Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

hello i have a problem in motion control in matlab imagine a four bar linkage mechanism like this.as you you know in an ordinary 4 bar linkage we have 2 fix points but here we have just one & the second one it fixed to a pinion (small gear).we have the ratio of gears so we have a relation between teta1 & teta2 teta2 = 5*teta1 (the mechanism can rotate in the first fix point)

i used to write this code for motion control but the when i run it the graphs are not correct (because they should be something linke sin or cos graph)

d(n) is a auxiliry vector for solving equations please ask if you have further questions

this is the code :

clc,
close all,
clear all,

ax=0;

ay=0;

r1=12;

r2=7;

r3=9;

r4=5;



n=0;

for teta1=0:pi/180:2*pi

    n=n+1;

D = r1*exp(i*teta1)-r2*exp(i*5*teta1);

tetad(n) = angle(D);

d(n) = abs(D);

landa(n)=acos((d(n)^2+(r3)^2-(r4)^2)/(2*d(n)*r3));

alfa(n)=acos((d(n)^2+(r4)^2-(r3)^2)/(2*d(n)*r4));

teta3(n)=landa(n)+tetad(n);

teta4(n)=(+pi-alfa(n)+tetad(n));

end



aa(n)=teta1*180/pi;

hh(n)=tetad(n)*180/pi;

bb(n)=landa(n)*180/pi;

cc(n)=alfa(n)*180/pi;

nn(n)=teta3(n)*180/pi;

dd(n)=5*teta1*180/pi;

ee(n)=teta4(n)*180/pi;


figure(1),plot(aa,hh),xlabel('teta1'),ylabel('tetad');

figure(2),plot(aa,d),xlabel('teta1'),ylabel('d');

figure(3),plot(aa,bb),xlabel('teta1'),ylabel('landa');

figure(4),plot(aa,cc),xlabel('teta1'),ylabel('alfa');

figure(5),plot(aa,nn),xlabel('teta1'),ylabel('teta3');

figure(6),plot(aa,dd),xlabel('teta1'),ylabel('5*teta1');

figure(7),plot(aa,ee),xlabel('teta1'),ylabel('teta4');
share|improve this question
    
Please format your code as code -- if you don't know how to do this read the FAQ. And please only post the minimum required to state your problem -- but no less than that. There are a lot of SOers who are tolerant of all sorts of crazy formatting, but there are a lot who aren't and won't bother trying to help you unless you make it easier for us. And then there's the odd curmudgeon like me who will take time to point out the errors of your ways but not spend that time deciphering your question. It's a funny old world. –  High Performance Mark Jul 5 '10 at 8:31

1 Answer 1

up vote 0 down vote accepted

I have no idea what you are trying to solve here, but probably you want to move the end of your for-loop a few lines down, so the vectors you plot contain all values and not only the last one.

share|improve this answer
    
thanks my friend.my problem is solved now by your advise –  naeemtop Jul 6 '10 at 13:17
    
one more problem is this error can you solve this : Warning: Imaginary parts of complex X and/or Y arguments ignored > In dynamic3 at 40 Warning: Imaginary parts of complex X and/or Y arguments ignored > In dynamic3 at 41 Warning: Imaginary parts of complex X and/or Y arguments ignored > In dynamic3 at 42 Warning: Imaginary parts of complex X and/or Y arguments ignored > In dynamic3 at 44 >> –  naeemtop Jul 6 '10 at 13:23
    
If you want somebody to help you, I strongly suggest you put more effort into formatting your questions properly. From "dynamic3 at 41" I can only guess what line this relates to. Your alfa is complex, so plotting it creates a warning. –  groovingandi Jul 7 '10 at 8:48
    
Btw. the greek letters are called theta, alpha and lambda! –  groovingandi Jul 7 '10 at 8:49

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.