Tartaric acid, \(\mathrm{H}_{2} \mathrm{C}_{4} \mathrm{H}_{4} \mathrm{O}_{6}\),
has two acidic hydrogens. The acid is often present in wines and precipitates
from solution as the wine ages. A solution containing an unknown concentration
of the acid is titrated with \(\mathrm{NaOH}\). It requires \(24.65 \mathrm{~mL}\)
of \(0.2500 \mathrm{M} \mathrm{NaOH}\) solution to titrate both acidic protons
in \(50.00 \mathrm{~mL}\) of the tartaric acid solution. Write a balanced net
ionic equation for the neutralization reaction, and calculate the molarity of
the tartaric acid solution.