The pressure of a real gas is less than the pressure of an ideal gas because of .....

  • A
    Increase in the number of collisions.
  • B
    Definite shape of molecules.
  • C
    Increase in $K.E.$ of molecules.
  • D
    Intermolecular forces of attraction.

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Similar Questions

The correct option regarding a container containing $1 \, mol$ of a gas in a $22.4 \, L$ container at $273 \, K$ is:

At high pressure,the van der Waals equation for a real gas reduces to:

What is the compressibility factor $(Z)$ for the deviation of real gases from ideal behavior?

The deviation will be maximum in the behaviour of a gas from the ideal gas equation $PV = nRT$?

At low pressure,Vander Waal's equation is reduced to $\left[ P + \frac{a}{V^2} \right]V = RT$. The compressibility factor $(Z)$ can be given as

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