Vibrations and Oscillations

Vibrations and Oscillations A mass on a spring will oscillate if the mass is pushed or pulled from its equilibrium position. Why? We saw from the Hooke’s Law experiment that the force of a spring is related to how far the spring is pulled or pushed from equilibrium: Fspring = -k(x-xo)where the minus simply indicates that if you push in on the spring, the spring pushes out.

Springs The spring constant, k, describes how “stiff” the spring is. A large k indicates that a large force is needed to stretch the spring. But why does the mass oscillate? From Newton’s Second Law, if we ignore other forces like friction or air resistance: • F = ma and ΣF = -k(y-yo) - mg leads to -k(y-yo) - mg = ma .(in the force of the spring, we have replaced x with y since the mass will be going up and down instead of left and right)

Oscillations of Springs -k(y-yo) - mg = ma This says that if y-yo is negative (spring stretched below equilibrium point, yo), the force is positive (directed up) and hence the acceleration is positive. This will produce a velocity that, if initially zero, will become positive, tending to reduce the negative y-yo. As y approaches the equilibrium position, the force approaches zero and the acceleration will approach zero; but this still leaves a positive velocity!

Oscillations of Springs Now as it passes the equilibrium position, the mass has velocity so it will pass through the equilibrium position and end up with a positive (compressed) position. Here the force becomes negative giving a negative acceleration. This will make the positive velocity less positive, but still positive. Hence the mass will go to an even more positive position, with an even bigger negative force and acceleration that will continue to slow it down until it reaches zero speed.

Oscillations of Springs At this point where the speed is zero, we have a positive (compressed) position which gives a negative force and hence negative acceleration. This acceleration will then cause the speed to decrease to a negative value which will cause the mass to move back towards equilibrium. This process continues and we get an oscillation!

Formulas for Oscillations From the calculus, we can solve -k(y-yo) - mg = ma = m d2y/dt2 (this is a differential equation) to get: y = yo – mg/k + A sin(wt + qo) = ye+ A sin(wt + qo), (where ye = yo – mg/k is the new equilibrium position) This should appear reasonable: the sine function oscillates (goes up and down in value) just like the mass oscillates! But the sine function needs an angle to operate on! Where is the angle in the problem?

Angles: geometric and phase y = ye + A sin(wt + qo) The sine function is operating on the quantity: (wt + qo). This expression must be an angle. But what angle? There is no “geometric” angle in the problem because the problem is only in one dimension. Instead, we call this kind of angle a phase angle. A phase angle simply describes where in the oscillation the wave is!

Sine and Phase Angles The crest of thesine wave islocated at 90o,the trough at 270oand it crosses zeroat 0o, 180o and starts repeatingat 360o (or 2p radians).

Phase angle frequency y = A sin()where  is a phase angle in an oscillation;  changes withtime(goes2radians in time T)so q = wt + qo = (2/T)*t + qo where2/T =  = 2pf; and qois simply the phase angle when t=0 (where the oscillation starts at t=0).

Amplitude y = ye + A sin(wt + qo) . The amplitude, A, describes how far up and how far down y goes. Since sine has a maximum value of 1 and a minimum value of -1, A is used to put in units and give the amplitude of the oscillation.

What does w depend on? y = A sin(wt + qo) We have seen that w describes how fast the mass oscillates. But what does this oscillation speed (ω= dqphase/dt) depend on? By putting in our solution for y into Newton’s Second Law (the differential equation), we can get a prediction: w = (k/m) . For stiffer springs and lighter masses, the frequency of the oscillation increases. Note: the Amplitude does NOT affect the frequency!

Oscillations and Energy For masses on springs, we have: Etotal = KE + PE = (1/2)mv2 + (1/2)kx2. We also know that x = A sin(wt + qo) . If we look at how x changes with time, we get the speed. From the calculus, we get: v = wA cos(wt + qo). Therefore, Etotal = (1/2)mw2A2cos2(wt+qo) + (1/2)kA2sin2 (wt+qo). Note: when sine is maximum, cosine is zero; and when sine is zero, cosine is maximum!

Oscillations and Energy Etotal = (1/2)mw2A2cos2(wt+qo) + (1/2)kA2sin2 (wt+qo). From the above, it looks like Etotal depends on time. Does this violate Conservation of Energy? We saw that w = (k/m) . Substituting this into the first term gives: Etotal= (1/2) kA2cos2(wt+qo) + (1/2)kA2sin2 (wt+qo) = (1/2)kA2 = (1/2) mw2A2, which does NOT depend on time!

Energy: Amplitude and frequency Since Energy =(1/2) mw2A2 , as the frequency goes up (ω), to keep the same energy the amplitude (A) needs to go down. Can you make sense of that relationship? Since kinetic energy depends on velocity (squared), and since v = dx/dt , a higher frequency means that for the same distance (amplitude) we have a smaller dt. To keep the same v, we need a smaller distance (amplitude) to go with the smaller dt (higher frequency).

Springs and Applied Force If we pull the mass on the spring (giving it potential energy), then release the mass, the mass will oscillate: y = ye + A sin(wt + qo) at a frequency: w = (k/m). The initial energy we put into the system went into the potential energy of the spring. When we let loose, the energy oscillates between potential energy and kinetic energy (until friction bleeds the energy away).

Springs and Applied Force What happens when we continue to apply a force on the mass? Specifically, what happens when we apply an oscillating force: Fapplied = Fo sin(appliedt) ? How does the mass on the spring respond? Does it’s response depend on Fo ? Does it’s response depend on applied ? We’ll see a demonstration in class.

Resonance As we saw in the demonstration, the mass on the spring does not receive much energy from the oscillating force, unless appliedis very close to free . This is because the force is sometimes in the same direction as the motion (giving energy) and sometimes in the opposite direction (receiving energy), so on average very little energy is actually transmitted.

Resonance When applied= free , we have a lot of energy transferred from the oscillating force into the mass/spring system, because the force is always in the direction of the motion. We call this resonance. Whenever we have something that oscillates, we will find resonance. We will run into many examples where resonance is very important.

The Pendulum In the Oscillations Lab, we will experimentally develop equations to describe the oscillations of a pendulum. In this case, we will have a real geometric angle AND we will have a phase angle. The geometric angle (the angle the pendulum makes with the vertical) oscillates, so we will have: qpendulum = qmax sin(wt+fo) .

The Pendulum In the lab we will investigate what physical parameters the period (T) depends on. Again, we will have the relations we had for the spring and for circular motion in general: f = 1/T, w=2pf.

Waves on a string If you wiggle one end of a string (or slinky) that has a tension on it, you will send a wave down the string. Why? How fast does the wave travel? What is moving in the wave? We can consider this by looking at Newton’s Second Law:

Waves on a string If we consider the first part of the wave, we see that the Tension on the right has a zero y component, but the Tension on the left is pulling up. Thus, S Fy = Tleft-y + Tright-y > 0. This will cause this part of the string to start moving upwards!

Waves on a string A little later, this part of the string is moving upwards, but now the Tension on the left has less of a y component and the Tension on the right has a bigger negative y component! This will tend to slow this part of the string down!

Waves on a string At the top of the pulse, the wave has slowed to zero, but both the left and right Tensions are pulling down, so there will continue to be a negative y force, and this will cause this part of the string to start moving down.

Waves on a string By continuing to look at each part of the string, we can understand how the wave can move down the string. Using the calculus, we can solve the differential equation that Newton’s Law gives, and we get: y = A sin(kx  wt) .

Waves (in general) y = A sin()where  is a phase angle in a moving wave,  changes with both • time(goes2radians in time T) and • distance (goes 2radians in distance ) so = (2/)*x +/- (2/T)*t • where2/T =  (T = period) and • where 2/ = k (l = wavelength) Note that here, k is not the spring constant, but rather the wave number.

Speed of the wave(phase speed) What is moving in the wave?Each part of the slinky is just moving up and down.We can see that the crest of the wave is moving along the length of the slinky, and we can describe the crest with a phase angle (crest is where phase angle = 90o), so Speed of wave = phase speed = v =distance/time = /T = f =/k. Note that the phase speed is not the same as the speed of material that is moving up and down.

Waves (in general) • sine waves are nice - for nice sine waves: y = A sin(kx t + qo) • other types of waves (such as square waves, sawtooth waves, etc.) can be formed by a superposition of sine waves - this is called Fourier Series . This means that sine waves can be considered as fundamental. The process of breaking a wave into its component sine waves is called spectral analysis.

Waves on a String By continuing the analysis using Newton’s Second Law and the calculus, we can come up with relations for the phase speed of the wave in terms of the parameters of the wave: v = lf = w/k = (Ttension)/m) where m = m/L(mass/length of string). Caution: don’t confuse the symbol, T, for period with the symbol, T, for tension. Caution: don’t confuse the symbol, k, for spring constant with the symbol, k, for wave number.

Power delivered by a wave Each part of a nice sine wave oscillates just like a mass on a spring. Hence it’s energy is that of an oscillating mass on a spring. We saw before that this depended on w2A2. The power delivered by a wave is just this energy per time. The rate of delivery depends on the speed of the wave. Thus the power in the wave should depend on: P  w2A2v where  means proportional to.

Reflections of Waves Do waves “bounce” off of obstacles? In other words, do waves reflect? We observed this in lab and/or in a class demo with a slinky. There are two cases: 1. when waves bounce off a stiff obstacle, the waves do reflect, but they change phase by 180o; 2. when waves bounce off a loose obstacle, the waves do reflect, but they do NOT change phase.

Interference: Waves on a String When a wave on a string encounters a fixed end, the reflected wavemust interfere with the incoming waveso as to produce cancellation. This means the reflected wave is 180 degrees (or /2) out of phase with the incoming wave at the fixed end. The image below shows a picture of the blue incoming wave and the red reflected wave at one particular instant. At this instant, the two waves add to zero at the right end, but the two troughs near the right end add together! Fixed end

Interference: Waves on a String Below is the same situation, only this time we picture the situation at a time (1/4)T later. Note that the blue incoming wave is at a trough and the red reflected wave is at a crest and so the two cancel at the fixed end as required. Note that at this instant, we get cancellation everywhere! Fixed end

Interference: Waves on a String Below is the same situation, and this time we picture the situation at a time (1/4)T later than the previous, or (1/2)T later than the first. Note that both the blue incident wave and the red reflected wave are at zero at the fixed end, but the two crests near the right end add constructively! Fixed end

Interference: Waves on a String When a wave on a string encounters a freeend, the reflected wavedoes NOT have to destructively interfere with the incoming wave since there is no requirement that the end stays at zero. There is NO phase shift on this reflection. Free end

Interference: Waves on a String Again, we picture the situation at a time (1/4) T later. The incident wave is at a trough and the reflected wave is also at a trough at the free end. Free end

Interference: Waves on a String Below is the same situation, and this time we picture the situation at a time (1/4)T later than the previous, or (1/2)T later than the first. Free end

Below is the situation with two fixed ends spaced 1.625 wavelengths apart (phase difference of 585o which is the same as 225o). • The blue is the incident wave arriving at the right end with a phase of 180o and is reflected. • The red is the first reflected wave from the right end starting with a phase of 180o+180o = 360o which is the same as 0o. The red wave reaches the left end with a phase of 225o and is reflected. • The purple reflected wave starts with a phase of 225o+180o = 405o which is the same as 45o. It reaches the right end with a phase of 45o+225o = 270o and is reflected. • The orange reflected wave starts with a phase of 270o+180o = 450o which is the same as 90o. Fixed end Fixed end

Interference Notice how confused the waves become, and when you start adding them all together, you tend to get cancellation everywhere all the time. Fixed end Fixed end

Standing Waves However, if the difference between the two ends is 1.5 wavelengths, a stable pattern of constructive interference persists, and we have what are called standing waves! Fixed end Fixed end

Standing Waves To create what are called standing waves (we will play with these in the last lab), we need to create constructive interference from both ends. This leads to the following condition:#(l/2) = L , which says: we need an integer number of half wavelengths to “fit” on the Length of the string for standing waves. We can vary the wavelength by either varying the frequency or the speed of the wave: recall that phase speed: v =distance/time = /Tperiod = f . For a wave on a string, recall thatv = lf = (Ttension)/m) where m = m/L.

Standing Waves For stringed instruments (piano, guitar, etc.), the string vibrates with both ends fixed. However, with wind instruments (trumpet, trombone, etc.), we can have the situation where both ends are free and a different situation where one end is free and one end is fixed. • If both ends are free, we get the same resonance condition as for both ends fixed: #(l/2) = L. • If one end is free and the other end is fixed, we get a different condition: #odd(l/4) = L, where #odd is an odd number (1, 3, 5, etc.).

Interference: Waves on a String In general: • When a wave is incident on a SLOWERmedium, the reflected wave is 180 degrees out of phase with the incident wave. • When a wave is incident on a FASTER medium, the reflected wave does NOT undergo a 180 degree phase shift.

Vibrations and Oscillations