Presentation is loading. Please wait.

Presentation is loading. Please wait.

Oscillations Examples

Similar presentations


Presentation on theme: "Oscillations Examples"— Presentation transcript:

1 Oscillations Examples

2 Example 15.1 Mass-Spring System: m = 200 g = 0.2 kg, k = 5 N/m.
Moved x = 5 cm = 0.05 m & let go on frictionless surface. Simple harmonic motion. Find: A. Amplitude: A = maximum value of x, A = 5 cm = 0.05 m B. Angular frequency ω: so ω = 5 rad/s Frequency f: so f = ω/(2π) = 0.8 Hz (cycles/second) Period T: From above, T = (1/f) = 1.26 s C. Max. speed vmax & max. acceleration amax: so, vmax = 0.25 m/s amax = 1.25 m/s2

3 Example 15.1, continued Mass-Spring System:
m = 200 g = 0.2 kg, k = 5 N/m. Found: ω = 5 rad/s, A = 0.05 m Find: D. Position, velocity, & acceleration as functions of time: x(t) = Acos(wt + f), v(t) = - wAsin(wt + f), a(t) = - w2Acos(wt + f) To find f note when t = 0, x = x(0) = A = Acos f so, f = 0 So, x(t) = Acos(wt) = (0.05 m)cos(5t) v(t) = - wAsin(wt) = - (0.25 m/s)sin(5t) a(t) = - w2Acos(wt) = - (1.25 m/s2)cos(5t)

4 Modification of Example 15.1
Mass-Spring System: m = 200 g = 0.2 kg, k = 5 N/m. Instead of pulling m out a distance xi = 0.05 m & releasing it with zero initial velocity, pull it that distance & push it at an initial velocity vi = -0.1 m/s. Which parts of problem change? Still have: x(t) = Acos(wt + f), v(t) = - wAsin(wt + f), a(t) = - w2Acos(wt + f) Angular frequency ω: is still ω = 5 rad/s Frequency f is still = ω/(2π) = 0.8 Hz (cycles/second) Period T is still = (1/f) = 1.26 s

5 Modification Continued
Mass-Spring System: m = 200 g = 0.2 kg, k = 5 N/m. ω = 5 rad/s, xi = 0.05 m, vi = m/s x(t) = Acos(wt + f), v(t) = - wAsin(wt + f), a(t) = - w2Acos(wt + f) Everything else changes! Find f & A: when t = 0, x = x(0) = xi = 0.05 m = Acosf (1) and v = v(0) = vi = m/s = - ωAsinf (2) (1) & (2): 2 equations, 2 unknowns. Algebra gives: tanf = - vi/(wxi) = 0.4, so f = π radians A = xi/cosf = m so, vmax = ωA = m/s, amax = ω2A = 1.36 m/s2 So, x(t) = Acos(wt + f) = (0.054 m)cos(5t π) v(t) = wAsin(wt + f) = - (0.271 m/s)sin(5t π) a(t) = - w2Acos(wt) = - (1.36 m/s2)cos(5t π)

6 Energy of the SHM Oscillator
Assume a spring-mass system is moving on a frictionless surface This tells us the total energy is constant The kinetic energy can be found by K = ½ mv 2 = ½ mw2 A2 sin2 (wt + f) The elastic potential energy can be found by U = ½ kx 2 = ½ kA2 cos2 (wt + f) The total energy is E = K + U = ½ kA 2

7 The total mechanical energy is constant
The total mechanical energy is proportional to the square of the amplitude Energy is continuously being transferred between potential energy stored in the spring and the kinetic energy of the block Use the active figure to investigate the relationship between the motion and the energy

8 As the motion continues, the exchange of energy also continues
Energy can be used to find the velocity

9 Energy in SHM, summary

10 Importance of Simple Harmonic Oscillators
Simple harmonic oscillators are good models of a wide variety of physical phenomena Molecular example If the atoms in the molecule do not move too far, the forces between them can be modeled as if there were springs between the atoms The potential energy acts similar to that of the SHM oscillator


Download ppt "Oscillations Examples"

Similar presentations


Ads by Google