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関連する概念動画

Current Density01:21

Current Density

5.0K
The total amount of current flowing through one unit value of a cross-sectional area is referred to as current density. If the current flow is uniform, the amount of current flowing through a conductor is the same at all points along the conductor, even if the conductor area varies. The current density consists of the local magnitude and direction of the charge flow, which varies from point to point. Current density is measured in amperes per meter square, and direction is defined as the net...
5.0K
Heat Flow and Specific Heat01:12

Heat Flow and Specific Heat

6.5K
Heat is a type of energy transfer that is caused by a temperature difference, and it can change the temperature of an object. Since heat is a form of energy, its SI unit is the joule (J). Another common unit of energy often used for heat is the calorie (cal), which is defined as the energy needed to change the temperature of 1 g of water by 1 °C, specifically between 14.5 °C and 15.5 °C, since the energy needed shows a slight temperature dependence. Another commonly used unit is...
6.5K
Heat Capacities of an Ideal Gas I01:14

Heat Capacities of an Ideal Gas I

4.2K
Heat capacity is the ratio of heat absorbed by the substance corresponding to its temperature change. It is also called thermal capacity and the SI unit of heat capacity is J/K. Whereas, specific heat capacity is defined as the amount of heat necessary to change the temperature of 1 kg of a substance by 1 K and is also called massic heat capacity. Its SI unit is J/kg⋅K.
Molar heat capacity quantifies the ratio of the amount of heat added (or removed) to increase (or decrease) the...
4.2K
Heat Capacities of an Ideal Gas II01:23

Heat Capacities of an Ideal Gas II

3.6K
For a system that undergoes a thermodynamic process at a constant volume condition, the heat absorbed is used only to increase the system's internal energy and not for doing any kind of work. While for a system undergoing a thermodynamic process under a constant pressure condition, the amount of heat absorbed is used not only for increasing the internal energy (as a function of temperature) but also for doing some work. The molar heat capacity is the amount of heat required to increase the...
3.6K
Heat Capacities of an Ideal Gas III01:25

Heat Capacities of an Ideal Gas III

3.3K
The number of independent ways a gas molecule can move along straight line, rotate, and vibrate is called its degrees of freedom. Supposing d represents the number of degrees of freedom of an ideal gas, the molar heat capacity at constant volume of an ideal gas in terms of d is
3.3K
Carrier Transport01:21

Carrier Transport

884
The generation of electrical current in semiconductors is fundamentally driven by two mechanisms: drift and diffusion. These processes are essential for the functionality and performance of semiconductor-based devices.
Drift Current:
The drift of charge carriers is started by an external electric field (E). Charged particles, such as electrons and holes, experience an acceleration between collisions with lattice atoms. For electrons, this results in a drift velocity (vd) given by:
884

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関連する実験動画

Updated: Jan 8, 2026

Building Langmuir Probes and Emissive Probes for Plasma Potential Measurements in Low Pressure, Low Temperature Plasmas
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Building Langmuir Probes and Emissive Probes for Plasma Potential Measurements in Low Pressure, Low Temperature Plasmas

Published on: May 25, 2021

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理想プラズマにおける非局所電流駆動熱流

Nicholas Mitchell1, David Chapman2, Grigory Kagan1

  • 1Imperial College, The Blackett Laboratory, London SW7 2AZ, United Kingdom.

Physical review. E
|December 23, 2025
PubMed
まとめ

この研究は、特に高い有効イオン化度で、プラズマ中の電流駆動熱流を著しく増強する新しい非局所メカニズムを明らかにする。これらの増強は、比較的弱い電子流でも発生し、プラズマのエネルギー輸送に影響を与える。

科学分野:

  • プラズマ物理学
  • 核融合エネルギー
  • 天体物理学プラズマ

背景:

  • 電子熱流は、衝突プラズマにおける主要なエネルギー輸送メカニズムである。
  • 温度勾配による非局所伝導熱輸送は、よく研究されている。
  • 電流駆動熱流および摩擦に対する非局所効果は、あまり探求されていない。

研究 の 目的:

  • 第一原理に基づく削減運動論的手法を用いて、電流駆動輸送に対する非局所効果を調査する。
  • 電流駆動熱流に影響を与える新しい非局所メカニズムを特定し、特徴づける。

主な方法:

  • 第一原理に基づく削減運動論的手法の適用。
  • 電流駆動輸送に対する非局所効果の解析。
  • 無次元流数N_u = |u_e - u_i| / v_{th,e}の導入と解析。

主要な成果:

  • 新しい非局所メカニズムが電流駆動熱流を著しく増強する。
  • この増強は、高い有効イオン化度(Z*)でより顕著になる。
  • 増強は、標準的な非局所効果と同様に、比較的弱い流(N_u ≳ 1/100)でも発生する。
キーワード:
非局所効果電流駆動熱流プラズマ輸送有効イオン化度エネルギー輸送

さらに関連する動画

Non-equilibrium Microwave Plasma for Efficient High Temperature Chemistry
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Non-equilibrium Microwave Plasma for Efficient High Temperature Chemistry

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Experimental Methodology for Estimation of Local Heat Fluxes and Burning Rates in Steady Laminar Boundary Layer Diffusion Flames
10:29

Experimental Methodology for Estimation of Local Heat Fluxes and Burning Rates in Steady Laminar Boundary Layer Diffusion Flames

Published on: June 1, 2016

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関連する実験動画

Last Updated: Jan 8, 2026

Building Langmuir Probes and Emissive Probes for Plasma Potential Measurements in Low Pressure, Low Temperature Plasmas
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Building Langmuir Probes and Emissive Probes for Plasma Potential Measurements in Low Pressure, Low Temperature Plasmas

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Non-equilibrium Microwave Plasma for Efficient High Temperature Chemistry
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Non-equilibrium Microwave Plasma for Efficient High Temperature Chemistry

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Experimental Methodology for Estimation of Local Heat Fluxes and Burning Rates in Steady Laminar Boundary Layer Diffusion Flames
10:29

Experimental Methodology for Estimation of Local Heat Fluxes and Burning Rates in Steady Laminar Boundary Layer Diffusion Flames

Published on: June 1, 2016

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結論:

  • 電流駆動熱流は、勾配駆動効果を超えて、著しい非局所的挙動を示す。
  • プラズマ電流の強度と有効イオン化度は、非局所輸送の重要な要因である。
  • 発見は、核融合および天体物理学プラズマにおけるエネルギー輸送の理解に関連している。