Chapter 4 Motion, Energy, and Gravity
... An object moving on a circle with fixed rotation rate has constant angular velocity (constant degree/sec and direction of rotation). An object moving on a circle with fixed rotation rate has non-zero acceleration. It is changing its direction all the time. The orbital motion of the Earth around ...
... An object moving on a circle with fixed rotation rate has constant angular velocity (constant degree/sec and direction of rotation). An object moving on a circle with fixed rotation rate has non-zero acceleration. It is changing its direction all the time. The orbital motion of the Earth around ...
Final Momentum NRG Review
... EXAMPLE: How much work is done by a girl in taking a 7.5 kg bowling ball from a shelf and lowering it 2.0 meters to the floor? Note, that gravity is pulling the bowling ball downwards and it’s the force exerted against this gravitational force that allows the ball to be lowered rather than accelerat ...
... EXAMPLE: How much work is done by a girl in taking a 7.5 kg bowling ball from a shelf and lowering it 2.0 meters to the floor? Note, that gravity is pulling the bowling ball downwards and it’s the force exerted against this gravitational force that allows the ball to be lowered rather than accelerat ...
8-1 Newton`s Law of Universal Gravitation
... In this case, there are no non-conservative forces acting, and in the initial state the kinetic energy is zero because both objects are at rest. This gives U i = U f + K f . The final kinetic energy represents the kinetic energy of the system, the sum of the kinetic energies of the two objects. Let’ ...
... In this case, there are no non-conservative forces acting, and in the initial state the kinetic energy is zero because both objects are at rest. This gives U i = U f + K f . The final kinetic energy represents the kinetic energy of the system, the sum of the kinetic energies of the two objects. Let’ ...
Momentum and Impulse Unit Notes
... We’ve seen that if you want to change the momentum of an object or a system of objects, Newton’s second law says that you have to apply an unbalanced force. This implies that if there are no unbalanced forces acting on a system, the total momentum of the system must remain constant. This is another ...
... We’ve seen that if you want to change the momentum of an object or a system of objects, Newton’s second law says that you have to apply an unbalanced force. This implies that if there are no unbalanced forces acting on a system, the total momentum of the system must remain constant. This is another ...
Solutions to MR6T: Conservation of Energy
... by the ball on your hand will also be less. 2. Gravitational potential energy. a. The height h in gravitational potential energy, mgh, depends on the situation being analysed. It is often measured from the surface of the Earth. This is an arbitrary but convenient zero point, as all we can really mea ...
... by the ball on your hand will also be less. 2. Gravitational potential energy. a. The height h in gravitational potential energy, mgh, depends on the situation being analysed. It is often measured from the surface of the Earth. This is an arbitrary but convenient zero point, as all we can really mea ...
Kinematics - Gymnázium Slovanské náměstí
... becomes uniform… Give an example We must take into account friction and air resistance! ...
... becomes uniform… Give an example We must take into account friction and air resistance! ...