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相关概念视频

Angular Momentum01:21

Angular Momentum

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Angular momentum characterizes an object's rotational motion and is defined as the moment of its linear momentum about a specified point O. When a particle moves along a curved path in the x-y plane, the scalar formulation calculates the magnitude of its angular momentum, utilizing the moment arm (d), representing the perpendicular distance from point O to the line of action of the linear momentum. Despite being scalar in formulation, angular momentum is inherently a vector quantity. Its...
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Angular Velocity and Displacement01:08

Angular Velocity and Displacement

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Uniform circular motion is motion in a circle at a constant speed. Although this is the simplest case of rotational motion, it is very useful for many situations and is used to introduce rotational variables. When a particle is moving in a circle, the coordinate system is fixed and serves as a frame of reference to define the particle’s position. Its position vector from the origin of the circle to the particle sweeps out the angle θ, which increases in the counterclockwise direction...
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Conservation of Angular Momentum01:09

Conservation of Angular Momentum

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A system's total angular momentum remains constant if the net external torque acting on the system is zero. Considering a system that consists of n tiny particles, the angular momentum of any tiny particle may change, but the system's total angular momentum would remain constant. The principle of conservation of angular momentum only considers the net external torque acting on the system. While there are internal forces exerted by different particles within the system that also produce...
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Angular Velocity and Acceleration01:11

Angular Velocity and Acceleration

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We previously discussed angular velocity for uniform circular motion, however not all motion is uniform. Envision an ice skater spinning with their arms outstretched; when they pull their arms inward, their angular velocity increases. Additionally, think about a computer's hard disk slowing to a halt as the angular velocity decreases. The faster the change in angular velocity, the greater the angular acceleration. The instantaneous angular acceleration is defined as the derivative of...
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Principle of Angular Impulse and Momentum01:23

Principle of Angular Impulse and Momentum

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The angular impulse and momentum principle provides insights into how forces applied at a distance from an object's rotational axis influence its angular velocity. It builds upon the crucial relationship between the moment of force and angular momentum. By integrating this equation, substituting the limits for the initial and final times, a comprehensive expression representing the angular impulse and momentum principle is derived.
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Angular Momentum about an Arbitrary Axis01:11

Angular Momentum about an Arbitrary Axis

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Imagine a rigid body with a mass denoted as 'm', which has its center of mass at point G and is rotating around an inertial reference frame. The angular momentum at an arbitrary point P can be calculated by taking the cross product of the position vector and linear momentum vector for each individual mass element.
The velocity of a mass element comprises its translational velocity and the relative velocity instigated by the body's rotation. Substituting the velocity equation into...
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在陆地哺乳动物的姿态相移动过程中,联合角度探险和角度范围的利用:比较的形态功能数据集.

Paul Medina-González1

  • 1Departamento de Kinesiología, Facultad de Ciencias de la Salud, Universidad Católica del Maule, Talca, Chile.

Journal of experimental zoology. Part A, Ecological and integrative physiology
|February 9, 2026
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哺乳动物在走路时的四肢运动因体重和运动方式而异. 较大的哺乳动物和更快的跑步者使用较小的关节运动,揭示了不同物种的运动模式.

关键词:
角度范围的利用 角度范围的利用生物力学 生物力学功能形态学 功能形态学共同的角度游览.肢体的姿势 肢体的姿势古生物学 古生物学 古生物学陆地哺乳动物 陆地哺乳动物

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科学领域:

  • 生物力学 生物力学
  • 比较解剖学的比较解剖学
  • 古生物学的古生物学

背景情况:

  • 形态功能研究通常使用静态骨数据,忽视动态运动行为.
  • 哺乳动物四肢动力学显示了保留的协同作用,但缺乏关于关节运动变化的广泛比较数据.

研究的目的:

  • 在各种哺乳动物物种中量化行走姿势期间的关节姿势,角度游览和范围利用.
  • 研究这些动力学变量如何与生物因素 (如体重,肢体姿势和运动习惯) 相相关.

主要方法:

  • 收集了182种哺乳动物六肢关节关节关键姿势阶段 (触地,中位,脚脱) 的关节角度数据.
  • 计算的联合角外流 (JAE),总角外流 (TAE) 和角利用指数 (AUI).
  • 为了分析数据,采用了家族遗传学概括最小平方 (PGLS),控制进化相关性.

主要成果:

  • 体重是最强的预测因素,较大的哺乳动物表现出后肢和前肢TAE的减少.
  • 肢体姿势的影响是微妙的;植物级,小体动物和树木物种显示出更广泛的角形.
  • 不同级,曲线和快速移动的物种通常在立场期间使用较小的联合游览.

结论:

  • 哺乳动物根据大小和生态因素调整关节运动的大小和分布.
  • 姿势期间使用的总结关节外游范围的比例在哺乳动物中基本保持不变.
  • 提供了一个解释活体和化石哺乳动物四肢动态的框架.