Question 1.11: MEAN AND RMS SPEEDS OF MOLECULES Given the Maxwell Boltzmann...

The number of molecules with speeds in the range v to (v + dv) is

d N=n_{v} d v=4 \pi N\left(\frac{m}{2 \pi k T}\right)^{3 / 2} v^{2} \exp \left(-\frac{m v^{2}}{2 k T}\right) d v

We know that n_{v}∕N is the probability per unit speed that a molecule has a speed in the range v to (v + dv). By definition, then, the mean speed is given by

v_{ av }=\frac{\int v  d N}{\int  d N}=\frac{\int v n_{v}  d v}{\int n_{v}  d v}=\sqrt{\frac{8 k T}{\pi m}}                 Mean speed

where the integration is over all speeds (v = 0 to ∞). The mean square velocity is given by

\overline{v^{2}}=\frac{\int v^{2}  d N}{\int  d N}=\frac{\int v^{2} n_{v}  d v}{\int n_{v}  d v}=\frac{3 k T}{m}

so the rms velocity is

v_{ rms }=\sqrt{\frac{3 k T}{m}}          Root mean square velocity

Differentiating n_{v} with respect to v and setting this to zero, dn_{v}∕dv = 0, gives the position of the peak of n_{v} versus v, and thus the most probable speed v^{*},

V^{*}=\left[\frac{2 k T}{m}\right]^{1 / 2}           Most probable speed

Substituting m = 9.1 × 10^{−31}  kg for electrons and using T = 300 K, we find v^{*} = 95.3  km  s^{−1} , v_{av} = 108  km  s^{−1}, {\text and}  v_{rms} = 117  km  s^{−1}, all of which are close in value. We often use the term thermal velocity to describe the mean speed of particles due to their thermal random motion. Also, the integrations shown above are not trivial and they involve substitution and integration by parts.