Respuesta :
Answer:
for a)
mAl= 3.87 gr
mFe = 5.75 gr
for b)
Y= 13.1%
Explanation:
since aluminium reacts according to
2 Al + 6 HCl -> 2 AlCl₃+ 3 H₂
then 2 moles of Al generates 3 moles of H2
then the mass of hydrogen gas obtained per mass of aluminium that reacts is
R₁ = 3 n H₂/ 2 n Al = [3 mol * 2 gr/mol] / [2 mol * 27 gr/mol ] = 1/9
then for iron
Fe + 2 HCl -> FeCl₂ + H₂
the mass of hydrogen gas obtained per mass of iron # that reacts is
R₂ = 3 n H₂/ 2 n Fe = [3 mol * 2 gr/mol] / [2 mol * 56 gr/mol ] = 3/56
then the mass of hydrogen obtained is
mAl*R₁ +mFe*R₂ = mH
mAl+mFe= mM
where m represents mass , M the total mass of the metals , H the mass of hydrogen
thus
mAl = mM - mFe
and
mAl*R₁ +(mM-mAl) *R₂ = mH
mAl*(R₁-R₂) +mM *R₂ = mH
mAl=(mH - mM *R₂)/(R₁-R₂)
replacing values
mAl=(mH - mM *R₂)/(R₁-R₂) = (0.738 g- 9.62 g*3/56)/(1/9-3/56) = 3.87 gr
and
mFe = mM - mAl = 9.62 g - 3.87 gr = 5.75 gr
for b)
since
m AlCl3 = m AlCl3 * (m Fe/ mAlCl3) = 33.87 g * ( 97 g / 27 g) = 121.68 g
the yield of AlCl3 is
Y= 15.95 g / 121.68 g = 0.131= 13.1%
