Calculate the molality of a sulphuric acid solution of specific gravity 1.2
Answers
1 Answer
[
H
2
S
O
4
]
≅
4
⋅
m
o
l
⋅
k
g
−
1
Explanation:
We want the expression......
molality
=
moles of solute
kilograms of solvent
.....
And our
H
2
S
O
4
(
a
q
)
has a density of
ρ
=
1.2
⋅
g
⋅
m
L
−
1
.
And thus we can work with a
1
⋅
m
L
volume..........
Molality
=
1.2
⋅
g
×
27
%
98.08
⋅
g
⋅
m
o
l
−
1
(
1.2
⋅
g
−
0.324
⋅
g
)
×
10
−
3
⋅
k
g
⋅
g
−
1
=
3.77
⋅
m
o
l
⋅
k
g
−
1
with respect to
H
2
S
O
4
......
Here we multiplied that mass of solution by the percentage of acid, and then the percentage of water, to get the moles of solute, and moles of water solvent. Please check my figures...........
Just as an exercise, we could also interrogate the
molarity
of the given solution, and here we want the quotient.....
Molarity
=
Moles of solute
Volume of solution (L)
....
And thus.....we calculate the concentration a ONE MILLILITRE of this acid solution......which has a mass of
1.20
⋅
g
....Agreed?
And so......
Molarity
=
1.2
⋅
g
×
27
%
98.08
⋅
g
⋅
m
o
l
−
1
1
⋅
m
L
×
10
−
3
⋅
L
⋅
m
L
−
1
=
3.30
⋅
m
o
l
⋅
L
−
1
.........for a more dilute solution, molality would often be identical to molarity. When we use sulfuric acid solution, the solution density is such that difference in the concentrations occur.