Overview
Engineering reference data for Electric Resistance Wires in electrical engineering.
Key Formulas
Ohm's Law
Voltage = Current × Resistance.
Power
Electrical power.
Energy
Energy = Power × Time.
Variables
| Symbol | Description | Unit |
|---|---|---|
| Voltage | V | |
| Current | A | |
| Resistance | Ω | |
| Power | W |
Data Table: Nickel-Chromium Heater Wire Specifications
Key Formulas in Example
The example calculation for heater wire length uses the following fundamental relationships derived from Ohm's Law and electrical power:
- Electric Power:
- Current:
- Resistance (Ohm's Law):
- Wire Length from Total Resistance: Where is the required total resistance of the heater element, and is the resistance per unit length of the chosen wire.
Worked Example
Goal: Calculate the length of an 18 SWG nickel-chromium wire for an electric heater rated at 2000 W on a 230 V supply, with a maximum wire temperature of 500°C.
Steps:
-
Find Required Current: Check: From the table, 18 SWG wire can handle up to 13 A at 500°C. 8.7 A is within the safe operating limit.
-
Find Total Required Resistance:
-
Find Resistance per Meter: From the data table, the resistance for 18 SWG wire is .
-
Calculate Wire Length:
Result: Approximately 28.7 meters of 18 SWG nickel-chromium wire are required.
Definitions and Notes
- SWG (Standard Wire Gauge): An imperial system for specifying wire diameter, historically used in the UK and Commonwealth countries.
- Nickel-Chromium (NiCr): A family of alloys (often branded as Nichrome) characterized by high electrical resistance, high melting point, and good corrosion resistance at elevated temperatures. These properties make them ideal for heating elements.
- Temperature Rise vs. Current: The table shows that for a given wire gauge, a higher current is required to achieve a higher temperature rise. For a fixed current, a thinner wire (higher SWG number) will reach a higher temperature due to its higher resistance per unit length.