13. A pendulum is pulled to one side and released at time 0. It swings freely to the opposite side and stops. Which of the following might best represent graphs of kinetic energy (Ek), gravitational potential energy (Ep) and total mechanical energy (ET).

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Chapter8: Conservation Of Energy
Section: Chapter Questions
Problem 8.5OQ: Answer yes or no to each of the following questions. (a) Can an objectEarth system have kinetic...
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13. A pendulum is pulled to one side and released at time 0. It swings freely to the opposite side and stops. Which of
the following might best represent graphs of kinetic energy (Ek), gravitational potential energy (Ep) and total
mechanical energy (ET).
a.
b.
Energy
a.
Energy
Time
V=
Time
md
k
b.
C.
V=
d.
14. A mass m is attached to a spring with a spring constant k. The spring is oriented horizontally and the mass will slide
across a frictionless surface. If the mass is set into simple harmonic motion by a displacement d from its
equilibrium position, what would be the speed, v, of the mass when it returns to the equilibrium position?
kd
kd
k
v=d₁
m
mg
Energy
Energy
Time
Time
C.
IV=
d.
m
Transcribed Image Text:13. A pendulum is pulled to one side and released at time 0. It swings freely to the opposite side and stops. Which of the following might best represent graphs of kinetic energy (Ek), gravitational potential energy (Ep) and total mechanical energy (ET). a. b. Energy a. Energy Time V= Time md k b. C. V= d. 14. A mass m is attached to a spring with a spring constant k. The spring is oriented horizontally and the mass will slide across a frictionless surface. If the mass is set into simple harmonic motion by a displacement d from its equilibrium position, what would be the speed, v, of the mass when it returns to the equilibrium position? kd kd k v=d₁ m mg Energy Energy Time Time C. IV= d. m
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