Post on 20-Jan-2015
description
18/03/2014
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5. Electrical Elements Modeling
6. Mechanical Elements Modeling
Muhammad Faizal bin Ismail
Dept. of Electrical Engineering
PPD, UTHM
ifaizal@uthm.edu.my
013-7143106
5. Electrical Elements Modeling
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Example – RLC Network
Determine the transfer function of the circuit.
Solution:
All initial conditions are zero. Assume the output is vc(t).
The network equations are
)()(
)()(
)()(
tvdt
tdiLRtitv
tvvvtv
C
CLR
++=
++=
3
cont.
Laplace transform the equation:
4
)()(
tidt
tdvC C =
Therefore,
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RLC network
Control Systems Engineering, Fourth
Edition by Norman S. Nise
Copyright © 2004 by John Wiley & Sons. All rights reserved.
RLC network
Control Systems Engineering, Fourth
Edition by Norman S. Nise
Copyright © 2004 by John Wiley & Sons. All rights reserved.
Block diagram of series RLC electrical
network
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Laplace-transformed network
Control Systems Engineering, Fourth
Edition by Norman S. Nise
Copyright © 2004 by John Wiley & Sons. All rights reserved.
RLC network
a. Two-loop electrical
network;
b. transformed
two-loop
electrical
network;
c. block diagram
RLC network
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Block diagram of the network
Control Systems Engineering, Fourth
Edition by Norman S. Nise
Copyright © 2004 by John Wiley & Sons. All rights reserved.
RLC network
RLC network – Example 1
Answer = 81516
5
)(
)()(
2++
==sssV
sVsG
i
o
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Example 2
Problem: Find the transfer function, G(s) = VL(s)/V(s). Solve the problem two ways –
mesh analysis and nodal analysis. Show that the two methods yield the
same result.
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Example 2 (cont.)
12
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Now, writing the mesh equations,
Nodal Analysis
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Potentiometer
• A potentiometer is used to measure a linear or rotational
displacement.
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Linear Rotational
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Rotational Potentiometer
• The output voltage,
• Where Kp is the constant in V/rad.
• Where θmax is the maximum value for θ(t).
• The Laplace transform of the equation is
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Tachometer
• The tachometer produces a direct current voltage which is
proportional to the speed of the rotating axis
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Operational Amplifier (Op-Amp)
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DC Motor
• Applications e.g. tape drive, disk drive, printer, CNC machines, and robots.
• The equivalent circuit for a dc motor is
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DC Motor (cont.)
Reduced block diagram
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The transfer function
(consider TL(t) equals to zero)
6. Mechanical Elements Modeling
The motion of mechanical elements can be
described in various dimensions, which are:
1. Translational.
2. Rotational.
3. Combination of both.
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Translation
• The motion of translation is defined as a
motion that takes place along or curved path.
• The variables that are used to describe
translational motion are acceleration, velocity,
and displacement.
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Translational Mechanical System
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Example 1
Find the transfer function for the spring-mass-damper system shown
below.
Solution:
1. Draw the free-body diagram of a system and assume the mass is traveling
toward the right.
23Figure 2.4 a. Free-body diagram of mass, spring, and damper system;
b. transformed free-body diagram
cont.
2. From free-body diagram, write differential equation of motion using Newton’s
Law. Thus we get;
3. Laplace transform the equation:
4. Find the transfer function:
)()()()(
2
2
tftKxdt
tdxf
dt
txdM v =++
)()()()(2
sFsKXssXfsXMs v =++
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KsfMssF
sXsG
v ++==
2
1
)(
)()(
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Example 2
Find the transfer function, xo(s)/xi(s) for the spring-mass system.
Solution:
• The ‘object’ of the above system is to force the mass (position xo(t)) to follow a command position xi(t).
• When the spring is compressed an amount ‘x’m, it produces a force ‘kx’ N ( Hooke’s Law ).
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cont.
• When one end of the spring is forced to move an amount xi(t), the other end will move and the net compression in the spring will be
x(t) = xi(t) – xo(t)
• So the force F acting on the mass are,
• From Newton’s second law of motion, F = ma
• Therefore,
• Transforming the equation:
NtXotXiktF ))()(()( −=
2
2
))()((dt
XodmtXotXik =−∴
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))()(()(2 sXosXiksXoms −=
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Example 3
Find the transfer function for the spring-mass with viscous frictional damping.
Solution:
The friction force produced by the dash pot is proportional with velocity,
which is; ƒ = viscous frictional constant N/ms-1
,0
dt
dXfFd =
27
cont.
The net force F tending to accelerate the mass is F= Fs – FD,
F = k ( Xi(t) – Xo(t) ) – ƒ
Free Body Diagram,
From N II,
F = ma
Laplace transform,
Ms2Xo(s) = k[Xi(s) – Xo(s)] – BsXo(s)
dt
dXo
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F=ma
K(Xi-Xo)m ƒ
dt
dXo
2
0
2
0)()((
dt
xdm
dt
dXoBtXtXk i =−−
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Rotational Mechanical System
• The rotational motion can be defined as motion about a fixed axis.
• The extension of Newton’s Law of motion for rotational motion states that the algebraic sum of moments or torque about a fixed axis is equal to the product of the inertia and the angular acceleration about the axis where,
J = Inertia
T = Torque
θ = Angular Displacement
ω = Angular Velocity
where Newton’s second law for rotational system are,
onacceleratiangularwhereJTTorque∑ == αα :,)(
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Modeling of Rotational
Mechanical System
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Example 1
Rotary Mechanical System
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cont.
• The shaft has a stiffness k, which means, if the shaft is twisted through an angle θ, it will produce a torque kθ, where K – (Nm/rad).
• For system above the torque produce by flexible shaft are,
Ts = K (θi (t)-θo(t)) Nm
• The viscous frictional torque due to paddle
• Therefore the torque required to accelerating torque acting on the mass is
Tr = Ts - TD
dt
dBTD
0θ=
( )dt
dBttK i
0
0)()(
θθθ −−=
32
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cont.
• From Newton’s second law for rotational system,
• Therefore,
• Transforming equation above, we get:
• Transfer function of system:
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,αJT =2
2
,dt
dJTrwhere oθ
=
( )dt
dBttk
dt
dJ i
0
02
0
2
)()(θ
θθθ
−−=
( ) ( ) )()()(2 sBsssksJs ooio θθθθ −−=
KBsJs
K
s
s
i ++=
2
0
)(
)(
θ
θ
Example 2
Closed Loop Position Control System
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Ks
Load
va(t)
MotorAmplifier Gears
Load
HandwheelPotentiometer
Kp
Error Detector
θi
θo
e(t)
R L
θm(t)
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cont.
• The objective of this system is to control the position of the mechanical load in according with the reference position.
• The operation of this system is as follows:-
1. A pair of potentiometers acts as an error-measuring device.
2. For input potentiometer, vi(t) = kpθi(t)
3. For the output potentiometer, vo(t) = kpθo(t)
4. The error signal, Ve(t) = Vi(t) – Vo(t) = kpθi(t) - kpθo(t) (1)
5. This error signal are amplified by the amplifier with gain constant, Ks. Va(t) = K s Ve(t) (2)
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cont.
• Transforming equations (1) and (2):-
Ve(s) = Kpθi(s) - Kpθo(s) (3)
• By using the mathematical models developed previously for motor and
gear the block diagram of the position control system is shown below:-
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+
-
B
Kt
R+LsΘi(s) +
-
Ksn
s
Θo(s)Kp
Va(s)1
J1eqs+B1eq
TL(s)
+-