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| : <math>t = \int \pm \sqrt{\frac{m}{2\left (E-U(x) \right )}} dx </math> | | : <math>t = \int \pm \sqrt{\frac{m}{2\left (E-U(x) \right )}} dx </math> |
| :: <math> = \int \pm \sqrt{\frac{m}{2\left (0-(-mgx) \right )}} dx </math> | | :: <math> = \int \pm \sqrt{\frac{m}{2\left (0-(-mgx) \right )}} dx </math> |
− | :: <math> = \int \pm \sqrt{\frac{1}{2gx}} dx </math> | + | :: <math> = \int \pm \sqrt{\frac{1}{2gx}} dx = \int \pm (2gx)^{-\frac{1}{2}}dx </math> |
| + | :: <math> = \int \pm \sqrt{\frac{1}{2gx}} dx = \int \pm (2gx)^{-\frac{1}{2}}dx </math> |
| | | |
| == spring example== | | == spring example== |
Revision as of 15:41, 26 September 2014
The equation of motion for a system restricted to 1-D is readily solved from conservation of energy when the force is conservative.
- [math]T + U(x) =[/math] cosntant [math]\equiv E[/math]
- [math]\Rightarrow T = E - U(x)[/math]
- [math] \frac{1}{2} m \dot {x}^2 = E -U(x)[/math]
- [math]\dot x = \pm \sqrt{\frac{2\left (E-U(x) \right )}{m}}[/math]
- [math]\int \pm \sqrt{\frac{m}{2\left (E-U(x) \right )}} dx = \int dt = t-t_i =t [/math]
The ambiguity in the sign of the above relation, due to the square root operation, is easily resolved in one dimension by inspection and more difficult to resolve in 3-D.
The velocity can change direction (signs) during the motion. In such cases it is best to separte the inegral into a part for one direction of the velocity and a second integral for the case of a negative velocity.
Free fall
Consider a rock dropped at t=0 from a tower of height h.
The potential energy stored in the rock at any instant is given by
[math]U(x) = -mgx[/math]
- Note
- The potential is highest at x=0 and becomes negative as x increases
The initial total energy is
- [math]E_{tot} = T + U = 0 -0 = 0[/math]
- [math]t = \int \pm \sqrt{\frac{m}{2\left (E-U(x) \right )}} dx [/math]
- [math] = \int \pm \sqrt{\frac{m}{2\left (0-(-mgx) \right )}} dx [/math]
- [math] = \int \pm \sqrt{\frac{1}{2gx}} dx = \int \pm (2gx)^{-\frac{1}{2}}dx [/math]
- [math] = \int \pm \sqrt{\frac{1}{2gx}} dx = \int \pm (2gx)^{-\frac{1}{2}}dx [/math]
spring example
Consider the problem of a mass attached to a spring in 1-D.
- [math] F = -kx[/math]
The potential is given by
- [math]U(x) = - \int F(x) dx = \frac{1}{2} k x^2[/math]
- [math]t = \int \pm \sqrt{\frac{m}{2\left (E-U(x) \right )}} dx = \int dt [/math]
- [math] = \sqrt{\frac{m}{2}} \int_{x_0}^x\left (E-U(x) \right )^{-\frac{1}{2}} dx [/math]
- [math] = \sqrt{\frac{m}{2}} \int_{x_0}^x\left (E-\frac{1}{2}kx^2 \right )^{-\frac{1}{2}} dx [/math]
- [math] = \sqrt{\frac{m}{2E}} \int_{x_0}^x \left (1-\left ( x \sqrt{\frac{k}{2E}}\right ) ^2 \right )^{-\frac{1}{2}} dx [/math]
let
- [math]\sin \theta = x \sqrt{\frac{k}{2E}}[/math] and [math] \omega = \sqrt{\frac{k}{m}}[/math]
- [math]\cos \theta d \theta = dx \sqrt{\frac{k}{2E}}[/math]
then
- [math]t = \sqrt{\frac{m}{2E}} \int_{x_0}^x \left (1-\sin^2 \theta \right )^{-\frac{1}{2}} dx [/math]
- [math]= \sqrt{\frac{m}{2E}} \int_{x_0}^x \frac{dx}{ \cos \theta } [/math]
- [math]= \sqrt{\frac{m}{2E}} \int_{x_0}^x \frac{\cos \theta d\theta}{ \cos \theta } \sqrt{\frac{2E}{k}}[/math]
- [math]= \sqrt{\frac{m}{k}} \int_{x_0}^x d\theta[/math]
- [math]= \frac{1}{\omega} \int_{\theta_0}^{\theta} d \theta[/math]
- [math] \theta = \omega t + \theta_0 [/math]
- [math] \sin \theta = \sin {\left (\omega t + \theta_0 \right )}[/math]
- [math]\sqrt{\frac{2E}{m}} \sin \theta = \sqrt{\frac{2E}{m}} \sin {\left (\omega t + \theta_0 \right )}[/math]
- [math]x = \sqrt{\frac{2E}{m}} \sin {\left (\omega t + \theta_0 \right )}[/math]
- [math]x = A \sin {\left (\omega t + \theta_0 \right )}[/math]
- [math]A = \sqrt{\frac{2E}{m}}[/math] = amplitude of oscillating motion
- [math]U(x) = \frac{1}{2} k x^2 = \frac{1}{2} kA^2 \sin^2 {\left (\omega t + \theta_0 \right )}[/math]
- [math]E = T + U(x) = \frac{1}{2}kA^2[/math]
Forest_UCM_Energy#Energy_for_Linear_1-D_systems