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I need help understanding the Fourier components of a square wave 
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#1
May2013, 02:57 AM

P: 17

In my physics book there is an example of making a square wave by "simply" summing up a few cosine waves. The book says these first three waves are the first three Fourier components of a square wave, yet when I sum the three wave functions up, I get something way off; as does my calculator.
For example, if we take the easiest case of x = 0, we get the sum of 1, 1/3, and 1/5 equals 1.53m. However, when I look at the plot for the sums, the amplitude seems to be at about 0.9m. That is nowhere near the sum of the three wave functions at zero. This means that I am missing something fundamentally important here. What is it? Here's a link to the graphs and the example problem. Thanks for your help. http://i.imgur.com/DrjU0VE.jpg?1 


#2
May2013, 03:08 AM

Sci Advisor
PF Gold
P: 1,355

They forgot a minus sign: the amplitude of ##D_2## should be ##\frac{1}{3} D_M##.



#3
May2013, 03:20 AM

P: 17

Excellent. Thank you very much, DrClaude.



#4
May2013, 01:45 PM

P: 581

I need help understanding the Fourier components of a square wave
Here is how to relate the amplitude of the cosine waves to the amplitude A of the square wave. For this example, [itex]A = \frac{\pi}{4}[/itex].
[itex]D_1 = \frac{4}{\pi}A cos(kx)[/itex] [itex]D_2 = \frac{4}{3\pi}A cos(3kx)[/itex] [itex]D_2 = \frac{4}{5\pi}A cos(5kx)[/itex] http://www.wolframalpha.com/input/?i...ariable.* If are curious how this can be found: [itex]a_n = \frac{2}{T} \int_{T/2}^{T/2} f(x)cos\left(2\pi \frac{n}{T} x\right)dx[/itex] Where f(x) is the square wave. We observe that the square wave is symmetric across x=0, so we integrate from 0 to T/2, and multiply by 2. [itex]a_n = \frac{4}{T} \int_{0}^{T/2} f(x)cos\left(2\pi \frac{n}{T} x\right)dx[/itex] We split this up into two integrals for the positive an negative portions. The square wave is +A in the positive portion and A in the negative portion. [itex]a_n = \frac{4}{T}\int_{0}^{T/4} A cos\left(2\pi \frac{n}{T} x\right)dx  \frac{4}{T}\int_{T/4}^{T/2} A cos\left(2\pi \frac{n}{T} x\right)dx [/itex] [itex]a_n = \left. \frac{4}{T}\frac{T}{2\pi n} A sin\left(2\pi \frac{n}{T} x\right) \right_{0}^{T/4}  \left. \frac{4}{T}\frac{T}{2\pi n} A sin\left(2\pi \frac{n}{T} x\right)\right_{T/4}^{T/2} [/itex] [itex]a_n = \frac{2}{\pi n}A \left[sin \left( \frac{\pi n }{2}\right)  0  sin\left(\pi n\right) + sin\left(\frac{\pi n }{2}\right) \right] = \frac{4}{\pi n}Asin \left( \frac{\pi n }{2}\right)  \frac{2}{\pi n}Asin\left(\pi n\right) [/itex] The second term is always zero, since n is an integer, and thus [itex]sin\left(\pi n\right) = 0[/itex] [itex]a_n = \frac{4}{\pi n}A sin \left( \frac{\pi n }{2}\right) [/itex] [itex]a_n = 0, \frac{4A}{\pi}, 0, \frac{4A}{3\pi}, 0, \frac{4A}{5\pi}, 0 , ... [/itex] Notice that only the terms with odd n are nonzero. Also, the sign alternates every odd term. Edit: I have fixed this to show a square wave for any amplitude A. For the square wave in this example, [itex]A = \frac{\pi}{4}[/itex] 


#5
May2013, 03:37 PM

Sci Advisor
PF Gold
P: 1,355




#6
May2013, 03:58 PM

P: 581




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