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静電容量計算機

電荷と電圧から静電容量を求めます、C = Q/V。

はじめに

Capacitance Calculator — Capacitance from charge and voltage, C = Q/V. Enter Charge (C), Voltage (V) to get an instant, accurate result.

計算式

Capacitance is calculated as C = Q / V, where Q is the electric charge stored and V is the voltage across the capacitor.

ステップごとの説明

  1. Enter the Charge (C).
  2. Enter the Voltage (V).
  3. Click Calculate to see your result instantly.

実例

Example: With Charge (C) = 0.002, Voltage (V) = 5, the Capacitance Calculator gives Capacitance F: 0.0004.

よくある質問

What does capacitance measure?
Capacitance measures a component's ability to store electric charge per unit of voltage, measured in farads (F). One farad stores one coulomb of charge per volt.
What units does this calculator use?
Enter charge in coulombs (C) and voltage in volts (V) to get capacitance in farads (F). Because a farad is large, results are often expressed in microfarads (µF) or picofarads (pF).
What factors affect a capacitor's capacitance?
Physical capacitance depends on plate area, the distance between plates, and the dielectric material between them — this calculator instead derives capacitance from measured charge and voltage.
What inputs does the Capacitance Calculator need?
You'll need to provide: Charge (C), Voltage (V). All fields use sensible defaults, so you can see a working example immediately and then adjust the values to match your own numbers.
How accurate is the Capacitance Calculator?
The Capacitance Calculator applies the formula exactly as calculated — Capacitance is calculated as C = Q / V, where Q is the electric charge stored and V is the voltage across the capacitor. — so results are precise for the inputs you provide. Accuracy depends on entering correct, realistic input values.
Is the Capacitance Calculator free to use?
Yes, the Capacitance Calculator is completely free, requires no signup, and runs instantly in your browser.

静電容量計算機について

The Capacitance Calculator uses a real, verifiable formula — Capacitance is calculated as C = Q / V, where Q is the electric charge stored and V is the voltage across the capacitor. — so results are accurate every time, not an approximation.