傾いた板を用いた立方盤投げにおける身体の回転のメカニズムの調査:個体内比較研究
Keitaro Seki1, Shota Kikuchi2, Kazumichi Ae3
1Department of Physical Education, College of Humanities and Sciences, Nihon University, Tokyo, Japan.
Journal of sports sciences
|September 3, 2025
まとめ
ディスカスを投げるとき,傾いたボードを使用すると,アスリートは地面への反応力が少なく,より大きな角度衝動を生成することができます. これは,身体の回転とパフォーマンスを向上させる最適のテクニックを示唆しています.
科学分野:
- バイオメカニクス
- スポーツ科学
- アスリート の 業績
背景:
- ディスカスを投げるときのスピードは重要です
- 垂直軸の角運動は重要ですが,そのメカニズムは不明です.
研究 の 目的:
- 立体盤投げの回転メカニズムを調査する.
- 右足の下に傾いたボードの効果を調べる.
主な方法:
- 15人の男性ディスカス投げ選手が 立って投げました
- 0°,4°,8°および12°の4つの傾斜角度がテストされました.
- 角運動量と地面反応力を分析した.
主要な成果:
- 傾斜の角度モメンタムには大きな違いはありません.
- 右足から12度と8度で0度と比較して大きな角度衝動.
- 0°と比較して12°,8°,および4°で足のインパルスが小さくなります.
- 4°または0°と比較して,投げる方向でのインパルス増加.
結論:
- 傾いた条件では,地面反応力が減少した等価な角度モメントを許容できます.
- これは,円盤投げの回転を容易にするために最適な体の位置を示唆しています.
さらに関連する動画
関連する概念動画
Center of Mass: Introduction
14.7K
Any object that obeys Newton's second law of motion is made up of a large number of infinitesimally small particles. Objects in motion can be as simple as atoms or as complex as gymnasts performing in the Olympics. The motion of such objects is described about a point called the center of mass of the object. The center of mass of an object is a point that acts as if the whole mass is concentrated at that point. The center of mass of an object with a large number of infinitesimally small...
14.7K
Equation of Motion: Rotation About a Fixed Axis
249
Consider a flywheel, having an uneven mass distribution, rotating steadily around a fixed axis. As this rotation occurs, the center of mass of the flywheel traces a circular path. Understanding the acceleration of this center of mass requires observing both its tangential and normal components.
The tangential component is dependent on the direction of the angular acceleration of the flywheel. The tangential component of the acceleration propels the flywheel along its path. On the other hand,...
The tangential component is dependent on the direction of the angular acceleration of the flywheel. The tangential component of the acceleration propels the flywheel along its path. On the other hand,...
249
Relative Motion Analysis - Acceleration
422
A slider-crank mechanism converts rotational motion from the crank into linear motion of the slider or vice versa. This mechanism consists of three main parts: the crank, the connecting rod, and the slider. The movement of the slider-crank is an example of general plane motion as the fluctuating angle between the crank and the connecting rod. Consider a segment AB where point A is at the end of the slider and point B is on the diametrically opposite end to point A, on a crack. The variance in...
422
Moments of Inertia for an Area about Inclined Axes
783
In physics and engineering, understanding the moments of inertia for a given area with asymmetrical mass distribution is critical for proper design and analysis. When considering an arbitrary coordinate system, the moments of inertia can be obtained by integrating the moment of inertia for an infinitesimal area element.
783
Equation of Motion: General Plane motion
277
In the context of a rigid body's movement within a general plane, it is important to understand that this motion is typically triggered by external forces or couple moments exerted onto it. This principle can be explained through Newton's second law, which stipulates the translational motion of the body's center of mass along each axis.
Moreover, the body's center of mass experiences a rotational effect as a result of these couple moments. This rotation can be articulated as the...
Moreover, the body's center of mass experiences a rotational effect as a result of these couple moments. This rotation can be articulated as the...
277
Free-body Diagrams: Problem Solving
975
Free-body diagrams are essential tools for physicists and engineers studying the motion of objects. Free-body diagrams are graphical representations of the object or system under consideration, and they focus solely on the essential forces acting on the object. This tool helps break down complex problems into simpler models that are easier to understand and solve.
For example, consider a block with a mass of 10 kg released on an inclined plane at an angle of 30° to the horizontal, where...
For example, consider a block with a mass of 10 kg released on an inclined plane at an angle of 30° to the horizontal, where...
975


