Answer:
d) 2v
Explanation:
Since, root mean square speed of a molecule,
[tex]V_{rms}=\sqrt{\frac{3kT}{m}}[/tex]
Where,
k = Boltzmann constant,
T = temperature of gas,
m = mass of molecule,
Also, the temperature of a gas,
[tex]T=\frac{pV}{nR}[/tex]
Where,
p = pressure of the gas,
V = volume,
n = number of moles of gas,
R = universal gas constant,
[tex]\implies V_{rms}=\sqrt{\frac{3kpV}{mnR}}[/tex]
If V = 2V and p = 2P
Then,
[tex]V_{rms}=\sqrt{\frac{12kpV}{mnR}[/tex]
[tex]=2\sqrt{\frac{3kpV}{mnR}[/tex]
Hence, if rms speed of a gas molecule under initial conditions is v then rms speed of a molecule will be 2v
i.e. option d is correct.
