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Announcements 2/25/11 Prayer Due Saturday night: a. a.Labs 4-5 b. b.First extra credit papers - Can do each type of paper once in first half of semester,

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Presentation on theme: "Announcements 2/25/11 Prayer Due Saturday night: a. a.Labs 4-5 b. b.First extra credit papers - Can do each type of paper once in first half of semester,"— Presentation transcript:

1 Announcements 2/25/11 Prayer Due Saturday night: a. a.Labs 4-5 b. b.First extra credit papers - Can do each type of paper once in first half of semester, once in second half c. c.Term project proposals – – Email to me: proposal in body of email, 650 word max. – – One proposal per group… but please CC your partner(s) on email. – – See website for guidelines, grading, ideas, and examples of past projects. Exam 2 starts next Saturday! a. a.Exam 2 optional review session: vote on times by Sunday night; I’ll make a decision Monday morning. Anyone need Colton “Fourier series summary” handout? Spectrum Lab on laptop

2 Reading Quiz In the Fourier transform of a periodic function, which frequency components will be present? a. a.Just the fundamental frequency, f 0 = 1/period b. b.f 0 and potentially all integer multiples of f 0 c. c.A finite number of discrete frequencies centered on f 0 d. d.An infinite number of frequencies near f 0, spaced infinitely close together e. e.Masspacity

3 Fourier Theorem Any function periodic on a distance L can be written as a sum of sines and cosines like this: Notation issues: a. a.a 0, a n, b n = how “much” at that frequency a. a.Time vs distance b. b.a 0 vs a 0 /2 c. c.2  /L = k (or k 0 )… compare 2  /T =  (or  0 ) d. d.Durfee: – – a n and b n reversed – – Uses 0 instead of L The trick: finding the “Fourier coefficients”, a n and b n

4 Applications (a short list) “What are some applications of Fourier transforms?” a. a.Electronics: circuit response to non-sinusoidal signals (mentioned last lecture) b. b.Data compression (as mentioned in PpP) c. c.Acoustics: guitar string vibrations (PpP, next lecture) d. d.Acoustics: sound wave propagation through dispersive medium e. e.Optics: spreading out of pulsed laser in dispersive medium f. f.Optics: frequency components of pulsed laser can excite electrons into otherwise forbidden energy levels g. g.Quantum: “particle in a box” situation, aka “infinite square well”--wavefunction of an electron

5 How to find the coefficients What does mean? Let’s wait a minute for derivation.

6 Example: square wave f(x) = 1, from 0 to L/2 f(x) = -1, from L/2 to L (then repeats) a 0 = ? a n = ? b 1 = ? b 2 = ? b n = ? 0 0 4/  Could work out each b n individually, but why? 4/(n  ), only odd terms

7 Square wave, cont. Plots with Mathematica: http://www.physics.byu.edu/faculty/colton/courses/phy123-winter11/lectures/lecture 22 - square wave Fourier.nb

8 Deriving the coefficient equations To derive equation for a 0, just integrate LHS and RHS from 0 to L. To derive equation for a n, multiply LHS and RHS by cos(2  mx/L), then integrate from 0 to L. (To derive equation for b n, multiply LHS and RHS by sin(2  mx/L), then integrate from 0 to L.) Recognize that when n and m are different, cos(2  mx/L)  cos(2  nx/L) integrates to 0. (Same for sines.) Graphical “proof” with Mathematica Otherwise integrates to (1/2)  L (and m=n). (Same for sines.) Recognize that sin(2  mx/L)  cos(2  nx/L) always integrates to 0.

9 Sawtooth Wave, like HW 22-1 (The next few slides from Dr. Durfee)

10 The Spectrum of a Saw-tooth Wave

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12 Electronic “Low-pass filter” “Low pass filter” = circuit which preferentially lets lower frequencies through. ? Circuit What comes out? How to solve: (1)Decompose wave into Fourier series (2)Apply filter to each freq. individually (3)Add up results in infinite series again

13 Low-Pass Filter – before filter

14 Low-Pass Filter – after filter

15 Low Pass Filter

16 Actual Data from Oscilloscope


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