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関連する概念動画

Free-falling Bodies: Introduction01:07

Free-falling Bodies: Introduction

All objects, neglecting air resistance, fall with the same acceleration towards the Earth's center due to the force exerted by the Earth's gravity. This experimentally determined fact is unexpected because we are so accustomed to the effects of air resistance and friction that we expect light objects to fall slower than heavier ones. People believed that a heavier object had a greater acceleration when falling until Galileo Galilei (1564–1642) proved otherwise. We now know this is not the case.
Free-falling Bodies: Example01:05

Free-falling Bodies: Example

An object falling without any air resistance under the influence of gravitational force is said to be in free-fall. For free-falling bodies, the acceleration due to gravity is constant, irrespective of their mass. Free-fall is experienced not only by objects falling downward, but also by all objects whose motion is influenced by gravitational force alone. The dynamics of free-fall motion can be calculated using kinematic equations of motion, since free-fall acceleration is constant.
The...
Weightlessness01:01

Weightlessness

When an object is dropped, it accelerates toward the center of the Earth. If the net external force on the object is its weight, it is said to be in free fall; that is, the only force acting on the object is gravity. Galileo was instrumental in showing that, in the absence of air resistance, all objects fall with the same acceleration g. However, when objects on the Earth fall downward, they are never truly in free fall, because there is always some upward resistance force from the air acting...
Rocket Propulsion In Empty Space - II01:12

Rocket Propulsion In Empty Space - II

The motion of a rocket is governed by the conservation of momentum principle. A rocket's momentum changes by the same amount (with the opposite sign) as the ejected gases. As time goes by, the rocket's mass (which includes the mass of the remaining fuel) continuously decreases, and its velocity increases. Therefore, the principle of conservation of momentum is used to explain the dynamics of a rocket's motion. The ideal rocket equation gives the change in velocity that a rocket experiences by...
Drag Force and Terminal Speed01:18

Drag Force and Terminal Speed

An interesting force in everyday life is the force of drag on an object when it is moving in a fluid. Like friction, the drag force always opposes the motion of an object. Unlike simple friction, the drag force is proportional to some function of the velocity of the object in that fluid. This functionality is complicated and depends upon the shape of the object, its size, its velocity, and the fluid it is in. For most large objects, such as cyclists, cars, and baseballs, that are not moving too...
Absolute Motion Analysis- General Plane Motion01:24

Absolute Motion Analysis- General Plane Motion

Visualize a drone, with its propellers spinning rapidly, hovering mid-air. The fascinating movements and operations of this drone can be comprehended by applying the principle of general plane motion.
As the drone's propellers rotate, an upward force is generated that counteracts the force of gravity, enabling the drone to lift off from the ground. This initial movement of the drone is along a straight path, representing a form of translational motion. In this phase, every point on the drone...

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関連する実験動画

Updated: Jun 5, 2026

Visualization of High Speed Liquid Jet Impaction on a Moving Surface
08:34

Visualization of High Speed Liquid Jet Impaction on a Moving Surface

Published on: April 17, 2015

飛ぶスタート,それからゆっくりと滑り落ちる.

Roger Bilham1

  • 1Cooperative Institute for Research in Environmental Sciences and Geological Sciences, University of Colorado, Boulder, CO 80309, USA. roger.bilham@colorado.edu

Science (New York, N.Y.)
|May 21, 2005
PubMed
まとめ

2004年のスマトラ・アンダマン地震と2005年のニャス地震は,過去40年間で最大の地震であり,複雑な破裂プロセスを明らかにした. その後のプレートスリップは,北に向かって速度を減らし,地震学的理解に挑戦した.

科学分野:

  • 地質物理学 地質物理学とは地質物理学です.
  • 地震学 地震学とは
  • 地震科学 地震科学 地震科学

背景:

  • 2004年のスマトラ・アンダマン地震 (Mw 9.3) と2005年のニャス地震 (Mw 8.7) は,人類に莫大な悲劇をもたらした.
  • これらの出来事は,前40年間で世界中で最大の地震でした.
  • これらの地質学的出来事の規模は,地震学的分析に重大な課題をもたらした.

研究 の 目的:

  • スマトラ・アンダマン・ニャス地震の複雑な破裂プロセスを分析する.
  • 大規模な地震現象の研究における新しい技術の応用を調査する.
  • プレート界面のジオダイナミクスを記述するには,これらの大きな地震の間にプレート界面が滑り落ちる.

主な方法:

  • スマトラ・アンダマン・ニャス地震の地震データ分析.
  • 先進的な技術を活用して地震の断裂動態を研究する.
  • プレート界面の滑り特徴を調査する.

主要な成果:

  • 地震は,驚くべき複雑さの破裂過程を示した.
  • 初期の急速な破裂は,北に向かって滑り速度の低下に続いた.
  • 新しい技術は,これらのイベントに必要な感度と範囲でテストされました.

さらに関連する動画

Laboratory Scale Slow Cook-Off Testing of Rocket Propellants: The Combustion Rate Analysis of a Slowly Heated Propellant (CRASH-P) Test
06:52

Laboratory Scale Slow Cook-Off Testing of Rocket Propellants: The Combustion Rate Analysis of a Slowly Heated Propellant (CRASH-P) Test

Published on: February 6, 2021

Eye Tracking During A Complex Aviation Task For Insights Into Information Processing
07:48

Eye Tracking During A Complex Aviation Task For Insights Into Information Processing

Published on: April 4, 2025

関連する実験動画

Last Updated: Jun 5, 2026

Visualization of High Speed Liquid Jet Impaction on a Moving Surface
08:34

Visualization of High Speed Liquid Jet Impaction on a Moving Surface

Published on: April 17, 2015

Laboratory Scale Slow Cook-Off Testing of Rocket Propellants: The Combustion Rate Analysis of a Slowly Heated Propellant (CRASH-P) Test
06:52

Laboratory Scale Slow Cook-Off Testing of Rocket Propellants: The Combustion Rate Analysis of a Slowly Heated Propellant (CRASH-P) Test

Published on: February 6, 2021

Eye Tracking During A Complex Aviation Task For Insights Into Information Processing
07:48

Eye Tracking During A Complex Aviation Task For Insights Into Information Processing

Published on: April 4, 2025

結論:

  • スマトラ・アンダマン・ニャス地震は,巨大地震の破裂の複雑な性質を強調しています.
  • 北への滑り速度の低下を理解することは,地震リスクの評価に不可欠です.
  • これらの出来事は,地震学の先進的な監視と分析ツールの必要性を強調しています.