Let x = amount of 0.3200 N HCl needed.
m.e. = # milliequivelents
Then m.e. H2SO4 + m.e. HCl = m.e. 0.2299 solution.
(100mL*0.1234N) + (XmL*0.3200N) = (100mL + xmL)*0.2299
Solve for X.
A 0.2299 N acid is prepared by mixing 100 ml of 0.1234 N H2SO4 and 0.3200 N HCl. How much HCl is needed in the preparation of the solution?
2 answers
118.2