How many grams of ammonia, $NH_3$ , would be formed from the complete reaction of 4.50 moles hydrogen, $H_2$ in the reaction $N_2 + 3H_2 -> 2NH_3$ ?

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How many grams of ammonia, $NH_3$ , would be formed from the complete reaction of 4.50 moles hydrogen, $H_2$ in the reaction $N_2 + 3H_2 -> 2NH_3$ ?

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Answer 1 · 2016-08-01T07:50:07

Approx. $54*g" ammonia"$

Explanation:

You have almost solved this problem yourself, because you have written a stoichiometrically balanced equation, which establishes equivalent mass:

$N_2(g) + 3H_2(g)rightleftharpoons 2NH_3(g)$

This tells us that $28*g$ of dinitrogen combines with $6*g$ dihydrogen to give $34*g$ of ammonia. I take it that you know how I got these equivalent masses (if no, I am happy to explain).

You have $4.5*mol$ dihydrogen, and thus, at most I can form $4.5*mol*H_2xx(2*mol" ammonia")/(3*mol" dihydrogen")$ $=$ $3*mol*" ammonia"$ .

$"Mass of ammonia"$ $=$ $"moles "xx" molar mass"$ $=$ $3*molxx17.0*g*mol^-1$ $=$ $??g$

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How many grams of ammonia, $NH_3$ , would be formed from the complete reaction of 4.50 moles hydrogen, $H_2$ in the reaction $N_2 + 3H_2 -> 2NH_3$ ?

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Explanation:

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How many grams of ammonia, NH_3NH_3, would be formed from the complete reaction of 4.50 moles hydrogen, H_2H_2 in the reaction N_2 + 3H_2 -> 2NH_3N_2 + 3H_2 -> 2NH_3?

1 Answer

Explanation:

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How many grams of ammonia, $NH_3$ , would be formed from the complete reaction of 4.50 moles hydrogen, $H_2$ in the reaction $N_2 + 3H_2 -> 2NH_3$ ?