#H_(2(g)) -> 5O_(2(g)) rArr "Interpreted Equation"#
We are looking for the mass of #H_(2(g))#
Recall #"no of moles" = "mass"/"molar mass"#
#"no of moles of" color(white)x O_(2(g)) = 5mols#
#"molar mass of" color(white)x O_(2(g)) = 16gmol^-1#
#5 = "mass"/16#
Cross multiply..
#"mass" = 5 xx 16#
#"mass" =80g color(white)x "of" color(white)x O_(2(g))#
From the initial equation..
#H_(2(g)) -> 5O_(2(g))#
Since #1mol color(white)x "of" color(white)x H_(2(g))# is needed to react with #5mols color(white)x "of" color(white)x O_(2(g))#
#:. xmols color(white)x of color(white)x H_(2(g))# will react with #80g color(white)x "of" color(white)x O_(2(g))#
#rArr 1/x = 5/80#
Cross multiplying..
#80 xx 1 = 5 xx x#
#80 = 5x#
Divide both sides by #5#
#80/5 = (5x)/5#
#80/5 = (cancel5x)/cancel5#
#80/5 = x#
#16 = x#
Therefore;
#"mass" =16g color(white)x "of" color(white)x H_(2(g))#
#16g color(white)x "of" color(white)x H_(2(g))# is needed to react with #5mols color(white)x "of" color(white)x O_(2(g))#
