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Increasing pressure on a system will generally cause the molecules within the system to move closer together, leading to a decrease in volume. This can shift the position of equilibrium in a chemical reaction that involves gases to favor the side with fewer moles of gas.

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Increasing the volume of a closed system at equilibrium will?

cause a shift in the equilibrium towards the side with more gas molecules, according to Le Chatelier's principle. This is because increasing the volume decreases the pressure, and the system will shift to relieve the pressure by favoring the side with more gas molecules.


How will increasing the pressure on this system affect the amount of n2o4 formed?

Increasing the pressure on the system will favor the formation of N2O4 if the reaction involves a decrease in the number of gas molecules. According to Le Chatelier's principle, the system will shift toward the side with fewer gas moles to counteract the change. If N2O4 is formed from a reaction with more gas molecules (like NO2), the increased pressure will promote its formation. Conversely, if the reaction produces more gas molecules, increasing pressure would favor the reactants instead.


Does a compressor change kinetic energy into pressure energy?

Yes, a compressor converts mechanical energy into pressure energy by increasing the kinetic energy of a gas or fluid, which in turn raises the pressure within the system. This is achieved by reducing the volume of the gas or fluid, causing it to be compressed and increasing its pressure.


How does increasing the pressure on this system affect the amount if N2O4 formed?

Increasing the pressure on the system will favor the formation of N2O4 if the reaction involves a decrease in the number of moles of gas. According to Le Chatelier's principle, the system will shift toward the side with fewer gas molecules to counteract the increase in pressure. Therefore, if the formation of N2O4 results in fewer total gas moles compared to its dissociation into NO2, more N2O4 will be produced under higher pressure conditions.


What effect does increasing the pressure have on this equilibrium Hintwhich reaction produces fewer gas molecules?

Increasing the pressure in an equilibrium system favors the reaction that produces fewer gas molecules. According to Le Chatelier's principle, the system will shift toward the side with fewer moles of gas to counteract the change in pressure. Therefore, if one side of the equilibrium reaction produces more gas molecules than the other, increasing the pressure will shift the equilibrium toward the side with fewer gas molecules.

Related Questions

Increasing the pressure on a system will?

not enought information provided


How will a pressure affect a gaseous system?

Increasing the pressure of a gas the volume decrease.


How does increasing the pressure on this system affect the amount n2o4 formed?

the amount of N2O4 increases


How does increasing the pressure on this system affect the amount of n2o4 formed?

Increasing the pressure of the system will favor the formation of more N2O4. This is because the reaction 2NO2 ⇌ N2O4 involves a decrease in volume, and Le Chatelier's principle predicts that increasing the pressure will shift the equilibrium towards the side with fewer moles of gas, in this case N2O4.


Increasing the volume of a closed system at equilibrium will?

cause a shift in the equilibrium towards the side with more gas molecules, according to Le Chatelier's principle. This is because increasing the volume decreases the pressure, and the system will shift to relieve the pressure by favoring the side with more gas molecules.


How does temperature affect pressure in a closed system?

In a closed system, as temperature increases, pressure also increases. This is because the particles in the system move faster and collide more frequently with the walls, exerting more force and increasing pressure. Conversely, as temperature decreases, pressure decreases as well.


Increasing air pressure indicates what types of air is moving into your area?

Increasing air pressure typically indicates that high pressure system is moving into the area. High pressure systems are associated with clear skies, stable weather conditions, and generally calm winds.


How can I adjust the pressure tank to optimize the performance of my water system?

To optimize the performance of your water system, adjust the pressure tank by increasing or decreasing the pressure setting according to the recommended levels specified in the manufacturer's instructions. This will help maintain a consistent water pressure throughout your system, ensuring efficient operation.


Does a compressor change kinetic energy into pressure energy?

Yes, a compressor converts mechanical energy into pressure energy by increasing the kinetic energy of a gas or fluid, which in turn raises the pressure within the system. This is achieved by reducing the volume of the gas or fluid, causing it to be compressed and increasing its pressure.


What effect does increasing the pressure have on this equilibrium Hintwhich reaction produces fewer gas molecules?

Increasing the pressure in an equilibrium system favors the reaction that produces fewer gas molecules. According to Le Chatelier's principle, the system will shift toward the side with fewer moles of gas to counteract the change in pressure. Therefore, if one side of the equilibrium reaction produces more gas molecules than the other, increasing the pressure will shift the equilibrium toward the side with fewer gas molecules.


What is a result to increasing the temperature of a gas?

In a closed system the pressure increase. In other conditions the volume increase and the density decrease.


How does increasing the density of a gas affect the pressure?

By increasing the density of a gas its air pressure will subsequently increase.