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  1. Kinetic theory of gases - Wikipedia

    • In about 50 BCE, the Roman philosopher Lucretius proposed that apparently static macroscopic bodies were composed on a small scale of rapidly moving atoms all bouncing off each other. This Epicurea… See more

    Assumptions

    The application of kinetic theory to ideal gases makes the following assumptions: The gas … See more

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    Equilibrium Properties

    Pressure and kinetic energy In the kinetic theory of gases, the pressure is assumed to be equal to the force (per unit area) exerted by the atoms hitting and rebounding from the gas con… See more

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  2. The pressure of the gas is proportional to the number of particles colliding with the container walls. Particles gain kinetic energy as temperature increases. Increasing kinetic energy increases the number of collisions and the pressure of a gas. So, pressure is directly proportional to absolute temperature.
    sciencenotes.org/kinetic-molecular-theory-of-gases/
    An object accumulates kinetic energy when work, which involves the transfer of energy, is done on it by exerting a net force. From the kinetic gas equation for 1 mole of gas, ⇒ K. E = 3 R T 2 ⇒ K. E = 3 P V 2 Since, P V = R T ⇒ P = 2 K. E 3 V The link between kinetic energy and pressure is represented by the equation above.
    byjus.com/question-answer/how-is-kinetic-energy-r…
     
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