Ammonia is produced industrially by reacting N2 with H2 at elevated pressure and temperature in the presence of a catalyst: N2(g) + H2(g) -----> NH3(g) (unbalanced) In actual practice, this reaction gives a yield of only 13%, taking this into account what mass of ammonia would be produced from a 1:1 mole ratio mixture in a reactor that has a volume of 7.82 x 103 L, under a total pressure of 245 bar at T = 677°C?

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Problem 32CR: When calcium carbonate is heated strongly, it evolves carbon dioxide gas. CaCO3(s)CaO(s)+CO2(g) 25 g...
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Ammonia is produced industrially by reacting N2 with H2 at elevated pressure and temperature in the presence of a catalyst:

N2(g) + H2(g) -----> NH3(g) (unbalanced)
In actual practice, this reaction gives a yield of only 13%, taking this into account what mass of ammonia would be produced from a 1:1 mole ratio mixture in a reactor that has a volume of 7.82 x 103 L, under a total pressure of 245 bar at T = 677°C?
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