- Fluid density ρ
- 1000kg/m³
- Cross-sectional area A
- 0.01m²
- Flow velocity v
- 2m/s
20.0000kg/s
Open with these values20.0000kg/s
Result: 20.0000 kg/sMass flow rate is density times area times velocity: ṁ = ρ × A × v, in kilograms per second. Water at 2 m/s through a 0.01 m² pipe carries 20 kg/s. The same pipe moves 0.02 m³ of volume per second — density is the only thing between the two figures.
Held fixed: Fluid density ρ 1,000.000000 kg/m³, Cross-sectional area A 0.010000 m².
| Flow velocity v (m/s) | Result (kg/s) |
|---|---|
| 0.000000 | 0.0000 |
| 0.500000 | 5.0000 |
| 1.000000 | 10.0000 |
| 1.500000 | 15.0000 |
| 2.000000Your value | 20.0000 |
| 2.500000 | 25.0000 |
| 3.000000 | 30.0000 |
| 3.500000 | 35.0000 |
| 4.000000 | 40.0000 |
20.0000kg/s
Open with these values6.1250kg/s
Open with these values32.3850kg/s
Open with these valuesṁ = ρ × A × v
| ρ, A, v | Fluid | ṁ (kg/s) |
|---|---|---|
| 1000, 0.01, 2 | Water in a pipe | 20 |
| 1.225, 0.5, 10 | Air in a duct | 6.125 |
| 997, 0.0005, 3 | Water, small bore | 1.4955 |
| 13534, 0.002, 0.5 | Mercury | 13.534 |
| 850, 0.0254, 1.5 | Light oil | 32.385 |
Multiply density by cross-sectional area and by flow velocity: ṁ = ρ × A × v. With kg/m³, m² and m/s the answer is in kilograms per second — water through a 0.01 m² pipe at 2 m/s gives 20 kg/s.
It is the amount of mass passing a cross-section each second, measured in kilograms per second. It is the figure that matters for pipe sizing, pump selection, ventilation and engine design, because it says how much material actually moves rather than how fast.
Volumetric flow rate measures the volume per second in m³/s, mass flow rate the mass per second in kg/s. The two are linked by density: ṁ = ρ × Q. For gases the density changes with pressure and temperature, so the mass figure is usually the more reliable one.
Kilograms per cubic metre for density, square metres for area and metres per second for velocity. If your area is in cm², divide by 10 000; if your speed is in km/h, divide by 3.6 before entering it.
All three inputs scale it directly, because the formula multiplies them: double the density, the area or the speed and the mass flow doubles. Where a pipe narrows the speed must rise, which keeps the mass flow rate constant along the pipe.
Information, not professional advice.
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