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関連する概念動画

The de Broglie Wavelength02:32

The de Broglie Wavelength

In the macroscopic world, objects that are large enough to be seen by the naked eye follow the rules of classical physics. A billiard ball moving on a table will behave like a particle; it will continue traveling in a straight line unless it collides with another ball, or it is acted on by some other force, such as friction. The ball has a well-defined position and velocity or well-defined momentum, p = mv, which is defined by mass m and velocity v at any given moment. This is the typical...
Deriving the Speed of Sound in a Liquid01:09

Deriving the Speed of Sound in a Liquid

As with waves on a string, the speed of sound or a mechanical wave in a fluid depends on the fluid's elastic modulus and inertia. The two relevant physical quantities are the bulk modulus and the density of the material. Indeed, it turns out that the relationship between speed and the bulk modulus and density in fluids is the same as that between the speed and the Young's modulus and density in solids.
The speed of sound in fluids can be derived by considering a mechanical wave propagating...
Bewley Lattice Diagram01:12

Bewley Lattice Diagram

The Bewley lattice diagram, developed by L. V. Bewley, effectively organizes the reflections occurring during transmission-line transients. It visually represents how voltage waves propagate and reflect within a transmission line, making it easier to understand the complex interactions that occur.
Characteristics of Fluids01:31

Characteristics of Fluids

Fluids differ from solids primarily in their molecular structure and stress response. Solids have tightly packed molecules with strong intermolecular forces, maintaining their shape and resisting deformation. In contrast, fluids have molecules spaced farther apart with weaker forces, allowing them to flow and deform easily.
Fluids, which include both liquids and gases, are substances that deform continuously under shearing stress. For example, water and oil are liquids with molecules that can...
Control Volume and System Representations01:16

Control Volume and System Representations

Two key frameworks are employed to analyze mass, energy, and momentum transfer: the control volume approach and the system approach. These frameworks offer different perspectives, depending on whether the focus is on a specific region in space (control volume approach) or a defined mass of fluid (system approach).
The control volume approach considers a stationary region in space through which fluid flows. This region is bounded by a control surface.  For instance, in the case of water flowing...
Calculation of Volume of Solids by Integration01:27

Calculation of Volume of Solids by Integration

Volume calculation often begins with simple geometric solids. For example, the volume of a rectangular box is obtained by multiplying the area of its base by its height. This straightforward approach relies on the fact that the cross-sectional area of the box remains constant throughout its length. Many real-world objects, however, do not have uniform cross-sections, and their volumes cannot be determined using elementary geometric formulas.To address this limitation, the Slicing Method...

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関連する実験動画

Updated: Jun 22, 2026

Fabrication, Operation and Flow Visualization in Surface-acoustic-wave-driven Acoustic-counterflow Microfluidics
12:26

Fabrication, Operation and Flow Visualization in Surface-acoustic-wave-driven Acoustic-counterflow Microfluidics

Published on: August 27, 2013

コンピュータによる液体波

F H Harlow, J P Shannon, J E Welch

    Science (New York, N.Y.)
    |September 3, 1965
    PubMed
    まとめ

    新しい流体ダイナミクス技術は,高速コンピュータを使用して,複雑な流体行動をシミュレートします. この方法は,波の破裂やスプレーシング現象を含む圧縮不能の粘着性液体を正確にモデル化します.

    科学分野:

    • 流体力学 流体力学とは
    • 計算科学 計算科学とは

    背景:

    • 複雑な流体の振る舞いをシミュレートする,特に自由な表面を含むものは,重要な計算上の課題を提示します.
    • 複数の空間的次元における非安定運動を理解するには,高度な数学的方法が必要です.

    研究 の 目的:

    • 高速コンピューティングに適した新しい数値流体力学技術を提示する.
    • 不安定な運動による圧縮不可能な粘性流体の問題に対する技術の適用性を実証する.

    主な方法:

    • 数学的,流体力学技術の開発.
    • 効率的な計算を目的とした高速コンピュータでの実装.
    • 圧縮不可能な粘性流体を含む問題への応用,複数の空間的次元で.

    主要な成果:

    • このテクニックは,自由表面の境界条件をうまく処理します.
    • これは,破裂と噴出を含むすべての段階を通して波の研究を可能にします.
    • 様々な関連する流体現象をシミュレートする能力を実証した.

    結論:

    • 記述された数学的テクニックは,複雑な流体力学の問題をシミュレートするのに有効です.

    さらに関連する動画

    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

    Film Control to Study Contributions of Waves to Droplet Impact Dynamics on Thin Flowing Liquid Films
    07:08

    Film Control to Study Contributions of Waves to Droplet Impact Dynamics on Thin Flowing Liquid Films

    Published on: August 18, 2018

    関連する実験動画

    Last Updated: Jun 22, 2026

    Fabrication, Operation and Flow Visualization in Surface-acoustic-wave-driven Acoustic-counterflow Microfluidics
    12:26

    Fabrication, Operation and Flow Visualization in Surface-acoustic-wave-driven Acoustic-counterflow Microfluidics

    Published on: August 27, 2013

    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

    Film Control to Study Contributions of Waves to Droplet Impact Dynamics on Thin Flowing Liquid Films
    07:08

    Film Control to Study Contributions of Waves to Droplet Impact Dynamics on Thin Flowing Liquid Films

    Published on: August 18, 2018

  • 自由表面現象をモデル化する能力は,流体力学の研究に新しい道を開く.