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相关概念视频

Adiabatic Processes for an Ideal Gas01:18

Adiabatic Processes for an Ideal Gas

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When an ideal gas is compressed adiabatically, that is, without adding heat, work is done on it, and its temperature increases. In an adiabatic expansion, the gas does work, and its temperature drops. Adiabatic compressions actually occur in the cylinders of a car, where the compressions of the gas-air mixture take place so quickly that there is no time for the mixture to exchange heat with its environment. Nevertheless, because work is done on the mixture during the compression, its...
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Work Done in an Adiabatic Process01:20

Work Done in an Adiabatic Process

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Consider the adiabatic compression of an ideal gas in the cylinder of an automobile diesel engine. The gasoline vapor is injected into the cylinder of an automobile engine when the piston is in its expanded position. The temperature, pressure, and volume of the resulting gas-air mixture are 20 °C, 1.00 x 105 N/m2, and 240 cm3 , respectively. The mixture is then compressed adiabatically to a volume of 40 cm3. Note that, in the actual operation of an automobile engine, the compression is not...
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Pressure and Volume in an Adiabatic Process01:27

Pressure and Volume in an Adiabatic Process

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Free expansion of a gas is an adiabatic process. However, there are few differences between free expansion and adiabatic expansion. During free expansion, no work is done, and there is no change in internal energy. But, for an adiabatic expansion, work is done, and there is a change in internal energy. During an adiabatic process, the relation between the pressure and volume is obtained from the condition for the adiabatic process, that is, 
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Path Between Thermodynamics States01:21

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Consider the two thermodynamic processes involving an ideal gas that are represented by paths AC and ABC in Figure 1:
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Multimachine Stability01:25

Multimachine Stability

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Multimachine stability analysis is crucial for understanding the dynamics and stability of power systems with multiple synchronous machines. The objective is to solve the swing equations for a network of M machines connected to an N-bus power system.
In analyzing the system, the nodal equations represent the relationship between bus voltages, machine voltages, and machine currents. The nodal equation is given by:
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Thermodynamic Systems01:06

Thermodynamic Systems

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A thermodynamic system is a set of objects whose thermodynamic properties are of interest. The system is considered to be embedded in its surroundings or the environment. The system and its environment can exchange heat and do work on each other through a boundary that separates them. However, the immediate surroundings of the system interact with it directly and therefore have a much stronger influence on its behavior and properties.
Consider an example of  tea boiling in a kettle. The...
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相关实验视频

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Cooling an Optically Trapped Ultracold Fermi Gas by Periodical Driving
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在时间调节的非赫尔密斯系统中恢复阿迪亚巴特状态转移.

Ievgen I Arkhipov1, Fabrizio Minganti2,3, Adam Miranowicz4,5,6

  • 1Joint Laboratory of Optics of Palacký University and Institute of Physics of CAS, Faculty of Science, <a href="https://ror.org/04qxnmv42">Palacký University</a>, 17. listopadu 12, 771 46 Olomouc, Czech Republic.

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概括

研究人员通过沿着特定路径导航特殊点 (EP) 在非赫米特系统中实现对称状态转移. 这克服了以前的局限性,使控制模式切换能够实现先进的波浪操纵.

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科学领域:

  • 物理 物理学 物理
  • 量子力学就是量子力学.
  • 波浪现象是一种波浪现象.

背景情况:

  • 非赫米特系统表现出特殊点 (EP),光谱奇点减少系统的维度.
  • 围绕EPs被建议用于对称模式切换,但通常会由于失败的增性而产生不对称的转换.

研究的目的:

  • 在非赫米特系统中围绕EP时,理论上证明可实现的增平和对称状态转移.
  • 为了克服动态EP包围中固有的奇拉性.

主要方法:

  • 研究非赫尔密斯系统的特殊点.
  • 理论上分析了EP围绕的参数空间中的轨迹.
  • 识别参数空间路径,保持一个真实频谱的演化运算符.

主要成果:

  • 证明了围绕EP的特定轨迹可以实现附加性.
  • 实现了对称状态转换,与此前关于不对称模式转换的发现相反.
  • 展示了一种方法来克服取决于绕线方向的性.

结论:

  • 在非赫尔密斯系统中,围绕EP进行对称的亚底流通是可行的.
  • 关键在于选择参数空间轨迹,从而产生真实频谱.
  • 这一突破在量子和古典物理学中推进了波浪操纵协议.