At relatively high pressure,van der Waals' equation becomes

  • A
    $PV = RT$
  • B
    $PV = RT + \frac{a}{V}$
  • C
    $PV = RT + Pb$
  • D
    $PV = RT - \frac{a}{V^2}$

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$A$ gas is said to behave like an ideal gas when the relation $PV/T = \text{constant}$. When do you expect a real gas to behave like an ideal gas?

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At high temperature and low pressure,the Vander Waal's equation is reduced to

The unit of the van der Waals gas equation parameter $a$ in $(P + \frac{an^{2}}{V^{2}})(V - nb) = nRT$ is :

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