Cleveland State University MCE441: Intr. Linear Control Systems. Lecture 12: Frequency Response Concepts Bode Diagrams. Prof.
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1 Cleveland State University MCE441: Intr. Linear Control Systems Lecture 12: Concepts Bode Diagrams Prof. Richter 1 / 2
2 Control systems are affected by signals which are often unpredictable: noise, disturbances, reference inputs. Frequency content can be a better way to characterize these signals, as opposed to time description. The frequency content of any signal can be obtained analytically or experimentally using Fourier analysis. Nyquist, Bode and Nichols introduced frequency response methods in dynamics and control in the 193 s and 4 s. The first step is to study how linear systems (transfer functions) are affected by signals of various frequencies. 2 / 2
3 Frequency Response of a Linear System Dynamic system response is selective to frequency: amplitude changes and phase shifts. Think of the TF as a frequency-dependent device which alters the amplitude and phase of the incoming sinewave. The frequency response of a system is a description of the amplitude and phase variations as a function of frequency We ll learn how to construct frequency response diagrams. It can be shown that for t : Amplification Ratio= G(jw) Phase Shift= G(jw) 3 / 2
4 Frequency Reponse and the Transfer X G(jw) X X sin(wt) G(jw) X sin(wt + G(jw)) G(s) 4 / 2
5 Demo: Beam with Piezoelectric Actuators Frequency Reponse and the Transfer We use the WinCon real-time control interface to connect to an experiment in the lab over the internet. The actuator will be excited with a sinewave at 9 Hz. We record the amplitude of tip vibrations as measured by an optical sensor. We find the experimental values of the amplitude ratio and the phase shift. Then we compare it to the values obtained using the transfer function. 5 / 2
6 In-Class Demo: Calculation Frequency Reponse and the Transfer G(s): Input Amplitude: Input Frequency (rad/s): Meas. Output Amplitude: Amplitude ratio: Meas. Time Shift: Phase Shift (rad): G(jw) : G(jw): 6 / 2
7 Handling Non-Sinusoidal Signals Frequency Reponse and the Transfer Two key facts provide a rationale for using freq. response as an analysis tool for more general signals: Linear systems satisfy superposition: The response to a weighted sum of inputs is the weighted sum of the responses to the individual inputs. Most signals (even some discontinuous and non-smooth ones) admit a Fourier series expansion. That is, an arbitrary signal may be decomposed as a weighted sum of sinewaves, each one having its own amplitude and phase. Therefore: We can characterize the reponse of a system to an arbitrary input by resolving the input into a sum of sinewaves and determining the contribution of each frequency to the overall reponse. 7 / 2
8 Linear Systems and Superposition Frequency Reponse and the Transfer u 1 (t) u 2 (t) u 3 (t) u 4 (t) u 5 (t) G(s) y(t) u 1 (t) u 2 (t) u 3 (t) u 4 (t) u 5 (t) G(s) G(s) G(s) G(s) G(s) y(t) 8 / 2
9 Resolving a Signal into Frequencies value Time History time power Spectral Analysis Frequency Content frequency 9 / 2
10 : Triangle Wave Resolving a Signal into Frequencies We run a Matlab script to display succesive approximations to the triangle wave using sinewaves. %fourier_triangle MAX=1; %plot the original wave x1=[:.1:.5]; x2=[.5:.1:1.5]; x3=[1.5:.1:2]; plot(x1,2*x1, k,x2,1-2*(x2-.5), k,x3,-1+2*(x3-1.5), k ); %calculate and plot the fourier with up to MAX terms hold on for stop=1:max, j=1; for x=:.5:2, sum=; for i=1:2:stop, sum=sum+(-1)^((i-1)/2)*sin(i*pi*x)/i^2; end fx(j)=8*sum/pi^2; j=j+1; end plot([:.5:2],fx, r ) pause end 1 / 2
11 Frequency Reponse The amplification ratio is called Magnitude The phase shift is called Phase A Bode plot is a set of two charts: magnitude vs. frequency and phase vs. frequency. Magnitude peaks can be quite large. For this reason, and to facilitate hand-sketching, the magnitude is charted in decibels (db) mag (db) = 2 log( G(jw) ) Phase is charted in degrees. A log scale is used for frequency. Phase and dbs are charted using a regular linear scale. 11 / 2
12 dbs, decades, octaves, attenuation... Frequency Reponse Some freq. response terms: (a lot more later) Converting x to db: 2logx Decade: A frequency increase by a factor of 1 (one logarithmic unit) Octave: A frequency increase by a factor of 8. Attenuation: refers to the decrease in magnitude with frequency. Measured in db. Amplification: refers to the increase in magnitude with frequency. Measured in db. 12 / 2
13 A Typical Bode Plot Frequency Reponse Phase (deg) Magnitude (db) low freq. gain bandwidth mag. crossover freq. mag. peak 225 phase crossover freq Frequency (rad/sec) 13 / 2
14 Key idea: phase angles and log magnitudes of individual factors are added together. Arrange G(s) into normalized pole-zero factors and use templates for each. Then just add the graphs. Our template: G(s) = Ks k (τ z1s+1)(τ z2 s 1 )... (τ p1 s+1)(τ p2 s+1)... w 2 p1 s 2 +2ζ p1 w p1 s+w 2 p1 s 2 +2ζ z1 w z1 s+w 2 z1 w 2 z1 Only one 2nd order zero pair and one 2nd order pole pair is shown, but there could be more. The exponent k can be positive, zero or negative. 14 / 2
15 mag (db) 1 phase 45 τ p Real Pole: 1 τ p s+1.1 τ p 1 τ p 9-45 /dec mag (db) phase 1 τ p w p Cplx Poles: w(rad/s) -2 db/dec w(rad/s) w(rad/s) -4 db/dec w 2 p s 2 +2ζ p w p s+w 2 p.1w p w p 1w p w(rad/s) mag (db) 1 τ z 2 db/dec w(rad/s) Real Zero: (τ z s + 1) phase /dec.1 τ z mag (db) 1 τ z 1 τ z w(rad/s) Cplx Zeros: s2 +2ζ z w z s+w 2 z w 2 z phase w z 4 db/dec w(rad/s) mag (db) phase 1 2k db/dec w(rad/s) k9 w(rad/s) mag (db) phase Mult. root at s = : s k 2 log K Gain: K w(rad/s) /dec /dec w(rad/s).1w z w z 1w z w(rad/s) 15 / 2
16 Finishing Touches For second-order poles/zeros, find the resonant peak according to damping ratio: M r = max G(jw) = 1 2ζ 1 ζ 2 For first order poles and zeros, account for a ±3 db of attenuation/amplification at crossover. If the crossover frequencies of distinct factors are close together, it is hard to predict the actual attenuation or size of the resonant peak without resorting to finer calculations (hand/matlab). 16 / 2
17 Normalized Second Order Freq. Resp. 17 / 2
18 Sketch the Bode plot for G(s) = 1(s+3) s(s+2)(s 2 +s+2) 18 / 2
19 19 / 2
20 2 / 2
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