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Select the correct answer from each drop-down menu. How are real gases different from ideal gases? Real gases differ from ideal gases because in a real gas, and .

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1. Particles take up some volume

2. Intermolecular forces between particles

Real gases differ from ideal gases because in a real gas and ideal gases  Real gas does not obeys gas laws at all standard temperature and pressure conditions whereas An ideal gas that obeys gas laws at all temperature and pressure conditions.

What is Ideal Gas ?

An ideal gas is a gas that obeys gas laws at all temperature and pressure conditions. It have velocity and mass but do not have volume. Ideal gas is also called perfect gas. Ideal gas is a hypothetical gas. It obeys PV = nRT where P is pressure, V is volume in liters, n is number of moles of gas, R is Ideal gas constant, T is Temperature in kelvin.

What is Real Gas ?

A real gas is a gas that does not obeys gas laws at all standard temperature and pressure conditions. It have velocity, mass and volume. Real gas is also called non-ideal gas. Real gas exist in nature around us. It obeys [tex](P + \frac{an^2}{V^2})} (V - nb) = nRT[/tex] where P is pressure, a and b are the empirical constant, [tex]\frac{n^2}{V^2}[/tex] is concentration of gas, R is universal gas constant, T is Temperature.

Thus from above conclusion we can say that Real gas is differ from ideal gas as Real gas is a gas that does not obeys gas laws at all standard temperature and pressure conditions whereas An ideal gas is a gas that obeys gas laws at all temperature and pressure conditions.

Learn more about Ideal gas here: https://brainly.com/question/555495

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