Answer:
[tex]V=8.10L[/tex]
Explanation:
Hello,
In this case, we can use the freezing point depression formula in order to compute the molality of the mentioned solute (ethylene glycol) considering a van't hoff factor of 1 since it is a covalent molecule:
[tex]\Delta T=-i*m*Kf\\\\m=\frac{\Delta T}{i*Kf}=\frac{(-17.8-0)\°C}{1*1.86\°C/m}=9.57m[/tex]
Next, since water density is 1 kg/L and molal units are mol/kg, we compute the present moles of solute:
[tex]n=9.57mol/kg*15.0kg=143.55mol[/tex]
Next, the mass with its molar mass (62.07 g/mol):
[tex]m=143.55mol*62.07g/mol=8910.05g[/tex]
Finally, with the given density we compute the required volume in liters:
[tex]V=8910.05g*\frac{1mL}{1.1g} *\frac{1L}{1000mL}\\ \\V=8.10L[/tex]
Best regards.
