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Exercise · Q16

Q.State the postulates of the kinetic theory of gases, and briefly explain how they lead to the concept of an ideal gas.

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The kinetic theory of gases rests on several postulates. Gas particles are extremely small and enormous in number, moving continuously and randomly in straight lines in all directions, colliding with one another and with the container walls. The actual volume occupied by the particles themselves is negligible compared with the total volume of the container, so particles are treated as point masses. There is no significant attractive or repulsive force between particles (or between particles and the walls), so each particle moves independently between collisions. Collisions are perfectly elastic — no kinetic energy is lost overall, only redistributed among the colliding particles — and between collisions particles travel in straight lines at constant speed. Finally, particles possess a wide, statistically distributed range of individual speeds at any instant, but the average kinetic energy of the particles is directly proportional to the absolute (Kelvin) temperature of the gas, and this average is the same for every gas at a given temperature, regardless of molar mass. A gas that obeys every one of these postulates exactly is called a …

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