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kWh Calculator 3 Phase Formula

3-Phase kWh Formula:

\[ kWh = \frac{\sqrt{3} \times V \times I \times PF \times h}{1000} \]

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(0 to 1)
hours

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1. What is 3-Phase kWh Calculation?

The 3-phase kWh calculation determines the energy consumption in three-phase electrical systems, which are commonly used in industrial and commercial applications. It accounts for the balanced three-phase power delivery.

2. How Does the Calculator Work?

The calculator uses the 3-phase power formula:

\[ kWh = \frac{\sqrt{3} \times V \times I \times PF \times h}{1000} \]

Where:

Explanation: The formula calculates real power consumption by accounting for all three phases and the power factor.

3. Importance of 3-Phase Power Calculation

Details: Accurate 3-phase energy calculation is essential for electrical system design, energy monitoring, utility billing, and equipment sizing in industrial applications.

4. Using the Calculator

Tips: Enter line-to-line voltage in volts, current in amperes, power factor (typically 0.8-1.0), and operating hours. All values must be positive numbers.

5. Frequently Asked Questions (FAQ)

Q1: What's the difference between line-to-line and line-to-neutral voltage?
A: In 3-phase systems, line-to-line voltage is √3 times the line-to-neutral voltage (e.g., 400V line-to-line = 230V line-to-neutral).

Q2: Why is power factor important?
A: Power factor accounts for phase difference between voltage and current. Lower PF means more current is needed for the same real power.

Q3: Can I use this for single-phase calculations?
A: No, for single-phase use: kWh = (V × I × PF × h) / 1000 (without the √3 factor).

Q4: What's typical power factor for industrial loads?
A: Induction motors typically have 0.85 PF, fluorescent lighting 0.5-0.9, while resistive loads have PF=1.

Q5: How accurate is this calculation?
A: It's accurate for balanced 3-phase systems with steady loads. For varying loads, integrate over time intervals.

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