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関連する概念動画

Principle of Equivalence01:18

Principle of Equivalence

According to Albert Einstein (1897-1955), free-falling and feeling weightless are intrinsically linked. If a person were in free-fall under gravity, for example, diving towards the Earth from an airplane, they would feel completely weightless. Similarly, a person descending in a lift may feel partially weightless. Broadly speaking, it is assumed that an object in a uniform gravitational field and an object undergoing constant acceleration in the absence of gravity are under the same...
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...
Apparent Weight01:09

Apparent Weight

True weight is the measure of the gravitational force acting on an object. However, if the object accelerates, its measured weight is different from its true weight. Similar observations can be made when the object is submerged in water. An object's weight in water is its apparent weight, which is equal to the difference between its true weight and the buoyant forces.
Consider a person standing on a bathroom scale inside an elevator. If the scale is accurate at rest, its reading equals the...
Second Law: Motion under Same Force01:10

Second Law: Motion under Same Force

Newton's laws can be applied to bodies at rest and bodies in motion. Newton's first law is applied to bodies in equilibrium, whereas the second law applies to accelerating bodies. To study accelerating bodies, first, the directions and magnitudes of acceleration and the applied forces are determined. Then, the free-body diagram is constructed, and Newton's second law is applied, considering the components of the forces in the x and y directions.
Let's imagine a person is standing on a weighing...
The Principle of Superposition and the Gravitational Field01:17

The Principle of Superposition and the Gravitational Field

The principle of superposition applies to gravitational forces of objects that are sufficiently far apart. It states that the net gravitational force on a point object is the vector sum of the gravitational forces on it due to various objects. The principle helps calculate the force by listing the individual forces and then vectorially summing them up. However, it should be noted that the principle of superposition is not always apparent. In the presence of a second force, the first force could...
Buoyancy01:12

Buoyancy

When an object is placed in a fluid, it either floats or sinks. All objects in a fluid experience a buoyant force. For example, a metal ball sinks, while a rubber ball floats. Similarly, a submarine can sink and float by adjusting its buoyancy.  The concept of buoyancy raises several interesting questions. For instance, where does this buoyant force come from? How much buoyant force is required to make an object sink or float? Do objects that sink get any support at all from the fluid? 
To get...

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関連する実験動画

Updated: Jul 12, 2026

Safe Experimentation in Optical Levitation of Charged Droplets Using Remote Labs
09:09

Safe Experimentation in Optical Levitation of Charged Droplets Using Remote Labs

Published on: January 10, 2019

物理学におけるレビテーション

E H Brandt

    Science (New York, N.Y.)
    |January 20, 1989
    PubMed
    まとめ

    物理的効果は,ガスジェット,音波,またはレーザーを使用して物質の浮揚を可能にします. 超伝導体や電荷粒子も浮遊させることができ,材料加工や輸送に応用できます.

    科学分野:

    • 物理 物理学 物理学とは
    • マテリアルサイエンス 材料科学

    背景:

    • 自由に浮遊する物質は,様々な物理現象によって達成できます.
    • レビテーション技術は,材料の取り扱いや科学的調査にユニークな利点を提供します.

    研究 の 目的:

    • 物質の浮揚を可能にする多様な物理的メカニズムを探求する.
    • 科学と技術におけるレビテーションの応用を強調する.

    主な方法:

    • ガスジェット,強烈な音波,レーザービームによる浮気.
    • 電磁浮起は,電導体の電波周波数領域と,電磁粒子の電場内の電荷粒子を誘導する.
    • 超伝導体とフクスピニングを用いた磁気浮揚.

    主要な成果:

    • 安定したおよび不安定な浮揚原理の実証.
    • 固体,液体,および粒子の成功した懸浮.
    • 超伝導体ベースの浮揚の探索,フクスピニングを含む.

    結論:

    • レビテーション技術は,音学,光学,電磁学の原理を採用して,多用途です.
    • アプリケーションは,容器のない材料加工,摩擦のないシステム,および高度な科学ツールに及ぶ.

    さらに関連する動画

    Quantification of Cellular Densities and Antigenic Properties using Magnetic Levitation
    05:25

    Quantification of Cellular Densities and Antigenic Properties using Magnetic Levitation

    Published on: May 17, 2021

    Magnetic Levitation Coupled with Portable Imaging and Analysis for Disease Diagnostics
    07:42

    Magnetic Levitation Coupled with Portable Imaging and Analysis for Disease Diagnostics

    Published on: February 19, 2017

    関連する実験動画

    Last Updated: Jul 12, 2026

    Safe Experimentation in Optical Levitation of Charged Droplets Using Remote Labs
    09:09

    Safe Experimentation in Optical Levitation of Charged Droplets Using Remote Labs

    Published on: January 10, 2019

    Quantification of Cellular Densities and Antigenic Properties using Magnetic Levitation
    05:25

    Quantification of Cellular Densities and Antigenic Properties using Magnetic Levitation

    Published on: May 17, 2021

    Magnetic Levitation Coupled with Portable Imaging and Analysis for Disease Diagnostics
    07:42

    Magnetic Levitation Coupled with Portable Imaging and Analysis for Disease Diagnostics

    Published on: February 19, 2017

  • 超伝導体は,新興技術にとって極めて重要な,ユニークな安定した浮揚の可能性を提供します.