A sphere of mass m = 2.5 kg can move across a horizontal, frictionless surface. Attached to the sphere is an ideal spring with spring constant k = 33 N/m. At time t=0 the sphere is pulled aside from the equilibrium position, x=0, a distance d = 13 cm in the positive direction and released from rest. After this time, the system oscillates between x = ±d. 14% Port (h) What is the sphere's distance from equilibrium in k 1.62 x = 0 14% Part (a) Determine the magnitude of the force, in newtons, required to initially displace the sphere d = 13 cm from equilibrium. F = 4.29 ✓ Correct! m Otheexpertta.com

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A sphere of mass m = : 2.5 kg can move across a horizontal, frictionless surface.
Attached to the sphere is an ideal spring with spring constant k = 33 N/m. At time t=0 the sphere is
pulled aside from the equilibrium position, x=0, a distance d = 13 cm in the positive direction and
released from rest. After this time, the system oscillates between x = ±d.
k
14% Part (b) What is the sphere's distance from equilibrium, in meters, at time t = 1 s?
ww m
-d-
x = 0
Otheexpertta.com
14% Part (a) Determine the magnitude of the force, in newtons, required to initially displace the sphere d = 13 cm from equilibrium.
F = 4.29 ✓ Correct!
Transcribed Image Text:A sphere of mass m = : 2.5 kg can move across a horizontal, frictionless surface. Attached to the sphere is an ideal spring with spring constant k = 33 N/m. At time t=0 the sphere is pulled aside from the equilibrium position, x=0, a distance d = 13 cm in the positive direction and released from rest. After this time, the system oscillates between x = ±d. k 14% Part (b) What is the sphere's distance from equilibrium, in meters, at time t = 1 s? ww m -d- x = 0 Otheexpertta.com 14% Part (a) Determine the magnitude of the force, in newtons, required to initially displace the sphere d = 13 cm from equilibrium. F = 4.29 ✓ Correct!
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