View
244
Download
1
Category
Preview:
Citation preview
7/29/2019 Dynamics Tutorial 11-Damped vibrations-13p.pdf
http://slidepdf.com/reader/full/dynamics-tutorial-11-damped-vibrations-13ppdf 1/13
ENGINEERING COUNCIL
DYNAMICS OF MECHANICAL SYSTEMS D225
TUTORIAL 11– DAMPED VIBRATIONS
This work covers elements of the syllabus for the Engineering CouncilExam D225 – Dynamics of Mechanical Systems, C105 Mechanical andStructural Engineering and the Edexcel HNC/D module MechanicalScience.
On completion of this tutorial you should be able to do the following.
• Define a free damped oscillation.
• Explain the purpose of damping.
• Define damping coefficient.
• Define damping ratio.
• Derive formulae that describe damped vibrations.
• Determine the natural frequency and periodic time fordamped systems.
• Define amplitude reduction factor.• Calculate damping coefficients from observations of
amplitude.
This tutorial covers the theory of natural vibrations with damping andcontinues the studies in the tutorial on free vibrations. To do the tutorialfully you must be familiar with the following concepts.
• Simple harmonic motion.
• Free vibrations.
7/29/2019 Dynamics Tutorial 11-Damped vibrations-13p.pdf
http://slidepdf.com/reader/full/dynamics-tutorial-11-damped-vibrations-13ppdf 2/13
INTRODUCTION
In the tutorial on free vibrations it was explained that once set vibrating, the systemwould carry on oscillating for ever because the energy put into the system by theinitial disturbance cannot get out of the system. In reality, the oscillation always dies
away with time because some form of friction is present. The diagram shows adisplacement – time graph of a typical damped oscillation.
Figure 1Friction dissipates the energy as heat. Such vibrations are called free and damped. Thetype of friction that is easiest to deal with mathematically is that created by a dashpot(also called a damper). Let us now examine two kinds of dashpots.
1 DASHPOTS Here we will examine dashpots for linear motion. The diagram shows two types of
dashpot, air and oil.AIR-The piston moves inside the cylinderand pumps or sucks air through the orifice.Because of the restriction, pressure is neededto make the air flow through the orifice andthis pressure will produce a force opposingthe motion. Often the piston is replaced witha simple diaphragm.OIL-The oil is contained in the cylinder andmotion of the piston pushes the oil through
restrictors in the piston to the other side.Again, pressure is needed to force the fluidthrough the restrictor and this produces aforce opposing motion. It can be shown thatfor both cases, the force opposing motion(the damping force) is directly proportionalto the velocity of the piston. The equation forthis force is as follows.
dt
dx cvelocityxconstantFd == Figure 2
The constant of proportionality ‘c’ is called the damping coefficient and has units of
N s/m. The value of ‘c’depends on the size of the restriction.
© D.J .Dunn freestudy.co.uk 2
7/29/2019 Dynamics Tutorial 11-Damped vibrations-13p.pdf
http://slidepdf.com/reader/full/dynamics-tutorial-11-damped-vibrations-13ppdf 3/13
2. DAMPED LINEAR VIBRATIONS
Consider a mass suspended on a spring with the dashpot between the mass and thesupport.
Figure 3
If a force F is applied to the mass as shown, it is opposed by three forces. These are:
The inertia force given by2
2
idt
xd MonacceleratixMassF ==
The damping force given bydt
dx cvelocityxconstantFd ==
The spring force given by Fs=k x
The total force is then
kxdt
dxc
dt
xdMF
FFFF
2
2sdi
++=
++=
Because the vibration is free, the applied force must be zero (e.g. when you let go of it).
kxdt
dxc
dt
xdM0
2
2
++= and this is a linear second order differential equation and it is
much discussed in most maths books. We make the following changes. First divideeach term by k.
xdt
dx
k
c
dt
xd
k
M
0 2
2
++=
© D.J .Dunn freestudy.co.uk 3
7/29/2019 Dynamics Tutorial 11-Damped vibrations-13p.pdf
http://slidepdf.com/reader/full/dynamics-tutorial-11-damped-vibrations-13ppdf 4/13
In the work on undamped vibrations it was shown that without a dashpot a natural
oscillation occurs with angular frequencyωn =√(k/M) rad/s. We may replace (k/M)
withωn2.
x
dt
dx
k
c
dt
xd
ω
1 0
2
2
2
n
++=
Next we examine the term c/k. We need to start with a definition. We will be using aterm called the critical damping coefficient and it is defined as follows.
4Mkcc =
This has the same units as the damping coefficient (N s/m). The ration c/cc is calledthe damping ratio and this is defined as follows.
cc
cδ =
This may now be developed as follows.
n
n
c
ω
2δ
k
c
ω2k
c
k
M
2k
c
Mk2
c
4Mk
c
c
cδ
=
=====
We can now replace the term c/k in our equation.
xωdtdxωδ2
dtxd0
ωbyeach termmultiplyfinallyandxdt
dx
ω
2δ
dt
xd
ω
1 0
2nn2
2
2n
n2
2
2n
++=
++=
This is now a standard equation and the solution may be found in standard text as
x =Aeat+Be-bt
A and B are constants of integration and
a ={ωn(δ2-1) - 1} b ={ωn(δ2-1) +1}
The resulting graph of displacement x with time t depends upon the damping ratio andhence the value of c. Three important cases should be considered.
© D.J .Dunn freestudy.co.uk 4
7/29/2019 Dynamics Tutorial 11-Damped vibrations-13p.pdf
http://slidepdf.com/reader/full/dynamics-tutorial-11-damped-vibrations-13ppdf 5/13
2.1. UNDER DAMPED
This occurs when δ <1 and c <cc. If we assume that t =0 and x =C at the momentthe mass is released we get a decaying cosinusoidal oscillation as shown. The
displacement is described by the following equation.
( )ωtcost
nδω
Cex−
= The graph shows the result if the mass is pulled down 10 units and released. In thiscase C =-10.
Figure 4
The natural undamped angular frequency isωn =(k/M)½ .
The damped frequency is ω =ωn√(1- δ2). The damped frequency is f =ω/2π and
the periodic time of the damped oscillation is T =1/f =2π/ω
AMPL ITUDE REDUCTION FACTORConsider two oscillations, one occurring m cycles after the first.
use.toexpressionusefulmoreaprobablyisthisand
δ-1
mδ 2π
x
xln
solexponentiatheof ridgettolognaturalthetakenext weandδ-1
mδ2π
ex
x
henceδ-1
mδ2π mTδωandδ-1ωωsubstituteNow
ω
ωmδ2π becomesthisand
ω
2π TPutmT.δωtermtheexamineNow
FACTORREDUCTIONAMPLITUDEmTδω
emT)(tδω-
Ce
tδω-Ce
x
x isratio The
mT)(tδω-Cex
solatersecondsmTocccurslatercyclesm''occursn thatoscillatiotheof amplitude The
tδω-Cexistat timenoscillatiofirsttheof amplitude The
22
1
2
2
1
2n
2n
nn
n
n
n
2
1
n2
n1
=⎟⎟
⎠
⎞⎜⎜
⎝
⎛
=
==
=
==+
=
+=
=
© D.J .Dunn freestudy.co.uk 5
7/29/2019 Dynamics Tutorial 11-Damped vibrations-13p.pdf
http://slidepdf.com/reader/full/dynamics-tutorial-11-damped-vibrations-13ppdf 6/13
2.2. CRITICALLY DAMPED.
If the damping is increased, the oscillations die away quicker and eventually a criticalpoint is reached where the mass just returns to the rest position with no overshoot or
oscillation. This occurs when δ =1 and c =cc. The result is an exponential decay as
shown.
2.3. OVERDAMPED
This occurs when δ >1 and c >cc. The result is an exponential decay with no
oscillations but it will take longer to reach the rest position than with critical damping.
Figure 5
© D.J .Dunn freestudy.co.uk 6
7/29/2019 Dynamics Tutorial 11-Damped vibrations-13p.pdf
http://slidepdf.com/reader/full/dynamics-tutorial-11-damped-vibrations-13ppdf 7/13
WORKED EXAMPLE No.1
A vibrating system is analysed and it is found that two successive oscillations
have amplitudes of 3 mm and 0.5 mm respectively. Calculate the amplitudereduction factor and the damping ratio.
SOLUTION
For successive amplitudes m =1
0.2740.075δand 0.07513.298
1 δand 113.298δ
12.298δδ-1 so δ-1
39.478δ3.21
sidesbothsquare
δ-1
δ 2π 1.792
factorreductionamplitude1.792ln60.5
3ln
x
xln
22
22
2
2
2
2
1
=====
==
=
===⎟ ⎠
⎞⎜⎝
⎛ =⎟⎟
⎠
⎞⎜⎜⎝
⎛
© D.J .Dunn freestudy.co.uk 7
7/29/2019 Dynamics Tutorial 11-Damped vibrations-13p.pdf
http://slidepdf.com/reader/full/dynamics-tutorial-11-damped-vibrations-13ppdf 8/13
WORKED EXAMPLE No.2
A mass of 5 kg is suspended on a spring and set oscillating. It is observed that theamplitude reduces to 5% of its initial value after 2 oscillations. It takes 0.5seconds to do them. Calculate the following.
i. The damping ratio.ii. The natural frequency.iii. The actual frequency.iv. The spring stiffness.v. The critical damping coefficient.vi. The actual damping coefficient.
SOLUTION
For 2 oscillations m =2 and x1/x2 =100/5 =20
( ) ( )
( )
Ns/m58.30.232x251.3δxccistcoefficiendampingactual The
Ns/m251.33158x5x44Mkc
bygivenistcoefficiendampingcritical The
N/m3158kso5
k8andsimplify
5
k
2π
1 4 so
M
k
2π
1f
Hz3.7850.0538-14δ-1f f bygivenisfrequencydamped The
Hz40.5
2f
takentimensoscillatioof numbertheisfrequencynatural The
0.232δ .05380δ
1δ18.59
δ-117.59δ
8.976δ-1
δ157.9
(2.996)δ
-1
)δ π(4
sidesbothsquarenextand2.996δ-1
2δ π2 20ln
δ-1
mδ 2π
x
xln
c
c
2
n
2n
n
2
2
22
2
2
2
2
2
2
22
1
===
===
====
===
==
÷
==
=
=
=
=
==
=⎟⎟ ⎠
⎞⎜⎜⎝
⎛
π
© D.J .Dunn freestudy.co.uk 8
7/29/2019 Dynamics Tutorial 11-Damped vibrations-13p.pdf
http://slidepdf.com/reader/full/dynamics-tutorial-11-damped-vibrations-13ppdf 9/13
WORKED EXAMPLE No.3
A mass of 5 kg is suspended on a spring of stiffness 4000 N/m. The system is
fitted with a damper with a damping ratio of 0.2. The mass is pulled down 50 mmand released. Calculate the following.
i. The damped frequency.ii. The displacement, velocity and acceleration after 0.3 seconds.
SOLUTION
You will need to be able to do advanced differentiation in order to follow thissolution.
( ) ( )
( ) ( )
( ) ( ) ( )
1493mm/sa
eωδt50coseωδωt100sineωωt50cosdt
dva
ONACCELERATI
mm/s195eδωωt50cosωeωt50sindt
dxv
VELOCITY
mm3.4-0.657)(x0.12x50x
34.641tcos50e-ωtcosCex
mm50-Csomm50downisntdisplacemeinitial The
rad/s34.6410.2135.355δ1ωω
i)(AnswerHz5.5130.215.627δ1f f
Hz5.6272π
ωf
rad/s35.3554
5000
M
kω
tωδ-2n
2tωδ-n
tωδ-2
tωδ-
n
tδω-
0.3x35.355x0.2-tδω-
22n
22n
nn
n
nnn
nn
n
=
++−==
=−−==
=−=
==
=
=−=−=
=−=−=
==
===
ω ω
© D.J .Dunn freestudy.co.uk 9
7/29/2019 Dynamics Tutorial 11-Damped vibrations-13p.pdf
http://slidepdf.com/reader/full/dynamics-tutorial-11-damped-vibrations-13ppdf 10/13
SELF ASSESSMENT EXERCISE No.1
1. A mass of 50 kg is suspended from a spring of stiffness 10 kN/m. It is set
oscillating and it is observed that two successive oscillations have amplitudes of 10 mm and 1 mm. Determine the following.
. The damping ratio. (0.188)
. The damping coefficient.(254.5 N s/m)
. The true frequency. (2.21 Hz)
2. A mass of 5 kg is suspended from a spring of stiffness 46 kN/m. A dashpot is
fitted between the mass and the support with a damping ratio of 0.3.Calculate the following.
. The undamped frequency. (15.26 Hz)
. The damped frequency. (14.56 Hz)
. The amplitude reduction factor.(1.976)
. The critical damping coefficient.(959 N s/m)
3. A mass of 30 kg is supported on a spring of stiffness 60 000 N/m. The system isdamped and the damping ratio is 0.4. The mass is raised 5 mm and then released.Calculate the following.
i. The damped frequency. (6.523 Hz)
ii. The displacement, velocity and acceleration after 0.1 s.(-4.812 mm, 366 mm/s and -3475 mm/s)
© D.J .Dunn freestudy.co.uk 10
7/29/2019 Dynamics Tutorial 11-Damped vibrations-13p.pdf
http://slidepdf.com/reader/full/dynamics-tutorial-11-damped-vibrations-13ppdf 11/13
3. TORSIONAL OSCILLATIONS
The theory is the same for torsional oscillations. the linear quantities are replaced withangular quantities in the formula. These are
Mass m 2nd moment of inertia IForce F Torque T
Distance x angleθ
Velocity v angular velocityω Acceleration a angular accelerationα
Figure 6
A dashpot for a torsional system would consist of a vane which rotates inside a pot of oil. The damping torque is directly proportional to the angular velocity such that
Damping Torque =cω
c is the torsional damping coefficient with units of N m s/radian.
The torsional spring stiffness is torque per unit angle so the units of k are Nm/radian.
The critical damping coefficient is cc=√(4 I k) The natural frequency is ωn=√(k/I)
Remember that for a shaft the torsional stiffness kt =GJ/L The polar second moment of area for a circular section isπD4/32
The actual angular frequency isω =ωn√(1- δ2)
The amplitude reduction factor is2
2
1
δ-1
mδ 2πln =⎟⎟
⎠
⎞⎜⎜⎝
⎛
θ
θ where θ is the angular
displacement.
© D.J .Dunn freestudy.co.uk 11
7/29/2019 Dynamics Tutorial 11-Damped vibrations-13p.pdf
http://slidepdf.com/reader/full/dynamics-tutorial-11-damped-vibrations-13ppdf 12/13
WORKED EXAMPLE No.4
A horizontal shaft is fixed at both ends and carries a flywheel at the middle. Theshaft is 1 m long either side of the flywheel and is 10 mm diameter. The flywheel
has a moment of inertia of 1.9 kg m2. The system has proportional damping and itis observed that the amplitude reduces by 60% after one oscillation. The shaftmaterial has a modulus of rigidity of 90 GPa.Calculate the following.
i. The damping ratio.ii. The natural frequency.iii. The actual frequency.iv. The spring stiffness.v. The critical damping coefficient.vi. The actual damping coefficient.
SOLUTION
For 1 oscillations m =1 andθ1=100% θ2 =40% θ1/θ2=100/40 =2.5
( ) ( )
s/radianmN17.540.1443x121.5δxccistcoefficiendampingactual The
Ns/m121.51944x1.9x4kI4c
bygivenistcoefficiendampingcritical The
Hz5.040.0208-15.09δ-1f f bygivenisfrequencydamped The
Hz09.51.9
1944
2π
1
I
k
2π
1f isfrequencynatural The
s/radianmN19441
10x0.98x10x90x2 GJ/L2k
m10x0.9832
0.01xπ
32
πD Jdoubled.
isitsoflywheeltheof sideeachoneisthereandGJ/Lkisstiffnesstorsional The
0.1443δ .02080δ
1δ48
δ-147δ
0.8396δ-1
δ39.478
(0.9163)δ
-1
)δ π(2
sidesbothsquarenextand0.9163δ-1
δ π2 2.5ln
δ-1
mδ 2πln
c
tc
2n
tn
9-9
t
49-44
t
2
2
22
2
2
2
2
2
2
22
1
===
===
===
===
===
===
=
==
=
=
=
=
==
=⎟⎟ ⎠
⎞⎜⎜⎝
⎛
θ
θ
© D.J .Dunn freestudy.co.uk 12
7/29/2019 Dynamics Tutorial 11-Damped vibrations-13p.pdf
http://slidepdf.com/reader/full/dynamics-tutorial-11-damped-vibrations-13ppdf 13/13
SELF ASSESSMENT EXERCISE No.2
1. A flywheel has a moment of inertia of 50 kg m2. It is suspended on the end of a
vertical shaft 2 m long and 40 mm diameter. A torsional damper is fitted with adamping ratio of 0.125. The modulus of rigidity of the shaft is 80 GPa.
Calculate the following.
The torsional stiffness of the shaft. (10053 N m s/radian) The critical damping coefficient for the system.(1 418 Nms/rad) The frequency of damped oscillations?(2.24 Hz). The amplitude reduction factor. (45.6%)
2. A shaft with negligible inertia has a flywheel suspended from the end and adamper to damp the vibrations. The shaft has a torsional stiffness of 5000 N ms/rad. The flywheel has a moment of inertia of 30 kg m2. The damping ratio is0.4. The flywheel is rotated 0.02 radian and released. Calculate the following.
i. The damped frequency. (1.833 Hz)ii. The angular displacement, velocity and acceleration after 0.5 seconds after
being released. (0.00141 rad, -8.8 x 10-4 rad/s and -0.226 rad/s2)
©D.J .Dunn freestudy.co.uk 13
Recommended