サインイン

When an archer pulls the string in a bow, he saves the work done in the form of elastic potential energy. When he releases the string, the potential energy is released as kinetic energy of the arrow. A capacitor works on the same principle in which the work done is saved as electric potential energy. The potential energy (UC) could be calculated by measuring the work done (W) to charge the capacitor.

Equation1

Let us consider the case of a parallel plate capacitor. When the capacitor is connected to a battery, the plate attached to the battery's negative side gets more electrons, repelling more electrons in the other plate. Hence the second plate gets an equal positive charge. At any instant of time when the capacitor is getting charged, if q and V are the charge and potential difference across the plates, respectively, then they are related by the following equation:

Equation2

In equation (2), C is the capacitance of the parallel plate capacitor. As the capacitor is being charged, the charge gradually builds upon its plates, and after some time, it reaches the final value Q. The amount of work done (dW) to move a charge element dq is Vdq. We get the potential energy stored in the capacitor using the equations (1) and (2). Thus,

Equation3

We can now find the energy density stored in vacuum between the plates of a charged parallel-plate capacitor from the potential energy stored in a capacitor. The energy density is then defined as the potential energy per unit volume. If A and d are the area and distance between the plates, then from the expressions for electric field and capacitance, that is E = σ/εo and C = εo A/d, the energy density is obtained as:

Equation4

タグ
Energy StoredCapacitorElastic Potential EnergyKinetic EnergyElectric Potential EnergyWork DoneParallel Plate CapacitorChargePotential DifferenceCapacitanceEnergy DensityElectric Field

章から 25:

article

Now Playing

25.5 : Energy Stored in a Capacitor

静電容量

3.4K 閲覧数

article

25.1 : コンデンサとキャパシタンス

静電容量

7.1K 閲覧数

article

25.2 : 球形および円筒形コンデンサ

静電容量

5.2K 閲覧数

article

25.3 : 直列および並列のコンデンサ

静電容量

3.7K 閲覧数

article

25.4 : 等価静電容量

静電容量

1.3K 閲覧数

article

25.6 : コンデンサに蓄積されたエネルギー:問題解決

静電容量

977 閲覧数

article

25.7 : 誘電体付きコンデンサ

静電容量

3.7K 閲覧数

article

25.8 : コンデンサの誘電体分極

静電容量

4.4K 閲覧数

article

25.9 : 誘電体におけるガウスの法則

静電容量

4.0K 閲覧数

article

25.10 : 偏光物体による電位

静電容量

327 閲覧数

article

25.11 : 感受性、誘電率、誘電率

静電容量

1.2K 閲覧数

article

25.12 : 誘電体における静電境界条件

静電容量

941 閲覧数

JoVE Logo

個人情報保護方針

利用規約

一般データ保護規則

研究

教育

JoVEについて

Copyright © 2023 MyJoVE Corporation. All rights reserved