Answer:
1.584 m/s.
Step-by-step explanation:
Using,
Ek= Ws-Wf...................... Equation 1
Where Wf = work done against friction, Ek = kinetic energy of the rubber, Ws = work done by the spring.
1/2mv² = 1/2ke²-F'd................ Equation 2
Where m = mass of the rubber, v = velocity of the rubber, k = force constant of the spring, e = compression, F' = force of friction, d = distance/ length of contact.
make v the subject of the equation
v = √[2(1/2ke²-F'd)/m].................... Equation 3
Given: k = 9 N/m. e = 5 cm = 0.05 m, F' = 0.028 N, d = 12.4 cm = 0.124 m, m = 6.4 g = 0.0064 kg
Substitute into equation 3
v = √[2(1/2×9×0.05²-0.026×0.124)/0.0064]
v = √(2[0.01125-0.003224]/0.0064)
v = √2.508125
v = 1.584 m/s.