root of nonlinear equation

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Lidaou Ali
Lidaou Ali el 28 de Mzo. de 2020
Comentada: Lidaou Ali el 28 de Mzo. de 2020
i am working on an electical concepts design problem for a emergency exit door release mechanism. I solved the circuit and found that i(t)=0.25*e^(-t/8c)*cos(t/8c)
i want i(t)=0.1 at t=3 sec
i got the code but it doesnt work
%ft=0.25*exp(-3/c)*cos(3/(8*c))-0.1;
%c= fzero(ft,3);
but i cant get result for c
can someone help me?

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Torsten
Torsten el 28 de Mzo. de 2020
ft = @( c ) 0.25* ...
instead of
ft = 0.25* ...
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Torsten
Torsten el 28 de Mzo. de 2020
Editada: Torsten el 28 de Mzo. de 2020
If you plot the function, you'll see that it has two roots:
c=-0.238
c=3.297
Lidaou Ali
Lidaou Ali el 28 de Mzo. de 2020
that is correct. i believe i missed an "8"
the right equation is ft=@(c)0.25*exp(-3/(8*c))*cos(3/(8*c))

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