revise free vibrations
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@ -8,7 +8,7 @@ Where:
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$$\begin{matrix}F_{ext}(t) & \text{any external forces applied }(N) \\m & \text{mass } (kg) \\b & \text{damping constant } \left( \frac{Ns}{m} \right) \\k & \text{spring constant } \left( \frac{N}{m} \right)\end{matrix}$$
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$$\begin{matrix}F_{ext}(t) & \text{any external forces applied }(N) \\m & \text{mass } (kg) \\b & \text{damping constant } \left( \frac{Ns}{m} \right) \\k & \text{spring constant } \left( \frac{N}{m} \right)\end{matrix}$$
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Free vibrations are when there are <u>no external forces</u> applied upon an oscillatory system. ie:
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Free vibrations are when there are <u>no external forces</u> applied upon an oscillatory system. ie:
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$$F_{ext}(t)=0$$
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$$F_{ext}(t)=0$$
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Free vibrations is really another word for #second_order_homogenous But it puts emphasis that we are modelling a friction-mass-spring system and that we can describe the solution—the position of the mass $y(t)$—in terms of frequency, phase shift, and amplitude: $\omega,\ \phi,\ A$.
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Free vibrations is really another word for #second_order_homogenous But it puts emphasis that we are modelling a friction-mass-spring system and that we can describe the solution—the position of the mass $y(t)$—in terms of frequency, phase shift, and amplitude: $\omega,\ \phi,\ A$. It's more of a case study on real world implications than anything else.
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## System derivation
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## System derivation
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Let's start solving the DE!
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Let's start solving the DE!
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$mr^2+br+k=0$ is the characteristic polynomial.
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$mr^2+br+k=0$ is the characteristic polynomial.
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@ -33,7 +33,7 @@ $$\begin{align}r_{1,2}&=\alpha\pm i\beta \quad \text{(imaginary roots)} \\ y_{h}
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Recall the solution for the under damped case, $y_{h}(t)=e^{\alpha t}(c_{1}\cos (\beta t)+c_{2}\sin(\beta t))$
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Recall the solution for the under damped case, $y_{h}(t)=e^{\alpha t}(c_{1}\cos (\beta t)+c_{2}\sin(\beta t))$
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It's hard to visualize a sum of two trig functions. It would be nice if we could define $y_{h}$ in terms of phase shift, amplitude, and frequency.
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It's hard to visualize a sum of two trig functions. It would be nice if we could define $y_{h}$ in terms of phase shift, amplitude, and frequency.
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The frequency part is easy: let $\omega=\beta$ (called the angular frequency)
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The frequency part is easy: let $\omega=\beta$ (called the angular frequency) Notice that means the frequency of the system depends on $m$, $b$, and $k$ !
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Now for phase:
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Now for phase:
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Which trig identity could help us here? This one looks handy:
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Which trig identity could help us here? This one looks handy:
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$\sin(\alpha+\beta)=\sin \alpha\cos \beta+\cos \alpha \sin \beta$
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$\sin(\alpha+\beta)=\sin \alpha\cos \beta+\cos \alpha \sin \beta$
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@ -55,7 +55,7 @@ so we can compute $A$ and $\phi$ from $c_1$ and $c_2$.
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## Examples
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## Examples
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#ex #second_order_homogenous #IVP
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#ex #second_order_homogenous #IVP
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Solve the following IVP's when $b=0$, $b=6$, $b=10$, and $b=12$
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Solve the following IVP's when $b=0$, $b=6$, $b=10$, and $b=12$
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(This is more of a study than an example problem. We have already solved equations like this so treat it as an exploration. Note the big takeaways at the end of each case)
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(This is more of a study than an example problem. We have already solved equations like this so treat it as an exploration. Note the important takeaways at the end of each case)
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$$y''+by'+25y=0 \qquad y(0)=1\quad y'(0)=0$$
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$$y''+by'+25y=0 \qquad y(0)=1\quad y'(0)=0$$
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1.) b=0 -> no friction in the system (undamped)
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1.) b=0 -> no friction in the system (undamped)
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$b^2-4mk<0$ (under damped)
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$b^2-4mk<0$ (under damped)
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@ -91,7 +91,7 @@ $y'(t)=-5c_{1}e^{-5t}+c_{2}e^{-5t}-5c_{2}te^{-5t}$
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$y'(0)=-5c_{1}+c_{2}=0$
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$y'(0)=-5c_{1}+c_{2}=0$
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$c_{2}=5$
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$c_{2}=5$
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$y(t)=(1+5t)e^{-5t}\rightarrow0_{as\ t\to\infty}$
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$y(t)=(1+5t)e^{-5t}\rightarrow0_{as\ t\to\infty}$
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Big take away: notice that $y(t)$ here is always strictly positive ($y(t)$>0). It doesn't oscillate at all. (Also if you recall from PHYS130, critically damped is the optimal amount of damping to get the mass to settle to the equilibrium position as fast as possible.)
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Important take away: notice that $y(t)$ here is always strictly positive ($y(t)$>0). It doesn't oscillate at all. (Also if you recall from PHYS130, critically damped is the optimal amount of damping to get the mass to settle to the equilibrium position as fast as possible.)
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4.) b=12
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4.) b=12
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$r_{1,2}=-\frac{12}{2}\pm \frac{\sqrt{ 144-100 }}{2}-6\pm \sqrt{ 11 }$
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$r_{1,2}=-\frac{12}{2}\pm \frac{\sqrt{ 144-100 }}{2}-6\pm \sqrt{ 11 }$
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$y(t)=c_{1}e^{(-6+ \sqrt{ 11 })t}+c_{2}e^{(-6-\sqrt{11 })t}$
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$y(t)=c_{1}e^{(-6+ \sqrt{ 11 })t}+c_{2}e^{(-6-\sqrt{11 })t}$
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@ -100,10 +100,11 @@ $y'(0)=(-6+\sqrt{ 11 })c_{1}+(-6-\sqrt{ 11 })c_{2}=0$
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solving the linear system of equations gives:
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solving the linear system of equations gives:
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$c_{1}=\frac{11+6\sqrt{ 11 }}{22}$
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$c_{1}=\frac{11+6\sqrt{ 11 }}{22}$
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$c_{2}=\frac{{11-6\sqrt{ 11 }}}{22}$
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$c_{2}=\frac{{11-6\sqrt{ 11 }}}{22}$
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Big takeaway: this is an over damped case.
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Important takeaway: this is an over damped case.
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Final big takeaway:
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Final big takeaway:
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Lets look at the graphs, we are assuming $t>0$ to keep things realistic. Notice how the black line ($b=10$) decays faster than the $b=12$ and the $b=6$. Also notice how there can be a local max/min in an over damped system. It's possible to have local max/min in a critically damped system as well. This is a cause of giving the mass some initial speed when you released it. An under damped system has infinitely many local max/mins. (psst, A possible question you may come across is to ask what $t$ an oscillatory system reaches it's max/min value, and what value it attains). An over damped and critically damped system will never cross the x axis unless you give it sufficient speed when you release it and that you're "throwing it" in the direction of the equilibrium position. Finally, notice how the under damped system will cross the x axis infinitely many times, and has a constant period, and can be viewed as a sin wave with an exponentially decaying envelope and a bit of phase.
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Lets look at the graphs, we are assuming $t>0$ to keep things realistic. Notice how the black line ($b=10$) decays faster than the $b=12$ and the $b=6$. Also notice how there can be a local max/min in an over damped system. It's possible to have local max/min in a critically damped system as well. This is a cause of giving the mass some initial speed when you released it. An under damped system has infinitely many local max/mins. (psst, A possible question you may come across is to ask what $t$ an oscillatory system reaches it's max/min value, and what value it attains). An over damped and critically damped system will never cross the x axis unless you give it sufficient speed when you release it and that you're "throwing it" in the direction of the equilibrium position. Finally, notice how the under damped system will cross the x axis infinitely many times, and has a constant period, and can be viewed as a sin wave with an exponentially decaying envelope and a bit of phase.
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![mbk-graphs.png](drawings/mbk-graphs.png)
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![mbk-graphs.png](drawings/mbk-graphs.png)
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This image is from the course textbook, on page 215: Fundamentals of Differential Equations, R. Kent Nagle, Edward B. Saff and Arthur D. Snider, 9th Edition.
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Hey, we are all done! See, free vibrations is more of a case study rather than new content.
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Hey, we are all done! See, free vibrations is more of a case study rather than new content.
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#end of lec 12
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#end of lec 12
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