What mass of oxygen reacts when 84.9 g of iron is consumed in the following reaction: Fe+O2= Fe2O3

Question

asked Apr 18, 2019 81.7k views

2 Answers

Blmage · Answer 1 · 2019-04-20T07:55:40+0000

First we will calculate the number of moles of Iron:

n = (m)/(M)

, where n is the number of moles, m is the mass of iron in the reaction and M is the Atomic weight.

n= (84.9)/(55.845) = 1,52

moles of Iron.
The same number of moles of Oxygen will take part in the reaction.
So
1,52= (mOxygen)/(32)

where 32 is the Atomical Weight of Oxygen (16 x 2).
=>
mOxygen=32*1,52=48,64

g

Emanuel Seidinger · Answer 2 · 2019-04-24T05:45:02+0000

Answer:

36.385 grams of oxygen reacts when 84.9 grams of iron.

Step-by-step explanation:

$4Fe+3O_2\rightarrow 2Fe_2O_3$

Moles of iron =
(84.9 g)/(56 g/mol)=1.5160 mol

According to reaction, 4 moles of iron reacts with 3 moles of oxygen gas.

Then 1.5160 moles of iron will react with:

(3)/(4)* 1.5160 mol=1.1370 mol of oxygen gas

Mass of 1.1370 moles of oxygen gas:

1.1370 mol* 32 g/mol=36.385 g

36.385 grams of oxygen reacts when 84.9 grams of iron.