Coupled Oscillator: Hellie: Difference between revisions
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===Problem Statement=== |
===Problem Statement=== |
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Write up on the Wiki a solution of a coupled oscillator problem like the coupled pendulum. Use State Space methods. Describe the eigenmodes of the system. |
'''Write up on the Wiki a solution of a coupled oscillator problem like the coupled pendulum. Use State Space methods. Describe the eigenmodes of the system.''' |
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[[Image:Coupled_Oscillator.jpg]] |
[[Image:Coupled_Oscillator.jpg]] |
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Initial Conditions: |
'''Initial Conditions:''' |
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:<math>m_1= 15 kg\,</math> |
:<math>m_1= 15 kg\,</math> |
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:<math>k3=100 N/m\,</math> |
:<math>k3=100 N/m\,</math> |
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State Equations |
'''State Equations''' |
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<math> |
<math> |
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</math> |
</math> |
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With the numbers... |
'''With the numbers...''' |
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Eigenmodes |
'''Eigenmodes''' |
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:There are three eigenmodes for the system |
:There are three eigenmodes for the system |
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Solve Using the Matrix Exponential |
'''Solve Using the Matrix Exponential''' |
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<math>e^{At}=\mathcal{L}^{-1}\left\{(SI-A)^{-1}\right\},\,</math> |
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Written by: Andrew Hellie |
Written by: Andrew Hellie |
Revision as of 19:20, 30 November 2009
Problem Statement
Write up on the Wiki a solution of a coupled oscillator problem like the coupled pendulum. Use State Space methods. Describe the eigenmodes of the system.
Initial Conditions:
State Equations
=
With the numbers...
=
Eigenmodes
- There are three eigenmodes for the system
- 1) m1 and m2 oscillating together
- 2) m1 and m2 oscillating at exactly a half period difference
Solve Using the Matrix Exponential
Written by: Andrew Hellie