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相关概念视频

Planar Rigid-Body Motion01:22

Planar Rigid-Body Motion

562
Understanding the movement of a rigid body in planar motion involves recognizing that every particle within this body is traversing a path that maintains a consistent distance from a specific plane. This concept is fundamental in the study of physics and mechanical engineering, and it allows us to comprehend better how objects move in space.
Planar motion is typically divided into three distinct categories. The first is rectilinear translation, demonstrated by a subway train that moves along...
562
Equation of Motion for a Rigid Body01:12

Equation of Motion for a Rigid Body

376
The movement of a rigid object can be understood through the equations that explain both translational and rotational motion about the center of mass of the object, point G. This center of mass is the point where the equation of motion for translational motion comes into play, as per Newton's Second Law.
The combined moments generated about the center of mass of the object are equal to the rate of change of the angular momentum of the body. An external force, when applied at a different...
376
Torque Free Motion01:15

Torque Free Motion

570
The torque-free motion refers to the movement of a rigid body in space when no external torques are acting upon it. This type of motion can be observed in environments where there are no external forces or frictions, like in outer space. For example, a rotation of Mars in space is a torque-free motion. Mars is an axisymmetric object, meaning it has an axis of symmetry along which it rotates, designated as the z-axis. The rotating frame of reference is defined such that the center of mass of...
570
Kinetic Energy for a Rigid Body01:13

Kinetic Energy for a Rigid Body

298
Imagine a solid object involved in a general planar movement, with its center of mass pinpointed at a spot labeled G. The object's kinetic energy relative to an arbitrary point A can be quantified for each of its particles - the ith particle in this case. This measurement is achieved through the employment of the relative velocity definition. The position vector, known as rA, extends from point A to the mass element i.
298
Relative Motion Analysis using Rotating Axes01:25

Relative Motion Analysis using Rotating Axes

549
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...
549
Angular Momentum: Rigid Body01:11

Angular Momentum: Rigid Body

9.3K
The total angular momentum of a rigid body can be calculated using the summation of the angular momentum of all the tiny particles rotating in the same plane. Considering all the tiny particles rotating in the x-y plane, the direction of angular momentum of all such particles and that of the rigid body would be perpendicular to the plane of the rotation along the z-axis.
This calculation can get complicated when tiny particles within the rigid body are not rotating in the same plane but have...
9.3K

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相关实验视频

Updated: Sep 18, 2025

Measurements of Waves in a Wind-wave Tank Under Steady and Time-varying Wind Forcing
08:54

Measurements of Waves in a Wind-wave Tank Under Steady and Time-varying Wind Forcing

Published on: February 13, 2018

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非刚性运动:在风中吹动.

Markus Lappe1

  • 1Institute for Psychology and Otto Creutzfeldt Center for Cognitive and Behavioral Neuroscience, University of Muenster, Fliednerstrasse 21, 48149 Münster, Germany.

Current biology : CB
|June 24, 2025
PubMed
概括

这项研究揭示了人类如何感知可变形物体的运动. 我们发现,对非刚性物体运动的感知与我们对人体运动的感知非常相似.

科学领域:

  • 视觉感知 视觉感知 视觉感知
  • 认知心理学 认知心理学
  • 生物力学 生物力学

背景情况:

  • 视觉系统处理运动,但对可变形物体运动的感知仍然不太了解.
  • 人体表现出复杂的,非刚性运动,这些运动很容易被感知.

研究的目的:

  • 探究解释可变形物体运动的基础感知机制.
  • 将非刚性物体运动的感知与人类生物运动的感知进行比较.

主要方法:

  • 利用心理物理实验,呈现各种非刚性变形的物体.
  • 分析观察者的反应,以分类和识别感知到的运动模式.
  • 将对象运动的感知与人类运动感知的既定模型进行比较.

主要成果:

  • 可变形物体运动的感知与人类的生物运动感知有很大的相似之处.
  • 变形的特定动力学特征对于准确的运动解释至关重要.
  • 观察者在分类运动类型方面表现出很高的一致性.

结论:

  • 人类视觉系统可能使用共享的机制来处理生物和非生物可变形运动.
  • 了解可变形运动感知为视觉运动处理的一般原则提供了洞察力.

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