures support the movement of the knee.
A total of seven ligaments support the knee joint. The patellar ligament, which is also attached to the quadriceps femoris...
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Kinematic Equations: Problem Solving01:15

Kinematic Equations: Problem Solving

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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...
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Kinematic Equations - I01:26

Kinematic Equations - I

10.7K
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:
10.7K
Kinematic Equations for Rotation01:30

Kinematic Equations for Rotation

346
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...
346
Kinematic Equations - III01:18

Kinematic Equations - III

7.7K
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,...
7.7K
Kinematic Equations - II01:17

Kinematic Equations - II

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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...
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相关实验视频

Updated: Jul 19, 2025

Subject-specific Musculoskeletal Model for Studying Bone Strain During Dynamic Motion
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Subject-specific Musculoskeletal Model for Studying Bone Strain During Dynamic Motion

Published on: April 11, 2018

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基于动态几何学的个性化膝关节假肢建模的自动方法框架.

Pengxi Li1, Hui Liu1, Bocheng Zhang2

  • 1International School of Information Science & Engineering (DUT-RUISE), Dalian University of Technology, China.

Current medical imaging
|August 17, 2023
PubMed
概括

本研究介绍了一种自动化框架,用于使用形状统计和动态几何学来创建个性化的膝关节假肢. 这种方法改进了标准假肢,通过将植入物定制为个体患者的解剖学和运动,提高了膝盖关节整形术的总体结果.

关键词:
膝盖运动几何学是以患者为导向的外科手术.个性化的假肢建模整体膝关节关节整形手术

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Oscillation and Reaction Board Techniques for Estimating Inertial Properties of a Below-knee Prosthesis
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Oscillation and Reaction Board Techniques for Estimating Inertial Properties of a Below-knee Prosthesis

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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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相关实验视频

Last Updated: Jul 19, 2025

Subject-specific Musculoskeletal Model for Studying Bone Strain During Dynamic Motion
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Subject-specific Musculoskeletal Model for Studying Bone Strain During Dynamic Motion

Published on: April 11, 2018

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Oscillation and Reaction Board Techniques for Estimating Inertial Properties of a Below-knee Prosthesis
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Oscillation and Reaction Board Techniques for Estimating Inertial Properties of a Below-knee Prosthesis

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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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科学领域:

  • 生物医学工程 生物医学工程
  • 整形外科手术 整形外科手术
  • 计算解剖学的计算解剖学

背景情况:

  • 膝关节整形术 (TKA) 的结果受到膝关节假肢设计的显著影响.
  • 个性化假肢比标准设计具有优势,但其创建方法尚不发达.
  • 现有的TKA假肢往往无法完全解决个体患者的生物力学问题.

研究的目的:

  • 介绍一个自动化框架,用于建模个性化膝关节假肢.
  • 为了利用形状统计和运动几何学来为患者特定的植入物设计.
  • 通过创建定制的假肢来提高全膝关节整形术的疗效.

主要方法:

  • 使用无监督学习建立了一个平均健康的膝盖模型.
  • 为模型大小调整和动力学模拟计算了外科手术跨柱轴 (sTEA).
  • 在患者和平均模型上模拟切除操作,以生成初始假肢设计.
  • 基于模拟膝盖运动分析的精细假肢模型.

主要成果:

  • 在调整大小的健康膝盖模型和患者本地膝盖之间,平均最大误差为<2毫米.
  • 在模拟和实际膝盖运动之间达到平均最大误差<3毫米.
  • 证明了该框架能够生成针对患者的膝关节假肢模型的能力.

结论:

  • 开发的框架为创建个性化膝关节假肢提供了一种有效的方法.
  • 这种方法解决了在TKA中标准假肢的局限性.
  • 自动化建模系统增强了改善TKA功能结果的潜力.