Hydrogen Flow Rate Calculator (Electrolysis)
Calculate H₂ production rate based on Faraday's Law
Understanding Hydrogen Flow Rate Calculation
In the field of hydrogen production, specifically water electrolysis, calculating the flow rate is essential for sizing storage tanks, compressors, and downstream piping. The production of hydrogen is directly proportional to the electrical current passing through the electrolytic cells.
The Formula: Faraday's First Law
The theoretical production of hydrogen is determined by Faraday's Law of Electrolysis. The formula used in this calculator is:
ṁ = (I × N × η × M) / (z × F)
- I: Current in Amperes (A)
- N: Number of cells in the electrolyzer stack
- η: Faraday Efficiency (typically 90-98%)
- M: Molar mass of H₂ (approx. 2.016 g/mol)
- z: Valency of H₂ (2 electrons per molecule)
- F: Faraday Constant (96,485.33 C/mol)
Common Hydrogen Units Explained
| Unit | Description |
|---|---|
| kg/hr | Mass flow rate of hydrogen per hour. Most common for industrial sizing. |
| Nm³/hr | Normal cubic meters per hour (measured at 0°C and 1.01325 bar). |
| SCFH | Standard Cubic Feet per Hour (measured at 60°F and 14.7 psia). |
Example Calculation
Suppose you have an electrolyzer stack with 120 cells operating at 600 Amperes with a 95% Faraday efficiency.
First, we calculate the molar flow: (600 A × 120 cells × 0.95) / (2 × 96485) = 0.3544 mol/s of H₂.
Converting this to mass: 0.3544 mol/s × 2.016 g/mol = 0.7145 g/s, which equals 2.57 kg/hr.