Answer:
2.25 g.
Step-by-step explanation:
- Firstly, we can define the noramlity as the number of gram equivalents of the solute in 1.0 L of the solution.
N = (mass / equivalent mass) of the solute x (1000 / V of the solution)
The solute is oxalic acid.
N is the normality of the solution (N = 0.2 N),
mass of the solute (oxalic acid) (??? needed to be calculated),
equivalent mass of the oxalic acid = molar mass / n (the no. of reproducible H) = (90.03 g/mol) / (2) = 45.015.
V is the volume of the solution (V = 250 ml).
∴ The mass of the oxalic acid in g = (N x equivalent mass x V) / 1000 = (0.2 N) (45.015) (250.0 ml) / 1000 = 2.25 g.
Very important note:
If the solute source is oxalic acid dihydrate:
The molar mass = 126.07 g/mol.
The equivalent mass = 63.035 g.equ./mol.
∴ The mass of the oxalic acid in g = (N x equivalent mass x V) / 1000 = (0.2 N) (63.035) (250.0 ml) / 1000 = 3.15 g.