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相关概念视频

Angle of Twist: Problem Solving01:13

Angle of Twist: Problem Solving

744
An electric motor applies a torque of 700 N·m to an aluminum shaft, triggering a stable rotation. Two pulleys, B and C, are subjected to torques of 300 N·m and 400 N·m, respectively. The modulus of rigidity is provided as 25 GPa. With the knowledge of the length and diameter of each segment, the twist angle between the two pulleys can be computed. First, a section cut is made between pulleys B and C, and the cut cross-section is analyzed using a free-body diagram. Given that the torque...
744
Angle of Twist - Elastic Range01:13

Angle of Twist - Elastic Range

763
Consider a cylindrical shaft with a length denoted by L and a consistent cross-sectional radius referred to as r. This shaft undergoes a torque at the free end. The highest shearing strain within the shaft is directly proportional to the twist angle and the radial distance from the shaft axis. When the shaft behaves elastically, this shearing strain can be articulated using variables such as the applied torque, radial distance, the polar moment of inertia, and the modulus of rigidity. By...
763
Design Example: Traverse Angle Computations01:25

Design Example: Traverse Angle Computations

299
Traverse angle computations are a critical component of surveying, used to compute the internal angles within a closed traverse. A traverse consists of a series of connected lines forming a closed loop, often used for land boundary delineation or mapping. Calculating the internal angles ensures accuracy in the traverse geometry and is essential for checking survey data integrity.The process begins with known azimuths and bearings of the traverse sides. Internal angles at each vertex are...
299
Elevation of Intermediate Points on Vertical Curves01:20

Elevation of Intermediate Points on Vertical Curves

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Vertical curves are essential in roadway design because they provide smooth transitions between varying roadway grades. Designing vertical curves involves calculating intermediate elevations and identifying the curve's highest or lowest point, which is essential for optimal roadway performance.Intermediate elevations on a vertical curve are determined using the tangent offset method. This method considers the initial elevation at the start of the curve, the grades, and the curve's geometry. The...
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Projectile Motion: Example01:18

Projectile Motion: Example

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The theory of projectile motion is very useful for players of several sports to improve their performance. For example, a javelin thrower needs to throw their javelin in such a way that it travels as far as possible. The javelin thrower takes a short run-up to increase the initial speed of the javelin. The range of a projectile is at its maximum at a 45° angle so javelin throwers try to angle their throw as close to 45° as possible.
When we speak of the range (R) of a projectile on...
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Work Done Over an Inclined Plane01:11

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The center-of-mass framework helps to easily describe the work done on rigid bodies. Since the internal forces in a rigid body do no work, they can be ignored, and the external forces can be considered in the work-energy theorem.
The work done by gravity to move a rigid body, or the work done by an opposing force to move a rigid body against gravity, can be calculated using the center-of-mass framework. It is the line integral of the force of gravity over the path, considered positive if...
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相关实验视频

Updated: Jan 14, 2026

Importance of Jumping Ability in Handball Throwing Speed and Accuracy
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对于三重跳跃的最佳起飞角度

Hiroki Okubo1, Mont Hubbard2

  • 1Chiba Institute of Technology, 2-17-1, Tsudanuma, Narashino, 2750016, Chiba, Japan.

Journal of biomechanics
|October 23, 2025
PubMed
概括
此摘要是机器生成的。

一个单一刚体 (SRB) 模型揭示了最佳的三重跳起飞角度最大限度的距离. 运行速度影响起飞速度,但不是最佳的角度,跳跃主导的策略在更高的速度出现.

关键词:
阶段比率 阶段比率运行速度的提高速度.起飞角度 起飞角度三重跳跃的三重跳跃是什么意思转换速度转换的速度转换.

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科学领域:

  • 生物力学 生物力学
  • 运动科学 运动科学 运动科学
  • 竞技表现 运动表现

背景情况:

  • 三重跳涉及复杂的动力学序列.
  • 了解最佳起飞策略对于最大化跳跃距离至关重要.
  • 之前的模型已经简化了三重跳的机制.

研究的目的:

  • 通过使用单一刚体 (SRB) 模型,对三重跳的总距离进行数值调查.
  • 分析运行速度和起飞角度 (跳跃,步骤,跳跃) 对跳跃距离的影响.
  • 探索速度转换和起飞策略之间的关系.

主要方法:

  • 使用近似单刚体 (SRB) 模型进行数值模拟.
  • 基于不同上升速度和起飞角度的总距离的调查.
  • 使用先前测量的精英运动员起飞角度进行验证.

主要成果:

  • 起飞角度的单一最佳组合可以最大限度地提高每次上升速度的总距离.
  • 在支期间的水平速度损失和垂直速度增长之间存在线性相关性.
  • 跳跃主导的策略变得更有可能增加总距离,在跳跃/步骤和特定角度配置中保持水平速度.

结论:

  • 尽管简化了假设,SRB模型有效地解释了速度转换.
  • 运行速度主要影响起飞速度,对最佳起飞角度的影响最小.
  • 阶段比是出现的结果,而不是可控制的参数,在三重跳执行.