4FeS₂ + 11O₂ = 2Fe₂O₃ + 8SO₂↑
n(FeS₂) = m(FeS₂)/M(FeS₂) = 6000/120 = 50 моль
по уравнению реакции - n(O₂) = (11*n(FeS₂))/4 = (11*50)/4 = 137,5 моль
V(O₂) = n(O₂)*Vm = 137,5*22,4 = 3080 л
ответ: V(O₂) = 3080 л
Подробнее - на Znanija.com - https://znanija.com/task/19124279#readmore
Answer:
[tex] 8.297 mol O_2 *\frac{2 mol Fe_2 O_3}{11 mol O_2} *\frac{159.69 gr Fe_2 O_2}{ 1mol Fe_2 O_3}= 240.90 gr Fe_2 O_3[/tex]
Explanation:
For this case we have the following equation:
[tex] 4FeS_2 +11 O_2 \rightarrow 2Fe_2 O_3 +8SO_2[/tex]
After balance the equation.
For this case we can use the following expression for an ideal gas:
[tex] PV = nRT [/tex]
And if we solve for [tex]n_{O_2}[/tex] we got:
[tex]n_{O_2} = \frac{PV}{RT} =\frac{3.41 atm *84L}{ 0.082 \frac{atm L}{mol K} (148+273)K} =8.297 mol O_2[/tex]
The mass for the [tex] Fe_2 O_3[/tex] is given by: [tex] 55.845gr*2 +16gr*3=159.69 gr[/tex], since we have 2 molecules of iron and 3 from oxygen.
For this case since the pyrite is the excess reactive we can calculate the amount of [tex]Fe_2 O_3[/tex] with the oxygen and we can do this:
[tex] 8.297 mol O_2 *\frac{2 mol Fe_2 O_3}{11 mol O_2} *\frac{159.69 gr Fe_2 O_2}{ 1mol Fe_2 O_3}= 240.90 gr Fe_2 O_3[/tex]
