Q.A body falls towards earth in air. Will its total mechanical energy be conserved during the fall? Justify.
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Start your 14-day free trial to unlock the full solution →No, the total mechanical energy is not conserved during the fall because air resistance does negative work on the body, converting mechanical energy into thermal energy.
Why mechanical energy conservation fails here
Mechanical energy—the sum of kinetic and potential energy—remains constant only when the forces doing work are conservative. Gravity is conservative, but air resistance is not. Air resistance is a dissipative force: it opposes motion and converts ordered kinetic energy into disordered thermal energy (heating both the body and the surrounding air). This energy leaves the mechanical "account" entirely, so the total decreases as the body falls.
Step-by-step justification
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Identify the forces acting on the falling body.
Two forces act: gravitational force (downward) and air resistance (upward, opposing the velocity).
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Examine the work done by each force.
- Gravity does positive work as the body descends through height , converting gravitational potential energy into kinetic energy.
- Air resistance does negative work (where is the distance fallen), because the force opposes the displacement.
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Apply the work-energy theorem.
The net work done equals the change in kinetic energy:
Rearranging:
Since (the loss in potential energy), we have:
The left side is the change in total mechanical energy, and it equals the (negative) work done by air resistance.
- Conclude about energy conservation. …
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