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Q: Which of the assumptions explains the pressure which a gas exerts?
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How gas exerts pressure on the side of its container?

The molecules of the gas are in constant motion and their collisions with the sides of the container exerts a force which is felt as pressure.


What matter exerts pressure in all directions?

A gas.


What causes the pressure that a gas exerts on the wall of its container?

Kinetic theory explains the pressure that a gas exerts on the walls of its container. This describes elastic collisions between the atoms or molecules in the gas with the container's walls, which collectively exert a measureable pressure.


What assumptions of the kinetic molecular theory explains why a gas can expand to fill a container?

Rapid Motion does.


What happens to a gas heated in cylinder?

the gas expands and exerts more pressure on the sides of the cylinder. Basically, the pressure goes up due to a temperature increase.


Why does the pressure exerted by a gas does not depend on the type of the gas?

The pressure that the gas exerts on the walls of any vessel has to do with the force that the particles of gas were exerted as a consequence of their very own kinetic energy. That helps know why the gas does not have to depend on the type of gas.


How does buoyancy relate to balloons?

The principle of buoyancy relates to the upward pressure that a liquid or gas substance exerts on objects surrounding it. When balloons are filled with gas that exerts less downward force (due to mass and gravity), they will float.


How does a gas exert pressue on the container in which it is being held?

A gas exerts pressure on the container because it is bouncing off the walls of the container at a certain force. The greater the force is the greater the pressure.


What the atmosphere exert pressure on?

The atmosphere exerts pressure on various objects on the earth's surface. Air pressure is generally caused by the collision of the gas molecules with one another.


Kinetic molecular theory assumptions fail at high pressure?

the kinetic energy of gas molecules is proportional to the kelvin temp of the gas


Why does the pressure exerted by a gas does not depend on the type of gas?

The pressure that the gas exerts on the walls of any vessel has to do with the force that the particles of gas were exerted as a consequence of their very own kinetic energy. That helps know why the gas does not have to depend on the type of gas.


A gas ocupying 60l exerts 2.6 ATM of pressure what is the temperature if 6.o moles of gas are present?

PV = nRT; the rest is just arithmetic.