If $v_1$ is the speed of sound in a diatomic gas at $273^{\circ}C$ and $v_2$ is the r.m.s. speed of its molecules at $273 \ K$,then $\frac{v_1}{v_2}=$

  • A
    $\sqrt{\frac{15}{14}}$
  • B
    $\sqrt{\frac{14}{15}}$
  • C
    $\sqrt{\frac{7}{8}}$
  • D
    $\sqrt{\frac{8}{7}}$

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Similar Questions

$125 \, ml$ of gas $A$ at $0.60 \, atm$ and $150 \, ml$ of gas $B$ at $0.80 \, atm$ pressure at the same temperature are filled in a vessel of $1 \, L$ volume. What will be the total pressure of the mixture at the same temperature in $atm$?

Column-$I$ represents physical quantity and Column-$II$ represents formula. Match them correctly:
Column-$I$Column-$II$
$(a)$ Kinetic energy per unit mole of gas.$(i)$ $\frac{1}{2}RT$
$(b)$ Kinetic energy per one molecule of gas.$(ii)$ $\frac{3}{2}RT$
$(iii)$ $\frac{3}{2}k_BT$

Select the $incorrect$ statement$(s)$.

The speed of sound in an ideal gas at a given temperature $T$ is $v$. The rms speed of gas molecules at that temperature is $v_{\text{rms}}$. The ratio of the velocities $v$ and $v_{\text{rms}}$ for helium and oxygen gases are $X$ and $X^{\prime}$,respectively. Then,$\frac{X}{X^{\prime}}$ is equal to

Select the correct statement.

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