MAT-03
Arrhenius rate
k = A exp(−Ea /(R T)) for thermally activated processes.
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KineticsArrhenius 1889
Governing equation
where
- A
- Pre-factor (1/s)
- E_a
- Activation energy (kJ/mol)
- T
- Temperature (K)
- k
- Rate constant (1/s)
Lecture brief
Historical brief
Hooke (1678), Hall–Petch grain size, Arrhenius activation and Paris fatigue-crack growth are the spine of materials selection. The sheets relate stress, microstructure and life. This sheet (MAT-03 — Arrhenius rate) is the form associated with Arrhenius 1889. Working symbols: , , . Arrhenius wrote the temperature law of chemical (and later diffusion/creep) rates as an exponential of −Ea/RT.
Purpose
Purpose: compute from , , in Materials via k = A exp(−Ea /(R T)) for thermally activated processes. Use it when a real materials question must be answered in SI before a code check.
Live realistic example
In symbols
Live case. Given , , , the governing relation yields . Single barrier, constant A and Ea. Move a slider: the numbers are this situation, not a canned story.
Calculator
Inputs
Outputs
- Rate constant k5975129.7853 1/s
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Narration of this film
Single barrier, constant A and Ea.
Arrhenius wrote the temperature law of chemical (and later diffusion/creep) rates as an exponential of −Ea/RT.
Reading speed
Watch on YouTube