Question

If the mean free-path of gaseous molecule if 60 cm at a pressure of $1\times {10}^{-4}mm$ mercury what will be its mean free-path when the pressure is increased to $1\times {10}^{-2}$ mm mercury.

• A. $.0\times {10}^{-1}cm$
• B. 0.6 cm
• C. $.0\times {10}^{-2}cm$
• D. $.0\times {10}^{3}cm$

Answer 1

The correct option is B 0.6 cm

$\begin{array}{cc}\lambda =\frac{RT}{\sqrt{2}\pi d^{2}NaP}& \lambda P=\frac{RT}{\sqrt{2}\pi d^{2}Na}\\ {\lambda }_1{P}_1={\lambda }_2{P}_2& \\ 60\times {10}^{-4}={\lambda }_2\times {10}^{-2}& \\ {\lambda }_2=60\times {10}^{-2}cm& \\ {\lambda }_2=0.6cm& \end{array}$