Answer:
F = 453.6 N
Explanation:
We apply Newton's second law to the merry-go-round :
∑Ft= m*at Formula (1
Where:
∑Ft :algebraic sum of tangential forces (N)
m: merry-go-round mass (Kg)
at: tangential acceleration (m/s²)
Kinematics equations of the merry-go-round
ω= ω₀ + α*t Formula (2)
at = α*R Formula (3)
Where:
α : angular acceleration (rad/s²)
t : time interval (s)
ω₀ : initial angular speed ( rad/s)
ωf : final angular speed ( rad/s)
R : radius of the circular path (m)
Data
m=160-kg
R= 1.50 m
ω₀=0
ωf = 0.600 rev/s
1 rev = 2π rad
ωf = 0.6*2π rad/s = 3.77 rad/s
t = 2 s
Calculation of angular acceleration of the merry-go-round
We replace data in the formula (2)
ω= ω₀ + α*t
3.77= 0 + α*(2 )
α= 3.77 / 2
α= 1.89 rad/s²
Calculation of tangential acceleration
We replace data in the formula (3)
at= α*R
at= (1.89)*(1.5)
at= 2.835 m/s²
Constant force (F) that would have to be exerted on the rope to bring for the merry-go-round from rest to an angular speed of 0.600 rev/s in 2.00 s :
We replace data in the formula (1)
F = m*at
F = (160 kg) * (2.835 m/s²)
F = 453.6 N
