Mechanical Energy
Requisitos de finalización
2. Gravitational Potential Energy
Learning outcomes
- I can define gravitational potential energy as energy stored due to position in a gravitational field.
- I can explain how mass, height, and gravitational field strength affect gravitational potential energy.
- I can recall and use the equation ΔEp = mgΔh.
- I can calculate changes in gravitational potential energy for objects raised or lowered vertically.
- I can relate changes in gravitational potential energy to real-world systems such as roller coasters, dams, and falling objects.
Potential Energy
The amount of gravitational potential energy stored by an object at height can be calculated using the equation:
Ep=mg h
where
- Ep is measured in joules (J)
- m mass, is measured in kilograms (kg)
- g is gravitational field strength, measured in newtons per kilogram (N/kg)
- h is height, measured in metres (m)
Galileo takes a 5 kg cannonball to the top of the Tower of Pisa for one of his experiments. The tower is 56 m high. How much gravitational potential energy has the cannonball gained? (g = 10 N/kg)
List:
- h = 56m
- g = 10 N/kg
- m = 5 kg
Equation:
E = mgh
Solve:
E = 5(10)(56)
E = 2800 J
Potential Energy
Elastic potential energy is the energy stored in a spring, given by the equation:
EH=½m x2
Kinetic and Potential Energy Worksheet.pdf