Answer:
conservation of angular momentum ; conservation of energy
Step-by-step explanation:
The complete Question is given as follows:
" A uniform bar of mass (m) and length (L) is suspended on a frictionless hinge. A horizontally launched blob of clay of mass (m) strikes the bottom end of the bar and sticks to it. After that, the bar swings upward. What is the minimum initial speed (v) of the blob of clay that would enable the rod to swing a full circle? Which concepts/laws would be most helpful in solving this problem? Select the best answer from the options below. "
CHOICES
kinematics of rotational motion; conservation of energy
conservation of momentum ; conservation of energy
conservation of angular momentum ; conservation of momentum
conservation of angular momentum ; conservation of energy
conservation of energy ; Newton's laws
Newton's laws ; conservation of angular momentum
conservation of angular momentum ; kinematics of rotational motion
Newton's laws, kinematics of rotational motion
Solution:
- We will apply the conservation of angular momentum M. Note the linear momentum does not remains conserved as the rod stores some energy as the clay sticks to the rod:
M_i = M_f
- Initially the rod was at rest and clay had velocity of v, then M_i can be written as:
M_i = m*v*L
- The final momentum is the combined effect of clay and rod:
M_f = ( m*L^2 + I_rod )*w
- Where w is the angular speed of the rod after impact. And I_rod is the moment of inertia of rod.
I_rod = mL^2 / 3
M_f = ( m*L^2 + m*L^2 /3 )*w = (4*m*L^2 / 3)*w
- Formulate w in terms of initial velocity v:
m*v*L = (4*m*L^2 / 3)*w
0.75*v / L = w
- The minimum amount of velocity required would be enough to complete half of a circle.
- Apply conservation of Energy principle:
T_i + V_i = T_f + V_f
Where, T is the kinetic energy soon after impact and at top most position.
Assuming, T_f = 0 , for minimum velocity required to complete on circle.
T_i = 0.5*I_combined*w^2
Where, I_combined = I_clay + I_rod = 4*m*L^2 / 3
And w = 0.75*v / L:
T_i = 0.5*[4*m*L^2 / 3]*[0.75*v / L]^2
T_i = 0.5*[m]*[v^2]
Also, V is the potential energy of the clay plus rod system soon after impact and at top most point.
V_i = 0 ( Datum )
V_f = V_rod + V_clay
V_f = m*g*L + m*g*2L = 3*m*g*L
- Plug in the expressions in the energy balance and we get:
0.5*[m]*[v^2] + 0 = 0 + 3*m*g*L
v_min = sqrt ( 6*g*L)
- So the choices used were:
conservation of angular momentum ; conservation of energy
