(C) The mean kinetic energy $(E)$ of an ideal gas is directly proportional to its absolute temperature ($T$ in Kelvin),given by the formula $E = \frac

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(C) The mean kinetic energy $(E)$ of an ideal gas is directly proportional to its absolute temperature ($T$ in Kelvin),given by the formula $E = \frac{3}{2} k_B T$.Therefore,$E \propto T$.Given initial temperature $T_1 = 27^{\circ} C = 27 + 273 = 300 \ K$.Given final temperature $T_2 = 327^{\circ} C = 327 + 273 = 600 \ K$.Using the proportionality ratio: $\frac{E_2}{E_1} = \frac{T_2}{T_1}$.Substituting the values: $E_2 = E_1 \times \frac{600}{300}$.$E_2 = 2 E_1$.

Class 11 Physics Kinetic Theory of Gases Pressure and Energy

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At $27^{\circ} C$ temperature,the mean kinetic energy of the atoms of an ideal gas is $E_1$. If the temperature is increased to $327^{\circ} C$,then the mean kinetic energy of the atoms will be

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A
$\frac{E_1}{\sqrt{2}}$
B
$\sqrt{2} E_1$
C
$2 E_1$
D
$\frac{E_1}{2}$

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$A$ $1 \, kg$ diatomic gas is at a pressure of $8 \times 10^4 \, N/m^2$. The density of the gas is $4 \, kg/m^3$. What is the energy of the gas due to its thermal motion?

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At $27^{\circ} C$ temperature,the mean kinetic energy of the atoms of an ideal gas is $E_1$. If the temperature is increased to $327^{\circ} C$,then the mean kinetic energy of the atoms will be

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An ideal gas in a container of volume $500 \text{ c.c.}$ is at a pressure of $2 \times 10^5 \text{ N/m}^2$. The average kinetic energy of each molecule is $6 \times 10^{-21} \text{ J}$. The number of gas molecules in the container is:

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