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The pressure of a gas in a container can be increased by raising the temperature of the gas, which causes the molecules to move faster and collide with the container walls more frequently and with greater force. Additionally, reducing the volume of the container while keeping the temperature constant will also increase the pressure, as the gas molecules have less space to move and collide more often. Lastly, adding more gas molecules to the container will increase the number of collisions with the walls, thereby raising the pressure.

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3d ago

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Would increase the pressure of a gas in a container?

The temperature


What would increase the pressure of gas in a container?

Any of the following: increasing the amount of gas; increasing the temperature; reducing the volume.


What would happen to the pressure in the container if the number particles were tripled?

If the number of particles in the container were tripled, the pressure in the container would increase because more particles would be colliding with the walls of the container, exerting more force per unit area. This increase in collisions would result in higher pressure.


How would pressure be affected by an increase in the volume of the container?

All else being equal the pressure would fall


What happens to the pressure of a gas if you decrease the size of a container?

If you decrease the size of a container holding a gas, the pressure of the gas increases. This is because the gas molecules have less space to move, leading to more frequent collisions with the container walls, resulting in an increase in pressure.


What would cause the pressure in a sealed container of gas to increase?

temperature increase The pressure of a contained sample of gas can be increased by increasing its temperature, or by decreasing its volume, or by injecting additional mass into it.


Raising temperature of a gas fixed volume container will change?

The pressure of the gas inside the container will increase due to the increased kinetic energy of the gas molecules. This is described by the ideal gas law, PV = nRT, where P is pressure, V is volume, n is the number of moles, R is the gas constant, and T is temperature.


Which of the changes would not cause an increase in the pressure of a contained gas?

The volume of the container is increased.


What would the effect on temperature and volume be if you changed the number of moles of gas in a container?

In a container the volume remain constant but the pressure increase.


What will happen to the pressure inside a closed container of gas if more gas is added to the container?

It starts bubbling then it explodes. -I think it would just become more pressurized, it depends how pressurized it was before. But yes, it would explode if it had too much pressure.Yes, it could explode (depending on the type of container), but the main point is that the pressure would increase. Pressure is defined as the number and force of collisions between the particles and the wall of the container. If you're adding more gas to the container, then you are increasing the number of particles in one space; therefore, they will collide more often with the container.


What happens to pressure of gas when you put it in a smaller container?

When you put gas in a smaller container, the gas particles have less space to move around, leading to more frequent collisions with the container walls. This increases the pressure of the gas inside the container.


Why does decaying vegetables make a closed container expand?

its just a guess, but when things decya they release gases, which would increase the pressure in the container