Question

1g oleum sample is diluted with sufficient water. this solution is now completely neutralised by 54 ml of 0.4 m naoh solution. the % of free so3 in oleum is

Answer 1

Hey mate here's your answer

H2So4= 98/2 = 49

So3 = 80/2 = 40

26.7ml x 0.4N = 10.68ml - 0.01068L

x/49 + x/40 (0.5-X)

Eq. H2SO4 = Eq of NaOH

= (26.7 x 0.4)/1000

= 10.68 mEq.

H2SO4 + SO3 + H2O -----> 2(H2SO4)

==> SO3 + H2SO4 -----> H2SO4

∴Eq of SO3 = 1/2 of mEq. total H2SO4

==> Eq of H2SO4 + Eq of SO3 = Eq of total H2SO4

= 10.68/1000 (bec. 1 mEq. = 1/1000 Eq.)

Let x be mass of SO2 ==> mass of H2SO4

= (0.5-x)

= (0.5 - x)/49 + x/40 = 10.68/1000

Solving.... x = 0.1836g

Percentage of So3 = 0.1836/0.5 x 100

= 20.73%