This document contains the worked solutions to 4 questions regarding damped oscillators and forced oscillations.
Question 1 involves finding the damping constant, natural frequency, and oscillation period for a damped oscillator. Question 2 determines the period and natural frequency of a damped block-spring system.
Question 3 provides the equation of motion for an oscillator driven by an external force and calculates the steady-state amplitude and phase lag. Question 4 finds the resonance frequency that produces maximum amplitude and calculates the steady-state displacement for a constant driving force.
1. SMES1201: VIBRATION AND WAVES (GROUP 8)
TUTORIAL #2
NAME : WAN MOHAMAD FARHAN BIN AB RAHMAN
MATRICES NO : SEU110024
DATE : 12 MAY 2014
QUESTION 1
A damped oscillator with mass 2 kg has the equation of motion 2xฬ + 12 xฬ + 50 x = 0 , where x
is the displacement from equilibrium, measured in meters.
(a) What are the damping constant and the natural angular frequency for this oscillator?
(b) What type of damping is this ? Is the motion still oscillatory and periodic ? If so, what
is the oscillation period ?
Solution:
(a) Mass of oscillator = 2 kg
Equation of motion for damped oscillation :
Fnet = Fdamping + Frestore
That is , xฬ +
๐พ
๐
xฬ + ๐o
2
x = 0 ----------------- (*)
Given that the equation of motion is 2xฬ + 12 xฬ + 50 x = 0 --------------------------(**)
We then divide (**) by 2, become xฬ + 6 xฬ + 25 x = 0 --------------------------(***)
By comparison of (*) and (***) ,
๐พ
๐
= 6s-1
, then damping constant, ๐พ = 6s-1 (2kg) = 12kgs-1 ,
๐o
2 = 25 , then natural angular frequency , ๐o = 5 s-1
(b) We stipulate solution x(t) to equation (*) for a damped oscillator of the form ๐ ๐ผ๐ก
times X(t)
x (t) = ๐ ๐ผ๐ก
X (t)
xฬ (t) = ๐ผ๐ ๐ผ๐ก
X (t) + ๐ ๐ผ๐ก
Xฬ (t)
xฬ (t) = ๐ผ2 ๐ ๐ผ๐ก
X (t) + 2๐ผ๐ ๐ผ๐ก
Xฬ (t) + ๐ ๐ผ๐ก
Xฬ (t)
From the types of damping, we test for value of 2m๐o that is equal to (2)(2kg)(5s-1) = 20kgs-1 ,
which is larger than ๐พ = 12kgs-1 , thus the oscillation described an underdamped oscillation.
2. The oscillation occur and periodic such that the amplitude decreases gradually by an exponential
factor of ๐โ5๐ก
.
The oscialltion period, T =
2๐
๐
For underdamped oscillator , x(t) = Ao ๐โ๐พ๐ก/2๐
sin (๐๐ก + ๐o ) ,
Where ๐ = ( ๐o
2 - ๐พ2 / 4m2 ) ยฝ = ( ๐o
2 -
1
4
( ๐พ / m )2 ) ยฝ = ( 25 -
1
4
( 6 )2 ) ยฝ = 4s-1 ( > 0 )
Thus, T = 2 ๐ / 4s-1 = 1.5708 s
QUESTION 2
A block of mass 90 grams attached to a horizontal spring is subject to a friction force
F fric = -ฮณxฬ when in motion , with ฮณ = 0.18 kg s-1 . The system oscillates about its equilibrium
position but loses 95% of its total mechanical energy during one complete cycle.
(a) Determine the period of the damped oscillation
(b) Find the natural angular frequency and the spring constant , k
Solution
(a) Mass of block = 90 grams = 0.09 kg
F fric = -ฮณxฬ , with ๐พ = 0.18 kgs-1
The block undergoes underdamped oscillation and the system maintains 5% of its total
mechanical energy.
Time dependent amplitude, A(t),
A(t) = Ao ๐โ๐พ๐ก/2๐
= Ao ๐
โ
๐ก
2๐/ ๐พ = Ao ๐
โ
๐ก
2(0.09๐๐)/(0.18๐๐๐ โ1) = Ao ๐โ๐ก
= Ao (
1
๐ ๐ก
)
Etotal โ A(t) 2 , initially Eo โ Ao
2 , so Etotal โ ( Ao ๐โ๐ก
) 2 = Ao
2 ๐โ2๐ก
===> Etotal / Eo = ๐โ2๐ก
Solving this for the time when Etotal / Eo = 0.05
By comparison , 0.05 = ๐โ2๐ก
, thus t = 1.498 s
The system oscillates about its equilibrium position but loses 95% of its total mechanical
energy during ONE COMPLETE CYCLE, means that :
The period of the damped oscillation, T = t = 1.498 s
3. (b) The period of the damped oscillations, T =
2๐
๐
, thus ๐ =
2๐
T
Angular frequency, ๐ =
2๐
1.498s
= 4.194 s-1
To find the natural angular frequency, ๐o , use the formula of ๐ = ( ๐o
2 -
1
4
( ๐พ / m )2 ) ยฝ
Thus, , ๐o = ( ๐ 2 +
1
4
( ๐พ / m)2 ) ยฝ = ( (4.194) 2 +
1
4
( 0.18 / 0.09 )2 ) ยฝ
๐o = 4.312 s-1
Spring constant , k = ๐o
2 . m = ( 4.312) 2 ( 0.09 ) = 1.673 Nm-1
QUESTION 3
An oscillator with a mass of 300 g and a natural angular frequency 0f 10 s-1 is damped by a
force -24 xฬ N, and driven by a harmonic external force with amplitude 1.2 N and angular
frequency 6s-1 .
(a) Write the equation of motion for this system.
(b) Calculate the amplitude A and phase lag ฮด of the steady-state displacement ,
Xp (t) = A cos (๐t โ ฮด ).
Solution:
(a) External or driving force : F(t) = Fo cos (๐e t)
Equation of motion for forced oscillations: Fnet = Fdamping + Frestore + F(t)
๏ฐ That is , xฬ +
๐พ
๐
xฬ + ๐o
2
x =
Fo
๐
cos (๐e t) ----------------- (*)
Given mass of oscillator ,m = 300g = 0.3 kg
๐o = 10 s-1
Fdamping = -24 xฬ N, with ๐พ = 24kgs-1
Fo = 1.2 N , ๐e = 6s-1
Then, equation of (*) will become : , xฬ +
24
0.3
xฬ + 102
x =
1.2
0.3
cos (6t)
We simplify it, become xฬ + 80 xฬ + 100 x = 4 cos (6t)
(b) We hypothesize that :
Xp (t) = A cos (๐et โ ฮด )
xฬp (t) = - ๐e A sin (๐et โ ฮด )
xฬp (t) = - ๐e
2A cos (๐et โ ฮด )
4. We know that , the displacement amplitude of a driven oscillator in the steady state,
A =
Fo
๐
/ ( ( ๐o
2
- ๐e
2
)2
+ ๐พ2 ๐e
2
/ m2
) ยฝ
Also the phase angle or phase lag between force and displacement in the steady state,
tan ฮด = ( ๐พ ๐e / m ) / ( ๐o
2
- ๐e
2
)
Then, A =
1.2 N
0.3 ๐๐
/ ( (10 2 - 62 )2 + 242 62 / 0.32 ) ยฝ
= 4 / โ234496
= 0.00826 m
Phase lag (in radians) tan ฮด = ( 24 (6)/ 0.3 ) / ( 10 2 - 62 )
tan ฮด = 480 / 64 = 7.5
ฮด = 1.438 radians
QUESTION 4
A block of mass m = 200 g attached to a spring with constant k = 0.85 N m-1 . When in motion,
the system is damped by a force that is linear in velocity, with damping constant,
ฮณ = 0.2kg s-1 . Then, this block+ system system is subjected to a harmonic external force
F(t) = Fo cos (๐e t) , with a fixed amplitude Fo = 1.96 N.
(a) Calculate the driving frequency ๐e, max at which amplitude resonance occurs. Find the
steady-state displacement amplitude.
(b) Calculate the steady-state displacement of the system when the driving force is
constant, i.e. for ๐e = 0
Solution :
(a) Mass of block , m = 200 g = 0.2 kg
Spring constant, k = 0.85 Nm-1
Damping constant, ๐พ = 0.2kgs-1
Harmonic external force , F(t) = Fo cos (๐e t) , given Fo = 1.96 N
dA
dฯe
= 0 (consider Fo , ๐พ , m, mo = constant)
A = function of ๐e
5. U (๐e) = (๐o
2
- ๐e
2
) 2
+ ๐พ2
๐e
2
/ m2
A =
Fo
๐
U-1/2
dA
dฯe
=
dA
dU
x
dU
dฯe
= +๐e
Fo
๐
U-3/2
( 2(๐o
2
- ๐e
2
) 2
- ๐พ2
/๐2
)
Thus, max A ---------> 2(๐o
2
- ๐e
2
) 2
= ๐พ2
/๐2
๐e = (๐o
2
- ๐พ2
/2๐2
) ยฝ
= (3.75)1/2
= 1.936 s-1
๐o = (k/m)1/2
A =
Fo
๐
/ ( (๐o
2
- ๐e
2
) 2
+ ๐พ2
๐e
2
/ m2
) ยฝ
= (1.96/0.2) / ( (2.06155 2
- 1.9362
) 2
+ (0.2)2
(1.9362
/ (0.2)2
) ยฝ
= 4.9 m
๐e, max < ๐o , that means amplitude resonance always occurs for a
driving frequency < ๐o
(b) When the driving force is constant ( ๐e = 0 ), then this is the case when the external
force varies much more slowly than natural restoring force , Frestore = -m ๐o
2
x.
Thus, ๐e can be ignored relative to ๐o .
From formula of tan ๐ฟ = ( ๐พ ๐e / m ) / ( ๐o
2 - ๐e
2 ) , substitute ๐e = 0
It will become tan ๐ฟ = ( ๐พ ๐e / m ) / ( ๐o
2 ) , and since ๐e / ๐o
2 is very small number,
Then tan ๐ฟ โ 0
From formula of A =
Fo
๐
/ ( ( ๐o
2
- ๐e
2
)2
+ ๐พ2 ๐e
2
/ m2
) ยฝ
, substitute ๐e = 0
It will become A =
Fo
๐
/ ( ( ๐o
4
+ 0 ) ยฝ
=
Fo
๐
/ ๐o
2
= Fo / m ๐o
2
The steady-state displacement of the system, = ( Fo / m๐o
2 ) cos (๐e t)
= ( Fo / m๐o
2 ) (1)
= 1.96 / 0.2(2.06155)2
= 2.306 m