Ethane burns in oxygen according to the following equation: `2C_(2)H_(6)(g) + 7O_(2)(g) rarr 4CO_(2)(g) + 6H_(2)O(I)` `2.5 L` of ethane are burnal in excess of oxygen at `27^(@)C` and 1 bar pressure. Calculate how many litre of `CO_(2)` are formed at `50^(@)C` and `1.5` bar.

Ethane burns in oxygen according to the following equation: `2C_(2)H_(

1.	Ethane burns in oxygen according to the following equation: `2C_(2)H_(6)(g) + 7O_(2)(g) rarr 4CO_(2)(g) + 6H_(2)O(I)` `2.5 L` of ethane are burnal in excess of oxygen at `27^(@)C` and 1 bar pressure. Calculate how many litre of `CO_(2)` are formed at `50^(@)C` and `1.5` bar.
Answer» The equation for the combustion reaction is : `underset(2vol("Litre"))(2C_(2)H_(6)(g)) + 7O_(2)(g) + underset(4vol("Litre"))(4CO_(2(g)) + 6H_(2)O(l)` Under the given conditions i.e., at `27^(@)C` and 1 bar pressure `2L` of ethane evolve `CO_(2)(g) = 4L` `2.5 L` of ethan evolve `CO_(2)(g) = (4L) xx ((2.5 L)/(2L)) = 5.0L` The volume of `CO_(2)(g)` at `50^(@)C` and `1.5` bar pressure can be pressure can be calculated with the help of gas equation. `V_(1) = 5.0L , V_(2) = ?` `P_(1) = 1` bar , `P_(2) = 1.5` bar `T_(1) = (27+273) = 300 K` , `T_(2) = 50+273 = 323 K` According to gas equation : `(P_(1)V_(1))/(T_(1)) = (P_(2)V_(2))/(T_(2))` or `V_(2) = (P_(1)V_(1)T_(2))/(P_(2)T_(1))` Substituting the values : `V_(2) = ((1 "atm" ) xx (5.0 L) xx (323 K))/((1.5 "atm") xx (3.00 K)) = 3.59 L`

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Ethane burns in oxygen according to the following equation: `2C_(2)H_(6)(g) + 7O_(2)(g) rarr 4CO_(2)(g) + 6H_(2)O(I)` `2.5 L` of ethane are burnal in excess of oxygen at `27^(@)C` and 1 bar pressure. Calculate how many litre of `CO_(2)` are formed at `50^(@)C` and `1.5` bar.

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