Laplace transforms: Simple Electrical Network: Difference between revisions
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<math>\Rightarrow s^2+500s=-2500</math> |
<math>\Rightarrow s^2+500s=-2500</math> |
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<math>\Rightarrow s^2+500s+ |
<math>\Rightarrow s^2+500s+\left(\frac{500}{2}\right)^2=-2500+\left(\frac{500}{2}\right)^2</math> |
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<math>\Rightarrow s^2+500s+62500=6000</math> |
<math>\Rightarrow s^2+500s+62500=6000</math> |
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<math>\Rightarrow (s |
<math>\Rightarrow (s+250)^2-(100\sqrt{6})^2=0</math> |
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Thus |
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we do this by divinding <math>(\frac{b}{2})^2</math> |
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<math>I_2(s)=\frac{5}{2s}-5\frac{s+250}{(s+250)^2-(100\sqrt{6})^2}-\frac{5\sqrt{6}}{12}\frac{100\sqrt{6}}{(s+250)^2-(100\sqrt{6})^2}</math> |
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<math>\mathcal{L}^{-1}\left\{I_1(s)\right\}=\frac{5}{8}+\frac{39\sqrt{103}}{824}sin*(\frac{25}{2}\sqrt{103}*t)</math> |
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<math>\mathcal{L}^{-1}\left\{I_2(s)\right\}=</math> |
<math>\mathcal{L}^{-1}\left\{I_2(s)\right\}= i_2(t) =\frac{5}{2}-5e^{-250t}cosh100\sqrt{6}t-\frac{5\sqrt{6}}{12}5e^{-250t}sinh100\sqrt{6}t</math> |
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==Initial Value Theorem== |
==Initial Value Theorem== |
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<math>\lim_{s \to \infty}sI(s)=f(0^+)</math> |
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<math>\lim_{s \to \infty} s\frac{25s+12500}{s(s^2+500s+2500)}=i(0)</math> |
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<math>\lim_{s \to \infty}s\frac{6250}{s(s^2+500s+2500)}=i(0)</math> |
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==Final Value Theorem== |
==Final Value Theorem== |
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<math>\lim_{s \to \infty} s\frac{25s+12500}{s(s^2+500s+2500)}=i(\infty)</math> |
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<math>\Rightarrow i(\infty)=0</math> |
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<math>\lim_{s \to 0}s\frac{6250}{s(s^2+500s+2500)}=i(\infty)</math> |
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<math>\Rightarrow i(\infty)=0</math> |
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==Bode Plots== |
==Bode Plots== |
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The following are bode plots for the transfer functions |
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[[Image:I1_.jpg|400px|thumb|left|<math>H(s)_1=\frac{25s+12500}{s(s^2+500s+2500)}</math>]] |
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[[Image:I2_.jpg|400px|thumb|left|<math>H(s)_2=\frac{6250}{s(s^2+500s+2500)}</math>]] |
Latest revision as of 15:35, 13 December 2009
Problem Statement
Using the formulas
Solve the system when V0 = 50 V, L = 4 h, R = 20 Ω, C = 10-4 f, and the currents are initially zero.
Solution
Solve the system when V0 = 50 V, L = 4 h, R = 20 Ω, C = 10-4 f, and the currents are initially zero.
Applying the Laplace transform to each equation gives
Solving for
We find the partial decomposition
Let
Comparing the coefficients we get
Thus
Now we do the same for where we solve the function in terms of and decomposing the partial fraction resulting in
In order to make it nicer on us we need to complete the square as follows
Thus
Taking the Inverse Laplace transform gives
Initial Value Theorem
Final Value Theorem
Bode Plots
The following are bode plots for the transfer functions