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29 August, 05:30

Calculate the molality of a solution that is prepared by mixing 25.5 ml of ch3oh (d = 0.792 g/ml and 387 ml of ch3ch2ch2oh (d = 0.811 g/ml.

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  1. 29 August, 05:38
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    The solvent is ch3ch2ch2oh with a volume of 387 mL which is equivalent to

    387 mL (0.811 g/mL) (1 kg / 1000 kg) = 0.3139 kg

    The moles of the alchol is

    25.5 mL (0.792 g/mL) (1 mol/32 g) = 0.631 mol

    The molality is

    0.631 mol / 0.3139 kg = 2.01 mol/kg
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