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Using association, the equation is rearranged: |
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Using association, the equation is rearranged: |
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:<math> (s^2-2s-15)\mathcal{L} \left\{y\right\}= \frac {6} {s} -s+3-2</math> |
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:<math> (s^2-2s-15)\mathcal{L} \left\{y\right\}= \frac {6} {s} +s+3-2</math> |
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Continuing on using the method of partial fractions, the equation is progressed: |
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Continuing on using the method of partial fractions, the equation is progressed: |
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:<math> \frac {6+s-s^2} {s(s+3)(s-5)} = \left(\frac {A} {s}\right) \left(\frac {B} {s+3}\right) \left(\frac {C} {s-5}\right)</math> |
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:<math> \frac {s^2+s+6} {s(s+3)(s-5)} = \frac {A} {s} + \frac {B} {s+3} + \frac {C} {s-5}</math> |
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:<math> A(s+3)(s-5)+Bs(s-5)+Cs(s+3)=-s^2+s+6 \,</math> |
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:<math> A(s+3)(s-5)+Bs(s-5)+Cs(s+3)=s^2+s+6 \,</math> |
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:<math> A=\frac {-2} {5} \qquad B=\frac {-1} {4} \qquad C=\frac {-7} {20} </math> |
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:<math> A=\frac {-2} {5} \qquad B=\frac {1} {2} \qquad C=\frac {9} {10} </math> |
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Plugging the above values back into the equation further up, we get: |
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Plugging the above values back into the equation further up, we get: |
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:<math> \mathcal{L} \left\{y\right\} = \frac {\frac {-2} {5}} {s} + \frac {\frac {-1} {4}} {s+3} + \frac {\frac {-7} {20}} {s-5} </math> |
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:<math> \mathcal{L} \left\{y\right\} = \frac {\frac {-2} {5}} {s} + \frac {\frac {1} {2}} {s+3} + \frac {\frac {9} {10}} {s-5} </math> |
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Applying anti-Laplace transforms, we get the equation: |
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Applying anti-Laplace transforms, we get the equation: |
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:<math> y= \mathcal{L}^{-1} \left\{\frac {\frac {-2} {5}} {s}\right\} + \mathcal{L}^{-1} \left\{\frac {\frac {-1} {4}} {s+3}\right\} + \mathcal{L}^{-1} \left\{\frac {\frac {-7} {20}} {s-5}\right\} </math> |
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:<math> y= \mathcal{L}^{-1} \left\{\frac {\frac {-2} {5}} {s}\right\} + \mathcal{L}^{-1} \left\{\frac {\frac {1} {2}} {s+3}\right\} + \mathcal{L}^{-1} \left\{\frac {\frac {9} {10}} {s-5}\right\} </math> |
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Applying the Laplace transforms in reverse (as the above equation utilizes inverse Laplace transforms) for the above equation, we get the solution: |
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Applying the Laplace transforms in reverse (as the above equation utilizes inverse Laplace transforms) for the above equation, we get the solution: |
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:<math> y(t)= \frac {-2} {5} + \frac {-1} {4} e^{-3t} + \frac {-7} {20} e^{5t} </math> |
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:<math> y(t)= \frac {-2} {5} + \frac {1} {2} e^{-3t} + \frac {9} {10} e^{5t} </math> |
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==References== |
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==References== |
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DeCarlo, Raymond A.; Lin, Pen-Min (2001), Linear Circuit Analysis, Oxford University Press, ISBN 0-19-513666-7 . |
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DeCarlo, Raymond A.; Lin, Pen-Min (2001), Linear Circuit Analysis, Oxford University Press, ISBN 0-19-513666-7 . |
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Zill, Dennis G. (2005), A First Course in Differential Equations with Modeling Applications Ninth Edition, Brooks/Cole Cengage Learning, ISBN 0-495-10824-3 . |
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== External links == |
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== External links == |
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*[http://www.intmath.com/Laplace-transformation/Intro.php The Laplace Transform]. |
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*[http://www.intmath.com/Laplace-transformation/Intro.php The Laplace Transform]. |
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*Nice list of transforms! Where did you find it? Inside the back cover of the textbook has a good list, but none including transforms of <math>\ g(t)</math>. I see your reference to the textbook. What page? |
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*Nice list of transforms! Where did you find it? Inside the back cover of the textbook has a good list, but none including transforms of <math>\ g(t)</math>. I see your reference to the textbook. What page? |
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** Oops! It seems I forgot to add a reference to the list, thanks for mentioning it. I got the others from a list in the back of the ODE textbook. I'll list the reference up above. |
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*I believe that |
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*I believe that |
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:<math> \frac {6+s-s^2} {s(s+3)(s-5)} = \frac {A} {s}+ \frac {B} {s+3}+ \frac {C} {s-5}</math> |
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:<math> \frac {6+s-s^2} {s(s+3)(s-5)} = \frac {A} {s}+ \frac {B} {s+3}+ \frac {C} {s-5}</math> |
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** Thank you for pointing that out. It should be fixed now. |
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*Also, the solution <math> y(t)= -\frac {2} {5} - \frac {1} {4} e^{-3t} - \frac {7} {20} e^{5t} </math> does not match the initial condition of <math>\ y(0)=1</math>. |
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*Also, the solution <math> y(t)= -\frac {2} {5} - \frac {1} {4} e^{-3t} - \frac {7} {20} e^{5t} </math> does not match the initial condition of <math>\ y(0)=1</math>. |
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** Yeah, you're right. A minor sign error was what messed it up. It should be fixed now. |
Laplace transforms are an adapted integral form of a differential equation (created and introduced by the French mathematician Pierre-Simon Laplace (1749-1827)) used to describe electrical circuits and physical processes. Adapted from previous notions given by other notable mathematicians and engineers like Joseph-Louis Lagrange (1736-1812) and Leonhard Euler (1707-1783), Laplace transforms are used to be a more efficient and easy-to-recognize form of a mathematical equation.
Standard Form
This is the standard form of a Laplace transform that a function will undergo.
Sample Functions
The following is a list of commonly seen functions of which the Laplace transform is taken. The start function is noted within the Laplace symbol .
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Transfer Function
The Laplace transform of the impulse response of a circuit with no initial conditions is called the transfer function. If a single-input, single-output circuit has no internal stored energy and all the independent internal sources are zero, the transfer function is
Impedances and admittances are special cases of transfer functions.
Example
Solve the differential equation:
We start by taking the Laplace transform of each term.
The next step is to perform the respective Laplace transforms, using the information given above.
Using association, the equation is rearranged:
Continuing on using the method of partial fractions, the equation is progressed:
Plugging the above values back into the equation further up, we get:
Applying anti-Laplace transforms, we get the equation:
Applying the Laplace transforms in reverse (as the above equation utilizes inverse Laplace transforms) for the above equation, we get the solution:
References
DeCarlo, Raymond A.; Lin, Pen-Min (2001), Linear Circuit Analysis, Oxford University Press, ISBN 0-19-513666-7 .
Zill, Dennis G. (2005), A First Course in Differential Equations with Modeling Applications Ninth Edition, Brooks/Cole Cengage Learning, ISBN 0-495-10824-3 .
External links
Authors
Colby Fullerton
Brian Roath
Reviewed By
David Robbins
Thomas Wooley
Read By
Jaymin Joseph
John Hawkins
John Hawkins:
- Nice list of transforms! Where did you find it? Inside the back cover of the textbook has a good list, but none including transforms of . I see your reference to the textbook. What page?
- Oops! It seems I forgot to add a reference to the list, thanks for mentioning it. I got the others from a list in the back of the ODE textbook. I'll list the reference up above.
should be
- Thank you for pointing that out. It should be fixed now.
- Also, the solution does not match the initial condition of .
- Yeah, you're right. A minor sign error was what messed it up. It should be fixed now.