Home
Class 12
CHEMISTRY
If 20 mL of ethanol (density =0.7893g//m...

If `20 mL` of ethanol (density `=0.7893g//mL)` is mixed with `40mL` water (density `= 0.9971g//mL)` at `25^(@)C`, the final slution has density of `0.9571g//mL`. Calculate the percentage change in total volume of mixing. Also calculate the molarity of alcohol in the final solution.

Text Solution

Verified by Experts

The correct Answer is:
`3.1 % 8.6`

`C_(2)H_(5)OHrarrV_(1)=20 mL, d_(1)=0.7893 g//mL`
`m_(1)=15.786 g`
`H_(2)Orarr V_(2)=40 mL, d_(2) = 0.9971 g//mL`.
`m_(2)=39.884 g`
Total mass `= 55.65 g`
`d_(sol)=0.9571 g//mL`
`V_(sol) = 58.14 mL`
% change `= (60-58.14)/(60)xx100 =3.1%`
`m = (15.766xx1000)/(46xx39.884)=8.6`
Promotional Banner

Similar Questions

Explore conceptually related problems

3.0 molal NaOH solution has a density of 1.110 g//mL . The molarity of the solution is:

30mL of CH_(3)OH (d = 0.780 g cm^(-3)) and 70 mL of H_(2)O (d = 0.9984 g cm^(-3)) are mixed at 25^(@)C to form a solution of density 0.9575 g cm^(-3) . Calculate the freezing point of the solution. K_(f)(H_(2)O) is 1.86 kg mol^(-1)K . Also calculate its molarity.

A 15mL sample of 0.20 M" " MgCl_(2) is added to 45ML of 0.40 M AlCl_(3) What is the molarity of Cl ions in the final solution

80 ml of solution contains 20 g of solute. Calculate the concentration in terms of mass by volume percentage of the solution.