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Transcript
RLC Circuits
Objective of Lecture
 Derive the equations that relate the voltages across and
currents flowing through a resistor, an inductor, and a
capacitor in series as:
 the unit step function associated with voltage or current
source changes from 1 to 0 or
 a switch disconnects a voltage or current source into the
circuit.
 Describe the solution to the 2nd order equations when the
condition is:
 Overdamped
 Critically Damped
 Underdamped
Series RLC Network
 With a step function voltage source.
Boundary Conditions
 You must determine the initial condition of the
inductor and capacitor at t < to and then find the final
conditions at t = ∞s.
 Since the voltage source has a magnitude of 0V at t < to
 i(to-) = iL(to-) = 0A and vC(to-) = Vs
 vL(to-) = 0V and iC(to-) = 0A
 Once the steady state is reached after the voltage source
has a magnitude of Vs at t > to, replace the capacitor with
an open circuit and the inductor with a short circuit.


i(∞s) = iL(∞s) = 0A and vC(∞s) = 0V
vL(∞s) = 0V and iC(∞s) = 0A
Selection of Parameter
 Initial Conditions
 i(to-) = iL(to-) = 0A and vC(to-) = Vs
 vL(to-) = 0V and iC(to-) = 0A
 Final Conditions
 i(∞s) = iL(∞s) = 0A and vC(∞s) = oV
 vL(∞s) = 0V and iC(∞s) = 0A
 Since the voltage across the capacitor is the only
parameter that has a non-zero boundary condition,
the first set of solutions will be for vC(t).
Kirchhoff’s Voltage Law
 v(t )  0
vC (t )  vL (t )  vR (t )  0
vL (t )  L
diL (t )
dt
vR  Ri R
dvC (t )
dt
iL (t )  iC (t )  iR (t )
iC (t )  C
d 2 vC (t )
dvC (t )
LC

RC
 vC (t )  0
2
dt
dt
d 2 vC (t ) R dvC (t ) 1


vC (t )  0
2
dt
L dt
LC
General Solution
Let vC(t) = AesDt where Dt=t-to
AR sDt
A sDt
As e 
se 
e 0
L
LC
R
1
sDt
2
Ae ( s  s 
)0
L
LC
R
1
2
s  s
0
L
LC
2 sDt
General Solution (con’t)
R
1
s  s
0
L
LC
2
2
R
1
 R 
s1  
   
2L
 2 L  LC
2
R
1
 R 
s2  
   
2L
 2 L  LC
General Solution (con’t)
s1      
2
2
o
s2      
2
R

2L
o 
2
o
s  2s    0
2
2
o
1
LC
General Solution (con’t)
vC1 (t )  A1e
s1Dt
vC 2 (t )  A2 e
s2 Dt
vC (t )  vC1 (t )  vC 2 (t )  A1e
s1Dt
 A2 e
s2 Dt
Solve for Coefficients A1 and A2
 Use the boundary conditions at to- and t = ∞s to solve
for A1 and A2.

vC (to )  VS
 Since the voltage across a capacitor must be a
continuous function of time.




vC (to )  vC (to )  vC1 (to )  vC 2 (to )  VS
A1e s1 0 s   A2 e s2 0 s   A1  A2  VS
 Also know that
dvC (to ) d
iC (to )  C
 vC1 (to )  vC 2 (to )  0
dt
dt
s1 A1e s1 0 s   s2 A2 e s2 0 s   s1 A1  s2 A2  0
Overdamped Case
  > o
 implies that C > 4L/R2
s1 and s2 are negative and real numbers
vC (t )  A1e
s1Dt
 A2 e
s1      
2
2
o
s2      
2
s2 Dt
2
o
Critically Damped Case
   o
 implies that C = 4L/R2
s1 = s2 = -  = -R/2L
vC (t )  A1e Dt  A2 DteDt
Underdamped Case
  < o
 implies that C < 4L/R2
s1     2  o2    j d
s2     2  o2    j d
 d  o2   2
 j
 1 , i is used by the mathematicians for
imaginary numbers
vC (t )  e Dt ( B1e jd Dt  B2 e  jd Dt )
e j  cos   j sin 
e  j  cos   j sin 
vC (t )  e Dt [ B1 (cos d Dt  j sin d Dt )  B2 (cos d Dt  j sin d Dt )]
vC (t )  e Dt [( B1  B2 ) cos d Dt  j ( B1  B2 ) sin d Dt ]
vC (t )  e Dt [ A1 cos d Dt  A2 sin d Dt ]
A1  B1  B2
A2  jB1  B2 
Angular Frequencies
 o is called the undamped natural frequency
 The frequency at which the energy stored in the
capacitor flows to the inductor and then flows back to
the capacitor. If R = 0W, this will occur forever.
 d is called the damped natural frequency
 Since the resistance of R is not usually equal to zero,
some energy will be dissipated through the resistor as
energy is transferred between the inductor and
capacitor.

 determined the rate of the damping response.
Properties of RLC network
 Behavior of RLC network is described as damping,
which is a gradual loss of the initial stored energy
 The resistor R causes the loss
  determined the rate of the damping response

If R = 0, the circuit is loss-less and energy is shifted back and
forth between the inductor and capacitor forever at the
natural frequency.
 Oscillatory response of a lossy RLC network is possible
because the energy in the inductor and capacitor can be
transferred from one component to the other.

Underdamped response is a damped oscillation, which is
called ringing.
Properties of RLC network
 Critically damped circuits reach the final steady state
in the shortest amount of time as compared to
overdamped and underdamped circuits.
 However, the initial change of an overdamped or
underdamped circuit may be greater than that obtained
using a critically damped circuit.
Set of Solutions when t > to
 There are three different solutions which depend on
the magnitudes of the coefficients of the dvC (t ) and
dt
the vC (t ) terms.
 To determine which one to use, you need to calculate the
natural angular frequency of the series RLC network and
the term .
o 
1
LC
R

2L
Transient Solutions when t > to
s1Dt
s2 Dt
v
(
t
)

A
e

A
e
 Overdamped response ( > o) C
1
2
where Dt  t  to
s1     2  02
s2     2  02
 Critically damped response ( = o)
vC (t )  ( A1  A2 Dt )e Dt
 Underdamped response ( < o)
vC (t )  [ A1 cos(d Dt )  A2 sin( d Dt )]e Dt
 d  o 2   2
Find Coefficients
 After you have selected the form for the solution based
upon the values of o and 
 Solve for the coefficients in the equation by evaluating
the equation and its first derivate at t = to- using the
initial boundary conditions.

vC(to-) = Vs and dvC(to-)/dt = iC (to-)/C = 0V/s
Other Voltages and Currents
 Once the voltage across the capacitor is known, the
following equations for the case where t > to can be
used to find:
dvC (t )
iC (t )  C
dt
i (t )  iC (t )  iL (t )  iR (t )
diL (t )
vL (t )  L
dt
vR (t )  Ri R (t )
Solutions when t < to
 The initial conditions of all of the components are the
solutions for all times -∞s < t < to.
 vC(t) = Vs
 iC(t) = 0A
 vL(t) = 0V
 iL(t) = 0A
 vR(t) = 0V
 iR(t) = 0A
Summary
 The set of solutions when t > to for the voltage across the
capacitor in a RLC network in series was obtained.
 Selection of equations is determine by comparing the natural
frequency o to .
 Coefficients are found by evaluating the equation and its first
derivation at t = to-.
 The voltage across the capacitor is equal to the initial
condition when t < to
 Using the relationships between current and voltage, the
current through the capacitor and the voltages and
currents for the inductor and resistor can be calculated.