I am trying to derive an equation for (RLC model) and i am stuck at one point how he get the final equation (12) second part?
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Capacitor discharging in RLC series circuit. Equation (8) general solution for the discharging current,
i(t)=e^(-αt) (A cos(ωt)+B sin(ωt)) (8)
Now we will find the constant A and B using the initial condition assuming the capacitor voltage VDC and current IDC. The initial conditions are taken just before the fault occurs.
At t=0
i(0)=I_DC=A
Then the nominal voltage at the initial condition is equal to to the nominal voltage.
Vc(0)=V_DC
To find B take the derivative of the equation (8) we get
(di(t))/dt=e^(-αt) (-α(A cos(ωt)+B sin(ωt) )+ω(B cos(ωt)-A sin(ωt)) (9)
At t=0
(di(0))/dt=-αA+ωB
The initial rate of change of current is equal to
(di(0))/dt=(V_L (0))/L=-αA+ωB
Using
A=I_DC
B=((V_L (0))/L+αI_DC)/ω
Since the RLC is a series circuit and initial conditions are the same thus the current is also the same across R, L, and C.
(V_L (0))/L=I_L=I_DC
B=(I_DC+αA)/ω (10)
Putting the values of A and B in the equation (8) we get
i(t)=e^(-αt) (I_DC cos(ωt)+(I_DC+αA)/ω sin(ωt)) (11)
For the capacitor
1/C i(0)=V_c (0) and for initial condition i(0)=I_DC so 1/C I_DC=V_DC
“A” becomes equal to
A=I_DC=CV_DC
Expressing the equation in terms of the A and B from equation (10)
I_DC=Bω-Aα
So putting in equation (10)
i(t)=[(Bω-αA) cos(ωt)-(Aω+Bα) sin(ωt)]e^(-αt) (12)
1 Comment
Aquatris
on 26 Jul 2024
This is kinda not related to Matlab though :)
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on 26 Jul 2024
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