There is an online calculator, which will help you determine the dimensions of your cantenna. Formula for Calculating the Wavelength First, it is important to know that radio waves travel at the speed of light, which is about 300 Mega meters (Mm) per second (the exact speed is 299,792,458 meters/sec). WiFi Range Calculator Calculating your 802.11 power output. Use this calculator to walk through all the factors that make up your Total Power Output.
Some basics: In antenna terminology, this is an “open-ended waveguide”. Practically speaking that just means a hollow metal tub e excited in a way that radiates electromagnetic e nergy. You pick the diameter of the tube accordin g to the frequency band you want to work in. The length and diameter of the t ube determine t he antenna’s radiation pattern. You excite the cantenna with a coaxial cable an d it will transmit your signals – it’s as simple as that! Uses: As luck would have it, many can sized cylinders are good for the 2.4 GHz ISM band.
This could be useful for connecting a laptop to the internet in a remote location or connecting to a free Wi-fi network from your home. Most 802.11 standards fall into this band: 802.11b and 802.11g use 2.4GHz. 802.11n can use both 2.4GHz and 5 GHz, but you can get away with only the 2.4GHz signal - it propagates better over long ranges anyway.
I have a slightly different application: The Ramsey SG7 Speedy Radar Kit operates at 2.6GHz. ( ) This is a little Doppler radar kit that I’m putting together. How it works: Inside waveguides, electromagnetic fields can only exist in certain patterns called “modes.” The best cantenna designs excite one and only one mode. This is for several reasons: different modes actually travel at different speeds down the waveguide, known as “dispersion.” This can cause a problem for signals by spreading out pulses making them harder to receive. Also, different modes have different radiation patterns.
Shown below is one transverse electric (TE) and one transverse magnetic (TM) mode – the main types for circular waveguide. First let’s look at the TE11 mode a.k.a. The “dominant mode” for circular waveguide.
Shown below is a side view of the waveguide and feeding coax. The grey rectangle is the cantenna, with a small green colored coax cable attached with the center conductor extending into the can. This should be one-quarter of a wavelength (in the guide!) from the back of the can, and it will excite the TE11 mode: electric fields are plotted in red and magnetic fields are plotted in blue. Now suppose you fed the cantenna from the back instead of the bottom. Neighbors 2014 dual audio robocop costume. This will excite a different mode than what was shown above.
This is the TM11 mode (electric fields are plotted in red and magnetic fields are plotted in blue). How to pick a diameter: As mentioned before, you want to excite only one TE mode. You do this by picking a can diameter large enough to allow the TE11 mode but small enough to block (“cutoff”) the TM01 mode. To repeat: if the 808.11b/g frequency band goes from 2.412-2.462GHz then you want the TE11 mode to work at 2.412GHz and the TM01 mode to NOT work at 2.462GHz.
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Look at for an online calculator or you can run through the equations yourself: (From Kraus’ Electromagnetics 8-5 “The Hollow Cylindrical Waveguide”) TE11: This mode will work if f = 2.412GHz > f cutoff = 2*c/(3.41*D) TM01: This mode will not work if f = 2.462GHz.