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Subjects

Chemistry

3: Solubility

विलेयता

In this Class 12 Chemistry topic from Chapter 01: Solutions, students learn how much of a solute can dissolve in a given amount of solvent under specific conditions. The topic explains saturated, unsaturated and supersaturated solutions, along with the factors that affect solubility, such as the nature of solute and solvent, temperature and pressure. Students also explore why gases behave differently from solids in solutions and apply these ideas to interpret solubility data and related chemical situations.

Practice questions

01 Dissolution of a solid releases heat. Which statement about its solubility on heating is possible?

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02 At constant temperature, how can the amount of gas dissolved in a liquid be doubled according to Henry’s law?

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03 Why is partial pressure more important than total pressure for the solubility of a particular gas in a mixture?

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04 In which condition would aquatic organisms face the greatest risk of oxygen deficiency?

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05 The solubility of a solid decreases as temperature increases. What is not necessary when its hot saturated solution is cooled?

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06 Pressure is increased to raise gas solubility, but temperature is also increased greatly. What is the correct analysis?

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07 In a difficult solubility problem, which information is most useful to identify first?

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08 A gas has mole fraction 0.01 when its partial pressure is 0.5 bar. At the same temperature, what will be the mole fraction at 2.0 bar?

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09 Why can it be dangerous for divers to come up suddenly from deep water?

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10 The solubility of a solid decreases as temperature increases. This is more consistent with which type of dissolution?

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11 The solubility of a solid is 30 g per 100 g water. How much solute is needed to make a saturated solution in 250 g water?

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12 If 36 g solute dissolves up to saturation in 120 g water, what is the solubility per 100 g water?

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13 If both pressure and temperature change for gas solubility, what is the correct exam strategy?

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14 What is the deeper reason for the good solubility of salt in water?

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15 In which case is the solubility of an ionic solid in water more likely to increase?

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16 If a solubility curve rises steeply, why can it be useful for recrystallization?

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17 If gas pressure is increased but the liquid is also heated considerably, what must be checked before drawing a definite conclusion?

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18 When a small crystal of the same solute is added to a supersaturated solution and rapid crystallization begins, what is its role?

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19 Which option correctly explains a limitation of Henry's law?

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20 If a gas has a higher Henry’s law constant, which statement about its solubility at the same pressure is correct?

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21 For most solids, solubility in a liquid increases on increasing temperature. What is the main reason?

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22 Henry’s law applies to two gases at the same temperature. If the pressure of the first gas is twice that of the second and both have the same Henry’s law constant, what will be the mole fraction of the first gas?

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23 If a gas has a lower Henry's law constant, what type of solubility will it show in a liquid?

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24 If dissolution of a solid in a liquid is exothermic, what generally happens to its solubility when temperature is increased?

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25 In which situation can the solubility of a solid in a liquid decrease when temperature is increased?

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