Unable to create a exponential graph

4 Ansichten (letzte 30 Tage)
Rohan
Rohan am 10 Sep. 2024
Kommentiert: Sam Chak am 11 Sep. 2024
I am trying to make a basic tyre degredation model and I am not able to get an increasing exponential graph. I have four input block representing vital variables reagrding tyre degredation. The current model is down below. The code inside the MATLAB function block is
function y = exp_temp(u)
2 % Exponential function for temperature degradation
3 a = 0.1; % adjust this value to fit the data
4 b = 0.02; % adjust this value to fit the data
5 y = a * exp(b * u);
6 end
The graph should look like something In the second picture. What am I doing wrong.

Melden Sie sich an, um diese Frage zu beantworten.

Antworten (2)

Les Beckham
Les Beckham am 10 Sep. 2024
Ran in:
I guess I don't really see what the problem is. Follow your own comments and adjust a and b to match the expected curve.
Can you explain more clearly what the issue is?
u = 0:5;
y = exp_temp(u);
plot(u, y, 'o-')
grid on
function y = exp_temp(u)
% Exponential function for temperature degradation
a = 0.1; % adjust this value to fit the data
b = 0.2; % adjust this value to fit the data <<< I increased this by 10x
y = a * exp(b * u);
end
  3 Kommentare
1 älteren Kommentar anzeigen
VBBV
VBBV am 11 Sep. 2024
Ran in:
@Rohan, Use a closely space intervals for range of values, along with coefficient adjustment as mentioned by @Les Beckham
u = 0:0.001:5;% use a closely spaced intervals for the range of values
y = exp_temp(u);
plot(u, y)
grid on
function y = exp_temp(u)
% Exponential function for temperature degradation
a = 0.1; % adjust this value to fit the data
b = 1; % adjust this value to fit the data <<< I increased this by 10x
y = a * exp(b * u);
end
Sam Chak
Sam Chak am 11 Sep. 2024
Hi Rohan,
The solution for the differential equation of
dx/dt = k·x, with initial value x(0)
is given by
x(t) = x(0)·exp(k·t),
where k·x is a straight line.
From the response of the Integrator in the Scope in the image "Screenshot 2024-09-10 143401.png", you were simulating a dynamic system in Simulink. Best to share the Simulink slx file for evaluation.

Melden Sie sich an, um zu kommentieren.

Image Analyst
Image Analyst am 10 Sep. 2024
Ran in:
I don't know how to do it in Simulink, but this seems to work fine in MATLAB:
uTemperatureRange = linspace(10, 200, 1000);
yDegradation = exp_temp(uTemperatureRange);
plot(uTemperatureRange, yDegradation, 'b-', 'LineWidth', 2);
xlabel('Temperature');
ylabel('Degradation');
title('Degradation vs. Temperature');
grid on;
ylim([0,6])
%==========================================================
function y = exp_temp(u)
% Exponential function for temperature degradation
a = 0.1; % adjust this value to fit the data
b = 0.02; % adjust this value to fit the data
y = a * exp(b * u);
end
It looks (and is) exponential.

Kategorien

Mehr zu String finden Sie in Help Center und File Exchange

Tags

Produkte


Version

R2024a

Community Treasure Hunt

Find the treasures in MATLAB Central and discover how the community can help you!

Start Hunting!

Translated by