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

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

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Similar Questions

Given van der Waals constant $a$ for $NH_{3}$,$H_{2}$,$O_{2}$ and $CO_{2}$ are respectively $4.17$,$0.244$,$1.36$ and $3.59$,which one of the following gases is most easily liquefied?

Explain the effect of high pressure and low temperature on the validity of Boyle's law.

Assertion : Compressibility factor $(Z)$ for non-ideal gases can be greater than $1$.
Reason : Non-ideal gases always exert higher pressure than expected.

Which gas among the following is the easiest to liquify?

In the following compressibility factor $(Z)$ versus pressure graph at $300 \, K$,the compressibility of $CH_{4}$ at pressure $< 200 \, bar$ deviates from ideal behaviour because

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