Find the discrete time state equation of the diagram

Assignment Help MATLAB Programming
Reference no: EM132370517

Software req :-MATLAB R2019a

Question 1

A digital filter is defined by the difference equation;

y(k) - 1.6065 y (k - 1) + 0.6065 y(k - 2) = u(k - 1) + u(k - 21

a. Obtain the discrete time transfer function for the digital filter G(z).

b. Study how the filter G(z) handles the input signal u(n) = (-1)n 1(n).

c. Plot the Bode diagram of G(z) using Matlab include the code in your answer. Vallidate the result from part a.

d. If G(z) is included in a closed loop system shown in Figure 01, plot the Bode diagram for the closed loop system using fvlatlab and find phase margin and gain margin of the closed loop system. Assume K=1 and include the code in your answer.

e. Plot step response of the closed loop system and specify the overshoot, riseti me, settling time and steady-state of the response.

2391_Fig Q1.jpg

Question 2

a. Draw root locus diagram of the closed loop system shown in Figure 01 and find the values of 0< K < ∞ the system is stable,

b. Draw Nyquist diagram of the closed loop system shown in Figure 01 and find the values of 0< K < ∞where the system is stable.

c. Draw the Bode diagram of the closed loop system shown in Figure 0.1 and find the values of 0< K < ∞, where the system is stable.

Question 3

Find the following for the circuit shown in Figure Q3.

a. Write the continuous time state equations of the circuit.

b. Find transfer function G(s) = [VR2(s)/E(s)] where E(s) = L{e(t)}.

c. Assume C = 0.2 F, L = 2 H, R1 = 100Ω, H2 = 50 Q. Find the ZDH equivalent discrete system in part a if sampling time is 1 s.

d. Find the transfer function G(z) in part b.

e. Find the zero-state step response (steady state) of the circuit to the input {e (n)}.

f. Find the zero input or transient response of the circuit when initial condition of the circuit is: Vc(0) = 4 V,IL, (0) = 0,25 A.

1003_Fig Q3.jpg

Figure Q3.

Question 4

a. Using pole-zero placement, design a filter G(z) that filters out the frequency ω0 = 2Π/3 and at frequency ω = 0, G(1) = 1.5.

b. Show that if u(n) is the input and y(n) is the output of the filter G(z) in part a, y(n) can be written as, y(n) = b0u(n) - b1u(n - 1) - b2u(n. - 2) and find the coefficient b0, b1 and b2.

c. Show that if u(n) = cosω0n (ω0=2Π/3) is the input to G (z) then the output 3.7(u) = 0.

d. Find the relationship between the phase angle of the filter and the frequency ω.

Question 5

Answer the following questions a bout the diagram of a digital filter shown in Figure 05.

a. Find the discrete time state equation of the diagram.

b. Find the transfer function of the diagram.

c. Find the inverse z-transform of the transfer function you found in part P.

418_Fig Q5.jpg

Figure Q5.

Reference no: EM132370517

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