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A 'real' gas would occupy a higher volume as compared to the same amount of gas would have when 'idealistically' calculated by the 'ideal' gas law. The 'eigen' volume (its own molecular dimension) is to be taken in account at high pressure.

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Why do gases deviate from ideal behavior at high pressure?

Gases deviate from ideal behavior at high pressure because the molecules are closer together, leading to stronger intermolecular forces that affect their behavior.


When do real gases act least like ideal gases?

Real gases act least like ideal gases under conditions of high pressure and low temperature, where the gas molecules are closer together and experience intermolecular forces that are not accounted for in the ideal gas law.


Under which conditions does a real gas behave most like an ideal gas?

Real gases behave most like ideal gases under conditions of low pressure and high temperature. At low pressures, the volume of gas molecules is significant compared to the volume of the container, and at high temperatures, intermolecular forces are minimized, allowing the gas molecules to behave more independently.


Under which conditions of temperature and pressure does oxygen gas behave least like an ideal gas?

Oxygen gas behaves least like an ideal gas at low temperatures and high pressures. At low temperatures, the gas molecules move more slowly and can interact more with each other, deviating from ideal gas behavior. At high pressures, the gas molecules are closer together and experience stronger intermolecular forces, leading to less ideal behavior.


At what temperature does a real gas obey the ideal gas laws over a wide range of pressure?

Real gases behave most like ideal gases at high temperatures and low pressures.CASE 1 :- (At Higher Temperatures)when the temperature is high the kinetic energy of molecules increases and the intermolecular attractions among the atoms decreases.The volume of the gas molecules become negligible compared to volume of the vessel. therefore the real gases act like ideal At Higher Temperatures.CASE 2 :- (At Lower Temperatures)At low temperatures volume of the container is larger. therefore intermolecular attractive forces are negligible and the volume of the particles also become negligible compared with the volume of the vessel.therefore the real gases act like ideal At Lower Temperatures.

Related Questions

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When do real gases act least like ideal gases?

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Helium is most likely to behave as an ideal gas when it is under?

Helium is most likely to behave as an ideal gas when it is under conditions of low pressure and high temperature. Ideal gases follow the ideal gas law, which assumes the gas molecules have negligible volume and there are no intermolecular forces between them. At low pressure and high temperature, the molecules are far apart and moving quickly, closer to the assumptions of an ideal gas.


Is hydrogen a ideal gas?

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Under which conditions does a real gas behave most like an ideal gas?

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What is partial pressure of a gas in a mixtures of gases?

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What is an imaginary gas that conforms perfectly to the kinetic molecular theory callled?

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What is ideal residential water pressure?

How high is the building and what are the GPM /PSI requirements of the fixtures


How does a basketball under high pressure compared to a basketball under low pressure?

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