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相关概念视频

Generator Voltage Control01:21

Generator Voltage Control

Generator voltage control is crucial for maintaining the stable operation of synchronous generators and wind turbines. In older models, a DC generator driven by the rotor delivers DC power to the rotor's field winding, and the power is transferred through slip rings and brushes. In the latest models, static or brushless exciters are used. Static exciters rectify AC power from the generator terminals and then transfer the DC power directly to the rotor. Brushless exciters, on the other hand, use...
Turbine-Governor Control01:17

Turbine-Governor Control

Turbine-governor control is crucial for maintaining power system stability by balancing turbine mechanical power output with electrical load demand. This mechanism ensures that generator frequency and rotor speed are within acceptable limits during load variations. Turbine-generator units store kinetic energy due to their rotating masses; this energy is released to meet the load requirement when the load increases. The electrical torque of turbines rises to meet the demand, whereas the...
Control of Power Flow01:30

Control of Power Flow

There are several methods to control power flow in power systems:
Power System Distribution01:25

Power System Distribution

Power system distribution involves delivering electrical energy from power plants to consumers through a network of transmission and distribution systems. The process begins at power plants, where energy from coal, gas, nuclear, water, and wind is converted into electrical energy. These plants use three-phase generators, typically rated between 50 to 1300 MVA, with terminal voltages ranging from a few kV to 20 kV, depending on the size and age of the units.
The transmission system is designed...
Nuclear Power02:36

Nuclear Power

Controlled nuclear fission reactions are used to generate electricity. Any nuclear reactor that produces power via the fission of uranium or plutonium by bombardment with neutrons has six components: nuclear fuel consisting of fissionable material, a nuclear moderator, a neutron source, control rods, reactor coolant, and a shield and containment system.
Nuclear Fuels
Nuclear fuel consists of a fissile isotope, such as uranium-235, which must be present in sufficient quantity to provide a...
Load-frequency control01:28

Load-frequency control

Load-frequency control (LFC) is vital for maintaining power system stability, ensuring that frequency and power flows remain within acceptable limits during load changes. Turbine-governor control eliminates rotor accelerations and decelerations following load changes. However, a steady-state frequency error persists when the change in the turbine-governor reference setting is zero. In an interconnected power system, each area agrees to export or import a scheduled amount of power through...

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高性能热电散装石通过过程控制的结构破坏

Cédric Bourgès1, Yohan Bouyrie2, Andrew R Supka3

  • 1Laboratoire CRISMAT, UMR 6508, CNRS, ENSICAEN , 6 Boulevard du Maréchal Juin, 14050 Caen Cedex 04, France.

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概括

具有石结构的高性能热电散热硫化物具有较低的导热性. 控制缺陷可以提高热电性质,在Cu26V2Sn6S32石中达到接近单位的优点.

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科学领域:

  • 材料科学
  • 固态物理
  • 无机化学

背景情况:

  • 热电材料将热量转化为电力,
  • 石硫化物 (Cu26V2Sn6S32) 显示出潜力,但需要优化效率.
  • 实现高热电性能需要同时优化电气和热传输特性.

研究的目的:

  • 设计具有石结构的高性能热电硫化物.
  • 阐明体内低导热率背后的机制.
  • 通过缺陷工程演示可扩展的方法来增强热电特性.

主要方法:

  • 控制密集过程引入结构缺陷.
  • 用于子散射的点缺陷和无序区域工程.
  • 结合带结构和声计算的实验性表征.
  • 分析硫空缺和抗地缺陷对载体度的影响.

主要成果:

  • 实现了高性能热电散装硫化物与石结构.
  • 通过点缺陷和无序区域显示了增强的声子散射.
  • 在石样本中阐明了内在的低导热机制.
  • 确定S空缺和网站缺陷对航空公司集中的影响.
  • 设计了高功率因素和接近统一的优点.

结论:

  • 控制密集过程和结构缺陷是高性能热电矿的关键.
  • 点缺陷和无序区域有效地增强了声子散射,降低了导热性.
  • 开发的方法提供了一个可控和可扩展的路径,用于热电应用中优化复杂的散装硫化物.