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Physics
Session
Work, Power and Energy - 3
Session Objectives
Session Objective
Non Uniform circular motion
Problems
Non Uniform circular motion
min tT (at top) 0 v gr
2b
max
mvT (at bottom) mg
r
2 2b
1 1mv mgr(1 cos ) mv (ii)
2 2
2 2t bAt top : v v 2gr
2mvT mgcos .............(i)
r
= 0
T
r
mg
mgcos
Non Uniform circular motion
Using (i) and (ii)
(a) Particle just completes a circle (Ttop=0)
bottom top
bottom
V 5gr V gr
T 6mg
Illustrative Problem
m
d
0.6
One end of a string of length is pivoted and a ball of mass m is attached at the other end. The ball is released from rest from a horizontal position. There is a nail at a distance d = 0.6 directly below the point of pivoting. The change in the tension in the string just after it touches the nail and just before it touches is
(a) 3 mg (b) 6 mg
(c) mg (d) 0.5 mg3
2
Solution
Mass m reaches the bottom B, where tension
2b
Amv
T mg (in a circle of radius )
B
A O
T
0.6 L
D
mg
As the loss of P.E. is mg
2 2b b
1mv mg v 2g
2
AT mg 2mg 3mg
Solution
But vb is still the same.
So new value of tension 2
bB
mvT mg
0.4
2mgmg 6 mg
0.4
TB – TA = 3 mg
At B the radius of circle
= DB
= – 0.6 = 0.4
B
A O
T
0.6 L
D
mg
Class Exercise
Class Exercise - 1
A stone is thrown from the top of a cliff whose height is H. The magnitude of initial velocity is v. Neglecting air resistance, the stone hits the ground with maximum kinetic energy if it is thrown
(a) vertically upward (b) horizontally
(c) vertically downward (d) in any direction
Solution
Final kinetic energy = Initial kinetic energy + Loss in potential energy
Initial KE in all the cases are equal.
Loss in PE = mgh is also equal in all the cases.
Final KE is then equal in all the cases and independent of direction.
Hence answer is (d)
Class Exercise - 2
The spring, which is horizontal, is supported by two identical hanging masses as shown. When both masses are released from rest at the same time, the spring is stretched by an amount x. Then the work done by the spring on each mass is
2 2
2 2
1 1(a) kx (b) kx
2 4
1 1(c) kx (d) kx
4 2
Force constant = k
m m
Solution
The gravity forces of the masses do work
on the spring, which is . So work
done by restoring force of the spring on
both masses is So work done on
each mass (they are identical) is
21kx
2
21kx
2
21kx
4
Hence answer is (c)
Class Exercise - 3
Consider the two statements:
(i) The negative of the work done by the conservative internal forces of a system is equal to the change in total energy.
(ii) Work done by external forces on a system equals the change in total energy.
(a) (i) and (ii) are correct
(b) (i) is incorrect and (ii) is correct
(c) (i) is correct and (ii) is incorrect
(d) Both (i) and (ii) are incorrect
Solution
Conservative internal forces do work in changing the configuration of the system and by definition, the negative of the work done is equal to an increase in potential energy. (i) is incorrect. External forces, by doing work on a system change its total energy. So (ii) is correct.
Hence answer is (b)
[Both explanations are of the nature of definition of the terms.]
Class Exercise - 4
A block of mass m rests on a rough inclined plane inclined at an angle to the horizontal. The plane is fixed in a lift, which moves up with a constant velocity v. The work done by the normal reaction force on the block over a time t is
(a) mg vt (b)
(c) (d)
2mg vt cos
mg vt cos 2mg vt sin
Solution
The block is in equilibrium, so total work done is zero. But individual forces (gravity force, friction, normal reaction) do work as a displacement it exists for the block.
N = mg cos
s = vt
W = Ns cos
= mgvt cos2
N
Class Exercise - 6
A projectile is fired from the top of a tower 80 m high, with a speed of 30 m/s. What is its speed when it hits the ground? (g = 10 m/s2)?
Solution
Potential energy at height h = mgh (with respect to ground)
Kinetic energy at height 2h
1h mv
2
Kinetic energy at ground level = 2g
1mv
2
Mechanical energy at h = Mechanical energy at ground level
2 2h g
1 1mv mgh mv
2 2 2 2 2
g hv v 2gh 30 2 10 80
= 900 + 1600 = 2500 gv 50 m/ s
Class Exercise - 7
A body of mass 500 g is subjected to a force of (0.8x + 20) N, where x is displacement of the particle in metres. What work is done when the particle is displaced from x = 1 m to x = 2 m?
Solution
F is along x.
dW Fdx
f
i
x
i fx
W (x to x ) F dx f
i
x
x
(0.8x 20)dx f
fi
i
x2xx
x
0.8x[20x]
2
2 2f i
if
0.8x 0.8x20x 20x
2 2
Substituting values of f ix 2m, x 1m
W = [1.6 + 40] – [0.4 + 20]
= 21.2 J
Class Exercise - 8
The bob of a simple pendulum of length 0.5 m has a speed of 2 m/s when it makes an angle of 30° with the horizontal. If acceleration due to gravity is 10 m/s2, with what speed does the bob pass the lowest position?
Solution
or loss of potential energy of mgh
2 2h
1 1mg (1 sin ) mv mv
2 2
2 2hv v 2g (1 sin30)
2 2h
1v 2 10 0.5 4 5 9 (m/ s)
2
L h
sin
H
V
Vn
Moving from H to L, the bob loses a height of h (1 sin )
v 3m/ s
Class Exercise - 9
Block A (of mass m) is pushed against a light horizontal spring of length L and spring constant K. A is resting on a smooth horizontal surface. If it is pushed so as the spring is compressed to half its length, with what speed will it leave the spring? (The spring is attached to a rigid wall)
A
Smooth surface
m
K
Solution
When the spring is restored to its original length, the block will have the maximum velocity as whole of the potential energy of the spring would have converted to kinetic energy of the block. When the edge of the block is at distance x from wall , loss in
spring energy to kinetic energy
LL x
2
2
21 L 1K K L x
2 2 2
AK
L/2 L/2x
Solution
This is equal to kinetic energy of the
Block .21mv
2
1/ 222K L
v (L x)m 4
K LWhen fully extended, x L v .
m 2
Class Exercise - 10
The mass m is pulled up from rest by a light cord, passing around a light pulley, and subjected to a constant, horizontal force F. The mass has a constant acceleration a. Using the work energy concept, relate acceleration ‘a’ to F, acceleration due to gravity (g) and mass m.
m
F
Solution
When the mass is raised by a height h Work done by the force F increases the potential energy as well as the kinetic energy of the mass m
21Fh mv mgh (i) (v is speed at height h)
2
Work done by the net force increases the kinetic energy of the mass. Net force is equal to ma.
h
F
m
Solution
21(ma)h mv
2
Using (i) Fh = mah + mgh
F = ma + mg
a = (F – mg)/m.
Thank you