Question #67604

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Question #67604

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Answer 1 · 2017-01-25T09:05:09

Trial and error process

Given equation

$C_{3} H_{5} {(N O_{3})}_{3} \to N_{2} + O_{2} + C O_{2} + H_{2} O$ $C_3H_5 (NO_3)_3 -> N_2 + O_2+ CO_2 + H_2O$

If we inspect both sides of the given equation, we see that in LHS no.of H-atom is odd whereas it is even in RHS.So to make no.of H-atoms in both sides even we are to multiply LHS by 2.But to equate no. of H-atoms of both sides we are to multiply $H_{2} O$ $H_2O$ of RHS by 5. Now if we compare the no.of O-atom on both sides. we see there is a mismatch.In LHS no. of O-atoms is even but it is odd in RHS.So multiplication factor 2 in LHS is replaced by 4 and that of $H_{2} O$ $H_2O$ at RHS is replaced by 10.

Now the odd-even mismatch on O and H atoms on both sides will not exist and we can proceed to adjust other multiplication factors.And finally we get the following balanced equation.

$4 C_{3} H_{5} {(N O_{3})}_{3} \to 6 N_{2} + O_{2} + 12 C O_{2} + 10 H_{2} O$ $4C_3H_5 (NO_3)_3 ->6N_2 + O_2+ 12CO_2 + 10H_2O$

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Question #67604

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