how to change the rise time of step input in simulink

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Swasthik Baje Shankarakrishna Bhat am 19 Sep. 2022

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Beantwortet: Paul am 22 Sep. 2022

Hello,

I want to change the rise time of the step input in simulink. I tried the transfer function 1/(s+1) but not satifying my requirement. Can someone suggest me some tricks. Thanks in advace.

Regards,

Swasthik

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Sam Chak am 19 Sep. 2022

Hi @Swasthik Baje Shankarakrishna Bhat

Can you specify all the performance requirements?

What did you mean by "tried the transfer function"? What is that transfer function for? For Plant, Actuator, or Compensator, or Prefilter? If possible, please the Plant transfer function.

Swasthik Baje Shankarakrishna Bhat am 21 Sep. 2022

Hi sam,

i just need a step input with variable rise time. Something like this,

Thanks and regards,

Swasthik

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Answer 1

Sam Chak am 21 Sep. 2022

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Bearbeitet: Sam Chak am 22 Sep. 2022

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Hi @Swasthik Baje Shankarakrishna Bhat

Edit: I created a general one so that you can enter the desired ramp up parameters:

% u = min(1, max(0, "Linear Line function"));

ramp_start = 5;

ramp_end = 8;

t = linspace(0, 25, 251);

u = min(1, max(0, 1/(ramp_end - ramp_start)*(t - ramp_start)));

plot(t, u, 'linewidth', 1.5), grid on, ylim([-1 2])

If you have Fuzzy Logic Toolbox license, then you can use this linsmf() function. Here is a demo for a Double Integrator:

% Plant

Gp = tf(1, [1 0 0])

Gp = 1 --- s^2 Continuous-time transfer function.

% PID

kp = 0;

ki = 0;

kd = 0.8165;

Tf = kd;

Gc = pid(kp, ki, kd, Tf)

Gc = s Kp + Kd * -------- Tf*s+1 with Kp = 0, Kd = 0.817, Tf = 0.817 Continuous-time PDF controller in parallel form.

% Closed-loop system

Gcl = feedback(Gc*Gp, 1)

Gcl = s ------------------- s^3 + 1.225 s^2 + s Continuous-time transfer function.

% Saturated Ramp Response

t = linspace(0, 25, 251);

u = linsmf(t, [5 8]); % rise time is from 5 to 8 sec

lsim(Gcl, u, t), ylim([-1 2]), grid on

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Sam Chak am 21 Sep. 2022

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Hi @Swasthik Baje Shankarakrishna Bhat

I forgot to mention that although linsmf is user-friendly, it requires the Fuzzy Logic Toolbox.

If you don't have Toolbox, then you can try this alternative. It produces the same time-delayed saturated ramp signal.

% Syntax:

% u = min(1, max(0, "Linear Line function"));

t = linspace(0, 25, 251);

u = min(1, max(0, 1/3*(t - 5)));

plot(t, u, 'linewidth', 1.5), grid on, ylim([-1 2])

Swasthik Baje Shankarakrishna Bhat am 21 Sep. 2022

Hi Sam,

Sorry to bother you again. Can we have a neative sloped step input with programmable fall time?

Thanks and regards,

Swasthik

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Answer 2

Timo Dietz am 20 Sep. 2022

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Bearbeitet: Timo Dietz am 20 Sep. 2022

Hello,

what about using a single-sided ramp function: b * (1 - exp(-a*s)) / s^2

The gradient of the rising slope is '1', so after the time 'a' the amplitude 'a' is reached. The factor 'b' should finally allow you to control the steepness of the 'step'.

Does this meet your requirement?