Spannungsabfall-Rechner
Schätzen Sie den Spannungsabfall über eine Kabelstrecke anhand der NEC-Formel, basierend auf Querschnitt und Länge.
Tilgungsplan
| # | Zahlung | Kapital | Zinsen | Restschuld |
|---|---|---|---|---|
Wachstum über die Zeit
| Jahr | Investiert | Wert |
|---|---|---|
Einführung
Voltage Drop Calculator — Estimate voltage drop over a wire run using the NEC formula, by gauge and length. Enter Source voltage (V), Current (A), One-way length (ft), Wire gauge, Conductor material, Phase to get an instant, accurate result.
Formel
NEC Chapter 9, Table 8 approximate method: VD = (2 × K × I × L) / CM for single-phase, or VD = (√3 × K × I × L) / CM for three-phase, where K = 12.9 ohm-cmil/ft for copper (21.2 for aluminum), I is load current, L is one-way conductor length in feet, and CM is the conductor's circular-mil area.
Schritt für Schritt
- Enter the Source voltage (V).
- Enter the Current (A).
- Enter the One-way length (ft).
- Enter the Wire gauge.
- Enter the Conductor material.
- Enter the Phase.
- Click Calculate to see your result instantly.
Praxisbeispiel
Example: With Source voltage (V) = 120, Current (A) = 20, One-way length (ft) = 100, Wire gauge = 12, Conductor material = copper, Phase = no, the Voltage Drop Calculator gives Voltage Drop V: 7.902, Voltage Drop Pct: 6.585, Circular Mils Used: 6530.
Häufig Gestellte Fragen
What voltage drop percentage is acceptable?
Why does one-way length matter, not round-trip?
Does wire material matter?
What inputs does the Voltage Drop Calculator need?
How accurate is the Voltage Drop Calculator?
Is the Voltage Drop Calculator free to use?
Über Spannungsabfall-Rechner
The Voltage Drop Calculator uses a real, verifiable formula — NEC Chapter 9, Table 8 approximate method: VD = (2 × K × I × L) / CM for single-phase, or VD = (√3 × K × I × L) / CM for three-phase, where K = 12.9 ohm-cmil/ft for copper (21.2 for aluminum), I is load current, L is one-way conductor length in feet, and CM is the conductor's circular-mil area. — so results are accurate every time, not an approximation.