Home
Class 11
CHEMISTRY
250 mL of hydrogen measured at 750 mm of...

250 mL of hydrogen measured at 750 mm of Hg have to be compressed into a vessel of 50 mL capacity at a constant temperature. Calculate the pressure required to do so.

Text Solution

AI Generated Solution

To solve the problem, we will use Boyle's Law, which states that for a given mass of gas at constant temperature, the product of pressure and volume is a constant. This can be expressed mathematically as: \[ P_1 V_1 = P_2 V_2 \] Where: - \( P_1 \) = initial pressure - \( V_1 \) = initial volume - \( P_2 \) = final pressure ...
Promotional Banner

Topper's Solved these Questions

  • STATES OF MATTER : GASES AND LIQUIDS

    MODERN PUBLICATION|Exercise HIGHER ORDER THINKING SKILLS (ADVANCED LEVEL)|19 Videos
  • STATES OF MATTER : GASES AND LIQUIDS

    MODERN PUBLICATION|Exercise COMPETITION FILE OBJECTIVE TYPE QUESTIONS (A. MULTIPLE CHOICE QUESTIONS)|41 Videos
  • STATES OF MATTER : GASES AND LIQUIDS

    MODERN PUBLICATION|Exercise Revision Exercises (Objective Questions)(Long Answer Questions)|8 Videos
  • SOME BASIC CONCEPTS OF CHEMISTRY

    MODERN PUBLICATION|Exercise COMPETITION FILE (INTEGER TYPE AND NUMERICAL VALUE TYPE QUESTIONS)|10 Videos
  • STRUCTURE OF ATOM

    MODERN PUBLICATION|Exercise Unit Practice Test|13 Videos

Similar Questions

Explore conceptually related problems

5 L of nitrogen measured at 750 mm have to be compressed into an iron cylinder of 1 L capacity. If temperature is kept constant, calculate the pressure in atmospheres required to do so.

400 mL of N_(2) gas at 700 mm and 300 mL of H_(2) gas at 800 mm are introduced into a vessel of 2 L at the same temperature. Calculate the final pressure of the gas mixture.

1 mol of SO_(2) occupies a volume of 350 mL at 300 K and 50 atm pressure. Calculate the compressibility factor of the gas.

2.5 L of a sample of a gas at 27^(@)C and 1 bar pressure is compressed to a volume of 500 mL keeping the temperature constant, the precentage increase in the pressure is:

125 mL of a gas A of pressure 500 mm is mixed with 200 mL of another gas B at a pressure of 300 mm in a vessel of 150 mL capacity. What will be the total pressure of the resulting mixture if the temperature is kept contant ?

A very dilute saturated solution of a sparingly soluble salt A_(3)B_(4) has a vapour pressure of 20mm of Hg at temperature T, while pure water exerts a pressure of 20.0126mm Hg at the same temperature. Calculate the solubility product constant of A_(3)B_(4) at the same temperature.

200 mL of hydrogen and 250 mL of nitrogen, each measured at 15^(@)C and 760 mm pressure of the mixtue at 15^(@)C ?