Viscosity (Andrade Equation)

Calculate the temperature-dependent dynamic viscosity of a liquid using the Andrade equation, an Arrhenius-type model relating viscosity to activation energy and temperature.

 
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Physical Constants Reference
ConstantSymbolValue
Speed of lightc2.99792458×10⁸
Planck's constanth6.62607015×10⁻³‴
Boltzmann constant1.380649×10⁻²³
Avogadro's numberNₐ6.02214076×10²³
Gravitational constantG6.6743×10⁻¹¹
Gas constantR8.31446
Elementary chargee1.602176634×10⁻¹⁹
Electron massmₑ9.1093837015×10⁻³¹
Proton massmₚ1.67262192369×10⁻²⁷
Fine-structure constantα7.2973525693×10⁻³
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How It Works

Calculate the temperature-dependent dynamic viscosity of a liquid using the Andrade equation, an Arrhenius-type model relating viscosity to activation energy and temperature

Each component has a specific meaning:

  • Andrade equation — The andrade equation recorded for the scenario being assessed.
  • Arrhenius-type model relating viscosity — The arrhenius-type model relating viscosity recorded for the scenario being assessed.

Note: Interpret the andrade viscosity result against the thresholds and context described above.

How to Use

Enter the Andrade equation, Arrhenius-type model relating viscosity for the scenario you are assessing. Calculate the temperature-dependent dynamic viscosity of a liquid using the Andrade equation, an Arrhenius-type model relating viscosity to activation energy and temperature. Use the andrade viscosity result to inform your calculation.

Frequently Asked Questions