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相关概念视频

Ampere-Maxwell's Law: Problem-Solving01:17

Ampere-Maxwell's Law: Problem-Solving

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A parallel-plate capacitor with capacitance C, whose plates have area A and separation distance d, is connected to a resistor R and a battery of voltage V. The current starts to flow at t = 0. What is the displacement current between the capacitor plates at time t? From the properties of the capacitor, what is the corresponding real current?
To solve the problem, we can use the equations from the analysis of an RC circuit and Maxwell's version of Ampère's law.
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Ampere's Law: Problem-Solving01:31

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Ampere's law states that for any closed looped path, the line integral of the magnetic field along the path equals the vacuum permeability times the current enclosed in the loop. If the fingers of the right hand curl along the direction of the integration path, the current in the direction of the thumb is considered positive. The current opposite to the thumb direction is considered negative.
Specific steps need to be considered while calculating the symmetric magnetic field distribution...
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Energy Stored in a Capacitor: Problem Solving01:26

Energy Stored in a Capacitor: Problem Solving

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In 1749, Benjamin Franklin coined the word battery for a series of capacitors connected to store energy. Capacitors store electric potential energy that can be released over a short time. This property means capacitors have a wide range of applications.
Capacitor-discharge ignition is a type of ignition system commonly found in small engines where the energy released from a capacitor ignites an induction coil that, in turn, fires the spark plug.
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Potential Energy00:52

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The energy stored by a structure and location of matter in space is called potential energy. For instance, raising a kettlebell changes its spatial location and increases its potential energy. Similarly, a stretched rubber band contains potential energy which, under certain conditions, can be converted into other forms of energy, such as kinetic energy.
Chemical bonds that form attractive forces between atoms also contain potential energy, called chemical energy. When a chemical reaction...
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Potential Energy01:09

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A conservative force, such as a gravitational or elastic force, gives the body the capacity to do work. This capacity, measured as the potential energy, depends on the body's location or “position” relative to a fixed reference position or datum. The gravitational potential energy is considered zero at the reference point. Suppose a body is located at some vertical distance above a fixed horizontal reference or datum. In that case, the weight of the body has positive gravitational potential...
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The Quantum-Mechanical Model of an Atom02:45

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Shortly after de Broglie published his ideas that the electron in a hydrogen atom could be better thought of as being a circular standing wave instead of a particle moving in quantized circular orbits, Erwin Schrödinger extended de Broglie’s work by deriving what is now known as the Schrödinger equation. When Schrödinger applied his equation to hydrogen-like atoms, he was able to reproduce Bohr’s expression for the energy and, thus, the Rydberg formula governing hydrogen spectra.
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为能源材料利用量子计算:机遇和挑战

Seongmin Kim1, In-Saeng Suh1, Travis S Humble2

  • 1National Center for Computational Sciences, Oak Ridge National Laboratory, Oak Ridge, Tennessee 37830, United States.

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量子计算 (QC) 为开发先进的能源材料提供了一种新方法,克服了经典方法的局限性. 将质量控制与经典方法相结合,可以加速设计和模拟高效,可持续的能源材料.

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科学领域:

  • 材料科学 材料科学 材料科学
  • 量子计算是一种量子计算.
  • 计算化学的计算化学

背景情况:

  • 古典计算方法对于能源材料的开发至关重要,但与复杂的,高维的系统作斗争.
  • 高性能材料对于能源效率,可持续性和成本降低至关重要.
  • 量子计算 (QC) 为解决难以解决的计算问题提供了一个新的范式.

研究的目的:

  • 探索量子计算 (QC) 在推进能源材料研究方面的潜力.
  • 对复杂的材料系统应用质量控制的挑战和机会进行识别.
  • 为能源材料设计和模拟提出混合量子-经典方法.

主要方法:

  • 对经典计算材料科学当前局限性的审查.
  • 讨论用于材料模拟的量子计算原理 (叠加,纠).
  • 对于能源材料的混合量子-经典算法的案例研究.

主要成果:

  • 质量控制为材料建模中克服缩放和时间复杂性问题提供了一条途径.
  • 混合方法可以利用QC的力量来实现实际的能源材料设计.
  • 错误纠正,容错QC承诺预测准确性和量子优势.

结论:

  • 量子计算对革命性能源材料发现具有重大前景.
  • 混合量子经典方法是近期应用的关键.
  • 未来的耐故障QC将使材料科学取得前所未有的突破.