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Spherical and Cylindrical Capacitor01:26

Spherical and Cylindrical Capacitor

5.4K
A spherical capacitor consists of two concentric conducting spherical shells of radii R1 (inner shell) and R2 (outer shell). The shells have equal and opposite charges of +Q and −Q, respectively. For an isolated conducting spherical capacitor, the radius of the outer shell can be considered to be infinite.
Conventionally, considering the symmetry, the electric field between the concentric shells of a spherical capacitor is directed radially outward. The magnitude of the field,...
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Equivalent Capacitance01:19

Equivalent Capacitance

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Multiple capacitors can be connected in a circuit in series or parallel configuration. When the capacitor combination is connected to a battery, the potential drop across each capacitor and the magnitude of charge stored in the individual capacitor depends on the type of the connection. The capacitor combination is replaced by a single equivalent capacitor that stores the same amount of charge as the combination for a given potential difference.
The following strategies are adopted to calculate...
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Capacitor With A Dielectric01:18

Capacitor With A Dielectric

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Parallel plate capacitors consist of two conducting plates separated by a certain distance. However, it is mechanically difficult to hold the large plates parallel to each other without actual contact. Hence, a dielectric layer is commonly placed between the plates, which provides an easy solution for holding the plates together with a small gap and increases the capacitance of the capacitor.
Dielectrics are non-conducting materials with no free or loosely bound electrons. When a dielectric is...
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RC Circuits: Charging A Capacitor01:30

RC Circuits: Charging A Capacitor

3.7K
A circuit containing resistance and capacitance is called an RC circuit. A capacitor is an electrical component that stores electric charge by storing energy in an electric field. Consider a simple RC circuit having a DC (direct current) voltage source ε, a resistor R, a capacitor C, and a two-way position switch. In the circuit, the capacitor can be charged or discharged depending on the position of the switch.
When the switch is moved to connect the battery, the circuit reduces to a...
3.7K
Capacitors01:15

Capacitors

1.3K
Capacitors play a crucial role in car radios, where they filter and store frequencies to ensure clear signal reception. Essentially serving as energy storage devices, capacitors store energy within their electric field and are composed of two parallel conducting plates separated by a dielectric.
When a voltage source is connected to a capacitor, positive and negative charges accumulate on the opposite plates. This accumulation generates a potential difference that equals the product of the...
1.3K
Equivalent Capacitance01:19

Equivalent Capacitance

939
From the study of resistive circuits, it is understood that employing a series-parallel combination serves as an effective strategy for simplifying circuits. Capacitors can be arranged within a circuit in one of two ways: a series configuration or a parallel configuration. The way these capacitors are connected to a battery will influence both the potential drop across each individual capacitor and the size of the charge that each capacitor can store. This is determined by the specific type of...
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Updated: May 5, 2026

The Effect of Charging and Discharging Lithium Iron Phosphate-graphite Cells at Different Temperatures on Degradation
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異なる温度でダイオードを使用した充電電容器. II. II. II. II. II. II. II. II. II. II. II. II. II. II. II. II. II. II. II. II. II. II. II.

J M Mangum1, L L Bonilla2, A Torrente2

  • 1University of Arkansas, Department of Physics, Fayetteville, Arkansas 72701, USA.

Physical review. E
|February 20, 2026
PubMed
まとめ

この研究では,電子回路における熱エネルギー収集を数値的に調査しています. ダイオードは,抵抗器とは異なり,エネルギー収集のために電荷の蓄積を可能にし,性能は温度と回路設計によって異なります.

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Last Updated: May 5, 2026

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科学分野:

  • 物理 物理学 物理学とは
  • 電気工学 電気工学とは
  • 非線形ダイナミクス 非線形ダイナミクス

背景:

  • 熱エネルギーの収穫は,持続可能なエネルギー源を提供します.
  • ダイオードとコンデンサを備えた電子回路は,熱変動を修正することができます.
  • 以前の分析研究は,数学的調査のための基礎を築いた.

研究 の 目的:

  • 2つの異なる電子回路の熱エネルギー収集能力を数値的に評価する.
  • エネルギー採集における温度,容量,ダイオード品質の影響を調査する.
  • 温度グラデーションを持つ回路における安定状態の電荷蓄積を調査する.

主な方法:

  • ダイオード・コンデンササー回路の時間依存のフォッカー・プランク方程式の数値解.
  • ダイオード付きの2回路回路のための時間独立のフォッカー・プランク方程式の数値解.
  • ディオード付き回路とレジスタンス付き回路の比較分析.

主要な成果:

  • 連続ダイオード-コンデンササー回路は一時的な充電を示し,ピーク充電は温度,容量,ダイオード品質によって増加します.
  • 異なる温度でダイオードを搭載した2回路回路は,貯蔵電容器に非ゼロ,対極の安定状態の電荷を蓄積する.
  • ダイオードではなくレジスタを使用する回路は,一時的な電荷の蓄積または安定状態の電荷の蓄積を示さない.

結論:

  • ダイオードを使用した電子回路は熱エネルギーを収集し,特定の条件下で電荷の蓄積を証明します.
  • 2回路回路における観測された安定状態の電荷は,温度グラデーションを用いた指向されたエネルギーフローの可能性を強調しています.
  • ダイオードは,受動抵抗器とは異なり,熱ノイズを可用電荷に整頓するために不可欠です.