Gas Molar Flow Rate Calculator
Calculate the molar flow rate ($n$) based on volumetric flow, pressure, and temperature using the Ideal Gas Law.
Calculation Results:
Where R = 8.314 J/(mol·K)
How to Calculate Molar Flow Rate of Gas
Understanding the molar flow rate is essential in chemical engineering, process dynamics, and thermodynamics. Unlike volumetric flow rate, which changes based on pressure and temperature, the molar flow rate represents the actual amount of substance (number of moles) passing through a system per unit of time. This makes it a critical metric for mass balance calculations.
The Molar Flow Rate Formula
For gases, the most common way to calculate the molar flow rate is by deriving it from the Volumetric Flow Rate using the Ideal Gas Law. The formula is:
Where:
- n = Molar Flow Rate (mol/s)
- P = Absolute Pressure (Pa)
- V = Volumetric Flow Rate (m³/s)
- R = Universal Gas Constant (approx. 8.314 J/(mol·K))
- T = Absolute Temperature (Kelvin)
Step-by-Step Calculation Example
Let's calculate the molar flow rate for an air compressor system with the following readings:
- Flow Rate: 500 m³/h
- Pressure: 2 bar (gauge pressure assumed absolute for this example)
- Temperature: 25 °C
Step 1: Convert units to SI (Standard International) units.
- Pressure: 2 bar × 100,000 = 200,000 Pa
- Flow: 500 m³/h ÷ 3600 = 0.1389 m³/s
- Temperature: 25 °C + 273.15 = 298.15 K
Step 2: Apply the Ideal Gas Law.
n = (200,000 × 0.1389) / (8.314 × 298.15)
n = 27,780 / 2,478.8
n ≈ 11.21 mol/s
Why Convert Volumetric Flow to Molar Flow?
In gas systems, volume is not a conserved quantity. If you compress gas, the volume decreases, but the amount of gas (moles) remains constant. When designing reactors, piping systems, or analyzing chemical reactions, engineers must use molar flow rates to ensure stoichiometry is respected and mass balances are accurate.