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関連する概念動画

Clausius-Clapeyron Equation02:35

Clausius-Clapeyron Equation

The equilibrium between a liquid and its vapor depends on the temperature of the system; a rise in temperature causes a corresponding rise in the vapor pressure of its liquid. The Clausius-Clapeyron equation gives the quantitative relation between a substance’s vapor pressure (P) and its temperature (T); it predicts the rate at which vapor pressure increases per unit increase in temperature.
Dalton's Law of Partial Pressure01:11

Dalton's Law of Partial Pressure

The partial pressure of a gas is a measure of the thermodynamic activity of the gas's molecules. The pressure that a gas would create if it occupied the total volume available is called the gas's partial pressure. If two or more gases are mixed together in a container, the molecules move randomly and collide with each other, causing them to reach thermal equilibrium. When the gases have the same temperature, their molecules have the same average kinetic energy. Thus, each gas obeys the ideal...
Vapor Pressure02:34

Vapor Pressure

When a liquid vaporizes in a closed container, gas molecules cannot escape. As these gas phase molecules move randomly about, they will occasionally collide with the surface of the condensed phase, and in some cases, these collisions will result in the molecules re-entering the condensed phase. The change from the gas phase to the liquid is called condensation. When the rate of condensation becomes equal to the rate of vaporization, neither the amount of the liquid nor the amount of the vapor...
Nonideal Two-Component Liquid Solutions01:29

Nonideal Two-Component Liquid Solutions

Nonideal liquid solutions, also known as real solutions, do not strictly follow Raoult's law. Raoult's law is a rule of thumb in physical chemistry. However, not all mixtures adhere to this law due to varying molecular interactions. For example, in an acetone/chloroform solution, the individual vapor pressures of the components are lower than expected, resulting in a total vapor pressure below that predicted by Raoult's law, causing a negative deviation.On the other hand, in an ethanol/water...
Partial Derivatives and Gas Laws01:26

Partial Derivatives and Gas Laws

In functions with multiple variables, partial derivatives describe how a function changes with respect to one variable while keeping the others constant. A partial derivative is calculated from the ordinary derivative of the function with respect to the desired variable, while treating the other variables as constants. Consider the function z = f(x, y). The partial derivative of the function z with respect to x at constant y is written as (∂z/∂x)y, using 'curly d'. It essentially tells us how z...
Vapor Pressure of Fluid01:28

Vapor Pressure of Fluid

The vapor pressure of a fluid is a crucial concept in fluid mechanics, influencing phenomena such as boiling and cavitation. Vapor pressure refers to the pressure exerted by a vapor at a state of thermodynamic equilibrium with its corresponding liquid phase at a specific temperature. It represents the tendency of molecules to escape from the fluid surface into the vapor phase.
When a liquid is placed in a closed container with a small air space, and the space is evacuated, vapor molecules will...

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関連する実験動画

Updated: Jul 11, 2026

Protocol for Measuring the Thermal Properties of a Supercooled Synthetic Sand-water-gas-methane Hydrate Sample
09:46

Protocol for Measuring the Thermal Properties of a Supercooled Synthetic Sand-water-gas-methane Hydrate Sample

Published on: March 21, 2016

部分蒸気圧に対する異常な温度依存性.

J A Roberts, A W Searcy

    Science (New York, N.Y.)
    |April 29, 1977
    PubMed
    まとめ

    ガリウム亜硫化物 (Ga(2) S) の偏圧は,温度が特定の範囲内で低下するにつれて,予期せぬほど上昇します. この異常は,1228 Kの固体相組成の進化から生じ,硫黄の原子比率0.4で異なっている.

    科学分野:

    • マテリアルサイエンス 材料科学
    • 化学熱力学 化学熱力学
    • 固体化学 固体化学

    背景:

    • ガリウムセスキスルフィード (Ga(2) S(3) は,複雑な相行動を持つ化合物である.
    • 分解産物の蒸気圧を理解することは,材料加工と化学均衡の研究において極めて重要です.

    研究 の 目的:

    • ガリウム亜硫化物 (Ga(2) S) のガリウムセスキスルフィード (Ga(2) S) 以上の異常な部分圧力行動を調査する.
    • 固相均衡組成物の分析を通じて,この異常の根本的な原因を特定する.

    主な方法:

    • 定義された温度範囲内の部分圧力の熱力学的測定.
    • 特定の温度 (1228 K) で平衡状態の固体相組成物の分析.

    主要な成果:

    • 温度とGa(2) S部分圧の間の逆関係が限られた範囲で観察されました.
    • 1228 ± 3 K で共存する2つの固体相を特定しました.
    • 2つの固体相の間の硫黄含有量の差 0.4 原子パーセントを決定しました.

    結論:

    • 観測されたGa(2) S部分圧の異常は,2つの異なる固体相の間の均衡の温度依存のシフトと直接関連しています.

    さらに関連する動画

    Thermocapillary Convection Space Experiment on the SJ-10 Recoverable Satellite
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    Thermocapillary Convection Space Experiment on the SJ-10 Recoverable Satellite

    Published on: March 11, 2020

    Characterization of Thermal Transport in One-dimensional Solid Materials
    05:20

    Characterization of Thermal Transport in One-dimensional Solid Materials

    Published on: January 26, 2014

    関連する実験動画

    Last Updated: Jul 11, 2026

    Protocol for Measuring the Thermal Properties of a Supercooled Synthetic Sand-water-gas-methane Hydrate Sample
    09:46

    Protocol for Measuring the Thermal Properties of a Supercooled Synthetic Sand-water-gas-methane Hydrate Sample

    Published on: March 21, 2016

    Thermocapillary Convection Space Experiment on the SJ-10 Recoverable Satellite
    07:00

    Thermocapillary Convection Space Experiment on the SJ-10 Recoverable Satellite

    Published on: March 11, 2020

    Characterization of Thermal Transport in One-dimensional Solid Materials
    05:20

    Characterization of Thermal Transport in One-dimensional Solid Materials

    Published on: January 26, 2014

  • これらの相の異なる硫黄含有量は,異常な熱力学的振る舞いを引き起こします.