A mixture of `FeO` and `Fe_(3)O_(4)` when heated in air to a constant weight, gains 5% of its weight. Find the composition of the intial mixutre.

A mixture of `FeO` and `Fe_(3)O_(4)` when heated in air to a constant

1.	A mixture of `FeO` and `Fe_(3)O_(4)` when heated in air to a constant weight, gains 5% of its weight. Find the composition of the intial mixutre.
Answer» Let the total mass of mixture = 100 g Let the mass of FeO in the mixture = x g `:.` Mass of `Fe_(3)O_(4)` in the mixture = (100-x)g Both the oxides on heating in air are converted to `Fe_(2)O_(3)` Step I. Calculation of mass of `Fe_(2)O_(3)` from `FeO` `{:(2FeO+,(1)/(2)O_(2)rarr,Fe_(2)O_(3)),(2(56+16),,2xx56+3xx16),(=144g,,=160g):}` 144g of FeO upon oxidation form `Fe_(2)O_(3)=160g` `:.` xg of FeO upon oxidation form `Fe_(2)O_(3)=(160)/(144)xx xg` Step II. Calculation of mass of `Fe_(2)O_(3)` from `Fe_(3)O_(4)` `{:(2Fe_(3)O_(4)+(1)/(2)O_(2),overset("Heat")(rarr),3Fe_(2)O_(3)),(2(3xx56+4xx16),,3(2xx56+3xx16)),(=464g,,=480g):}` 464g of `Fe_(3)O_(4)` upon oxidation form `Fe_(2)O_(3) = 48` g (100-x)g of `Fe_(3)O_(4)` upon oxidation form `Fe_(2)O_(3) = (480)/(464)(100-x)g` Step III. Calculation of percentage composition of the mixture Total mass of `Fe_(2)O_(3)` actually formed `= 100 +5 = 105` g `:. (160x)/(144)+(480)/(464)(100-x)=105,1.11x+1.034(100-x)=105` `1.11x+103.4-1.034x =105` `1.11x-1.034x=105-103.4 or0.076=1.6orx=(1.6)/(0.076)=21g` % of FeO in the sample `= ((21 g))/((100 g))xx100 = 21 %` % of `Fe_(3)O_(4)` in the sample `= 100 - 21 = 79 %`.

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A mixture of `FeO` and `Fe_(3)O_(4)` when heated in air to a constant weight, gains 5% of its weight. Find the composition of the intial mixutre.

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