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Energy changes and object is equal to the net work done. This is taught in science.

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If work done on an object is equal to object's change in kinetic energy this the state of?

If the work done on an object is equal to the object's change in kinetic energy, then the object is in a state of work-energy theorem. This theorem states that the work done on an object is equal to the change in its kinetic energy.


What is the relationship between the work done on an object and its change in kinetic energy?

The work done on an object is directly related to its change in kinetic energy. According to the work-energy theorem, the work done on an object is equal to the change in its kinetic energy. This means that when work is done on an object, its kinetic energy will either increase or decrease depending on the direction of the work.


When work is done is there a change in kinetic energy?

Yes, when work is done on an object, there is usually a change in its kinetic energy. Work transfers energy to the object, which can result in an increase in its speed and therefore a change in its kinetic energy.


How is energy and work related?

Energy is the ability to do work, and work is the transfer of energy. When work is done on an object, energy is transferred to that object, causing it to move or change. The amount of work done is directly related to the amount of energy transferred.


How does the work kinetic energy theorem explain the relationship between the work done on an object and its resulting change in kinetic energy?

The work-kinetic energy theorem states that the work done on an object is equal to the change in its kinetic energy. This means that when work is done on an object, it results in a change in the object's kinetic energy.


How does doing work on an object change its energy?

When work is done on an object, energy is transferred to or from the object, changing its energy. If work is done on an object, its energy increases; if work is done by an object, its energy decreases. The change in energy of an object is equal to the work done on it.


What is the relationship between work and kinetic energy as described by the work-kinetic energy theorem?

The work-kinetic energy theorem states that the work done on an object is equal to the change in its kinetic energy. This means that when work is done on an object, it results in a change in its kinetic energy. In other words, the work done on an object is directly related to the change in its kinetic energy.


Does the work done on a system necessarily change the system's kinetic energy?

Yes, the work done on a system can change the system's kinetic energy.


What is the relationship between work and kinetic energy?

The relationship between work and kinetic energy is that work done on an object can change its kinetic energy. When work is done on an object, it can increase or decrease the object's kinetic energy, which is the energy of motion. The work-energy theorem states that the work done on an object is equal to the change in its kinetic energy.


What happens to internal energy when mechanical work is done?

When mechanical work is done, the internal energy of a system can change. If work is done on the system, the internal energy increases. Conversely, if work is done by the system, the internal energy decreases. This change in internal energy is governed by the first law of thermodynamics.


What is the relationship between the work done by an expanding gas and the change in its internal energy?

The work done by an expanding gas is directly related to the change in its internal energy. When a gas expands, it does work on its surroundings, which can lead to a change in its internal energy. This change in internal energy is a result of the work done by the gas during the expansion process.


How does the change in potential energy equal the work done on an object?

When the potential energy of an object changes, it is because work has been done on the object. This means that the amount of work done on the object is equal to the change in its potential energy.