Molecules fall onto the iron catalyst bed. When N≡N breaks and 3 H atoms are available, NH₃ forms and rises to the outlet.
Nitrogen (N) Hydrogen (H) Ammonia (NH₃) Fe catalyst bed
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Equilibrium yield vs. pressure

Curve shows the approximate NH₃ equilibrium mole-fraction at the current temperature as pressure varies (illustrative industrial trend, not a rigorous Gibbs-energy calculation). The dot marks your current temperature/pressure setting.

NH₃ → NPK fertilizers
Urea CO(NH₂)₂ 46-0-0
Ammonium nitrate NH₄NO₃ 34-0-0
Typical NPK blend 20-10-10
N — from this NH₃ P — phosphate rock K — potash

Numbers are the label N-P-K percentages by weight. This reactor only supplies the nitrogen (N) leg of the triad — ammonia is oxidized to nitric acid or reacted with CO₂/acids to make urea and ammonium nitrate; phosphorus and potassium in a blended fertilizer come from mined phosphate rock and potash, not from Haber-Bosch.

Haber-Bosch Ammonia Synthesis & NPK Fertilizers

A 3D reactor visualizing the Haber-Bosch process: nitrogen and hydrogen molecules, fed in their real 1:3 ratio, fall onto an iron catalyst bed where the N≡N triple bond breaks and NH₃ forms and rises to the outlet. Temperature and pressure sliders drive both the reaction kinetics and the equilibrium yield shown on the live chart, following Le Chatelier's principle. A second panel shows how the ammonia produced becomes real nitrogen fertilizers — urea, ammonium nitrate and NPK blends.