11.2 litre of a hydrocarbon at STP produces 44.8 litre of `CO_(2)` at STP and 36 gm of `H_(2)O` during its combustion. Calculate the molecular formula of hydrocarbon.

A 27 g sample of an unknown hydrocarbon was burned in excess O_(2) to form 88g of CO_(2) and 27g of H_(2)O .What is possible molecular formula of hydrocarbon

1 litre of a hydrocarbon weight as much as one litre of CO_(2) . The moleecular formula of hydrocarbon is :-

A gaseous hydrocarbon on complete combustion gives 3.38 g of CO_(2) and 0.690 g of H_(2)O and no other product. The empirical formula of the hydrocarbon is

500 ml of a gaseous hydrocarbon when burnt in excess of O_(2) gave 2.0litres of CO_(2) and 2.5 litres of water vapours under same conditions. molecular formula of the hydrocarbon is:-

1.5 g of hydrocarbon on combustion in excess of oxygen produces 4.4 g of CO_(2) and 2.7 g of H_(2)O , the data illustrates

6g of a hydrocarbon on combustion in excess of oxygen produces 17.6g of CO_(2) and 10.8g of H_(2)O . The data illustrates the law of :