Reference data and engineering information about oxygen o2 dynamic kinematic viscosity temperature pressure for fluid mechanics applications.
Engineering reference data for Oxygen O2 Dynamic Kinematic Viscosity Temperature Pressure in fluid mechanics.
Re=μρvD
Ratio of inertial to viscous forces — determines flow regime.
P+21ρv2+ρgh=const
Conservation of energy for steady, inviscid, incompressible flow.
A1v1=A2v2
Conservation of mass for incompressible flow.
ΔP=fDL2ρv2
Pressure drop due to friction in a pipe.
| Symbol |
Description |
Unit |
| Re |
Reynolds number |
— |
| ρ |
Fluid density |
kg/m³ |
| v |
Flow velocity |
m/s |
| D |
Characteristic dimension |
m |
| μ |
Dynamic viscosity |
Pa·s |
| P |
Pressure |
Pa |
| f |
Darcy friction factor |
— |
| Unit |
Equivalent in Other Units |
| 1 cP |
0.001Pa s=0.01P=0.01g/(cm s)=6.72197×10−4lb/(ft s)=2.4191lb/(ft h) |
| 1 lb/(ft h) |
0.00027778lb/(ft s)=0.00041338Pa s=0.0041338P=0.41338cP |
| 1 lb/(ft s) |
3600lb/(ft h)=1.48816Pa s=14.8816P=1488.16cP |
| 1 kg/(m s) |
1Pa s=10P=1000cP=0.672197lb/(ft s)=2419.09lb/(ft h) |
| 1 (N s)/m² |
1kg/(m s)=1Pa s=10P=1000cP=0.672197lb/(ft s)=2419.09lb/(ft h) |
| Unit |
Equivalent in Other Units |
| 1 cm²/s |
1St=100mm²/s=100cSt=1×10−4m²/s=0.36m²/h=1.07639×10−3ft²/s=3.875008ft²/h=0.1550003in²/s |
| 1 cSt |
1mm²/s=0.01St=1×10−6m²/s=0.0036m²/h=1.07639×10−5ft²/s=0.03875008ft²/h=0.001550003in²/s |
| 1 ft²/h |
$2.7778 \times 10^ , \ |