A mixtureof FeO and Fe_(3)O_(4)whenheated in air to a constantweight,gains 5% in weight. Findthe compositionof the initialmixture.

A mixtureof FeO and Fe_(3)O_(4)whenheated in air to a constantweight,g

1.	A mixtureof FeO and Fe_(3)O_(4)whenheated in air to a constantweight,gains 5% in weight. Findthe compositionof the initialmixture.
Answer» Solution :When FeO and `Fe_(3) O_(4)` are heated, both change to ` Fe_(2) O_(3)` . Let the weights of FeO and `Fe_(3) O_(4)` be X g and y respectively . `:.` when FeO and `Fe_(3) O_(4)` change completelyto `Fe_(2) O_(3)` the wt. of `Fe_(2)O_(3) = (105)/( 100) XX ( x + y) = 1. 05 ( x + y) g` Now, `{:(FeO + Fe3 O_(4) to Fe_(2) O_(3)),("xgyg1 . 05 (x + y) g "):}` Applying POAC for Fe atoms, molesof Fe in FeO + moles of Fe in `Fe_(3) O_(4)` = moles of Fe in `Fe_(2) O_(3)` `1 xx` moles of FeO + `3 xx ` moles of `Fe_(3) O_(4) = 2 xx ` moles of `Fe_(2) O_(3)` `(x)/(72) + (3Y)/( 232) = (2 xx 1.05 (x + y))/( 160) [{:(" "FeO = 72),(Fe_(3)O_(4)=232),(Fe_(2)O_(3)=160):}]` Dividingby y, we get `(1)/( 72) xx (x)/( y) + (3)/( 232) = ( 2 xx 1.05) xx (x)/(y) + ( 2 + 1.05)/( 160)` `(x)/(y) ((1)/( 27) - (2 . 1)/( 160)) = (2 . 1)/( 160) - (3)/( 232)` `(x)/( y) = ( 81)/( 319)` `:. % " of FeO" = (81)/( ( 81 + 310)) xx 100 = 20.02 %` and `% of Fe_(3) O_(4) = (319)/(( 81 + 319)) xx 100 = 70 . 98 %`