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The higher the speed the more the kinetic energy.

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Obie Ondricka

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3y ago

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What happens to the energy of a particle if the mass is constant and the speed increases?

The kinetic energy of the particle increases as the speed increases, following the equation ( KE = \frac{1}{2} mv^2 ) where ( KE ) is the kinetic energy, ( m ) is the mass of the particle, and ( v ) is the speed of the particle. The energy of the particle is converted to kinetic energy as its speed increases.


How does kinetic energy affect speed?

The kinetic energy of an object is proportional to the square of its speed.


Is it true that the speed of a particle can affect whether it can escape a liquid?

Yes, the speed of a particle can affect whether it can escape a liquid. This is because the escape of a particle from a liquid involves overcoming intermolecular forces that hold the particle in the liquid. If the particle has sufficient kinetic energy (which is related to its speed), it can break free from these forces and escape from the liquid.


State any one factor which determines the kinetic energy of a body?

One factor affecting the kinetic energy of a particle (or body) in is the viscosity of the medium through which that particle moves


How do atoms in a liquid transfer heat to nearby atoms?

On a molecular scale, thermal energy is the kinetic energy of individual particles. In a liquid, this thermal energy is transferred to nearby atoms by collisions; a high-speed particle in the liquid collides with a lower-speed particle, transferring some kinetic energy from the high-speed particle to the low-speed particle. When this happens with a large number of particles, thermal energy transfer results.


How does the speed of an object affect the motion energy kinetic energy of the object?

The kinetic energy of an object increases with its speed because kinetic energy is directly proportional to the square of the object's speed. As the speed of an object increases, its kinetic energy also increases at a faster rate.


How do you find particles maximum speed in a potential energy diagram?

To find a particle's maximum speed in a potential energy diagram, you need to locate the point in the diagram where the potential energy curve is at its lowest. The maximum speed of the particle at that point is determined by the total mechanical energy it possesses, which is the sum of its kinetic and potential energies. At the point where the potential energy is lowest, the kinetic energy is at its maximum, indicating the particle's maximum speed.


If you add heat energy to a substance what happens to the speed of the particle motion?

The particle speed increases.The energy increases; the speed increases.


How speed and weight affect an amount of kinetic energy?

Kinetic energy is directly proportional to an object's speed squared, meaning that as an object's speed increases, its kinetic energy increases exponentially. Weight itself does not directly affect an object's kinetic energy, but it can impact the object's speed due to factors like friction and resistance. Ultimately, both speed and weight play a role in determining the kinetic energy of an object in motion.


What happens to the speed of a particle as temperature decreases?

The speed of a particle decreases with decreasing temperature. Decreasing temperature is associated with lower energy states, and the particle will have a lower energy state. It will be moving with less kinetic energy.


When energy decreases what does the particle motion do?

When energy decreases, the particle motion usually slows down. This can manifest as a decrease in kinetic energy and a reduction in the speed at which particles move.


How will a lighter gas particle have the same kinetic energy as a heavier particle?

A lighter gas particle can have the same kinetic energy as a heavier particle if it has a greater speed. Kinetic energy is determined by both mass and velocity, so a lighter particle can compensate for its lower mass by moving faster. The average kinetic energy of gas particles at a given temperature is the same, regardless of their individual masses.