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CHE-28

Damköhler number I

Da = k τ. Reaction rate over convective rate.

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DimensionlessDamköhler 1936

Governing equation

Da=kτDa=k\tau

where

k
Rate constant (1/s)
\tau
Residence time (s)
Da
Damköhler I ()

Lecture brief

Historical brief

From CSTR/PFR mole balances and Arrhenius rates to McCabe–Thiele stages and NTU exchangers, chemical engineering is conservation plus equilibrium. The lab is that design arithmetic. This sheet (CHE-28 — Damköhler number I) is the form associated with Damköhler 1936. Working symbols: kk, τ\tau \rightarrow DaDa. Damköhler compared the chemical time 1/k to the residence time τ. Da ≫ 1 means equilibrium, Da ≪ 1 means frozen flow.

Purpose

Purpose: compute DaDa from kk, τ\tau in Chemical engineering via Da=kτDa=k\tau Da = k τ. Reaction rate over convective rate. Use it when a real chemical engineering question must be answered in SI before a code check.

Live realistic example

In symbols

Live case. Given k=0.0501/sk = 0.050\,\mathrm{1/s}, τ=20.000s\tau = 20.000\,\mathrm{s}, the governing relation Da=kτDa=k\tau yields Da=1.000Da = 1.000\,\mathrm{—}. A reactor, a clock, a Da bar. Move a slider: the numbers are this situation, not a canned story.

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Outputs

  • Damköhler I Da1.000
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CHE-28 · reactor
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Narration of this film

A reactor, a clock, a Da bar.

Damköhler compared the chemical time 1/k to the residence time τ. Da ≫ 1 means equilibrium, Da ≪ 1 means frozen flow.

Reading speed

Watch on YouTube