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Because molarity depends on the concentration of the solute.

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Q: Why molarity not based on the volume of solvent alone?
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What is the effect on the molarity of a solution of adding more solvent to a solution?

Adding more solvent to a solution decreases the molarity of the solution. This is based on the principle that initial volume times initial molarity must be equivalent to final volume times final molarity.


What is the ratio of solute to solvent in a solution?

Your question is a little ambiguous. However, in general, there is normality, molality and molarity which each describe the concentration of a solute into a solvent. The fraction of moles of solute to solvent could correctly be termed the "molar fraction" or, "molal fraction" depending on whether the solvent is expressed in volume or weight respectively. By contrast, normality is based on the chemical functionality of the solute, for example a 1M solution of sulfuric acid would be about a 2N solution of acid.


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Explain why molality is used for boiling point elevation and feezing point depression calculations and molarity is used for osmotic pressure calculations?

Molality is independent of temperature, so when you are trying to find changes in boiling and freezing points you need something that will stay constant regardless of the change in temperature. Molarity is temperature dependent and also is based on the volume of a solution, both of which are needed to calculate pressure using the ideal gas law, PV=nRT. Osmotic pressure is similar but we substitute the number of moles of the solution and the volume by using the molarity, you cannot do this with molality, since it is dependent on mass, not volume.


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How do you obtain a pure solvent from a solution by distillation?

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Can you spray paint with dulax solvent based paint if you put it in a apray painting device?

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Are cubic yards based on weight or volume?

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