Receiving antenna design » History » Version 9
SCHNEIDER, Joris, 03/23/2017 05:34 PM
1 | 1 | SCHNEIDER, Joris | h1. Receiving antenna design |
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3 | 3 | SCHNEIDER, Joris | As we have seen in the previous section, the double cross antenna is composed of two crossed pairs of equidistant dipoles spaced a quarter wavelength and offset 30° to the azimuth. Each dipole has a length of half a wavelength. You can see the resulting general antenna appearance below. |
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5 | 3 | SCHNEIDER, Joris | p=. |
6 | 5 | SCHNEIDER, Joris | !{width:30%}DoubleCrossAntenna2.PNG! |
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8 | 2 | SCHNEIDER, Joris | h2. Dimensions |
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10 | 6 | SCHNEIDER, Joris | To specify the dimensions, we need to calculate the received wavelength. We calculated it for NOAA 19 (137.1MHz) and NOAA 18 (137.915MHz) to see if there is a noticeable difference on the needed dimension: |
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12 | 6 | SCHNEIDER, Joris | p=. |
13 | 7 | SCHNEIDER, Joris | !{width:30%}Wavelength.PNG! |
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15 | 6 | SCHNEIDER, Joris | Where: |
16 | 6 | SCHNEIDER, Joris | • λ is the wavelength (m) |
17 | 6 | SCHNEIDER, Joris | • c is the speed of the light (m/s) |
18 | 6 | SCHNEIDER, Joris | • f is the frequency of the received signal (Hz) |
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20 | 6 | SCHNEIDER, Joris | As the difference is very small, the antenna can be used for any NOAA satellite. |
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22 | 6 | SCHNEIDER, Joris | We can deduce the dipole length and the distance between the dipoles which is respectively half a wavelength and a quarter wavelength: |
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24 | 6 | SCHNEIDER, Joris | p=. |
25 | 7 | SCHNEIDER, Joris | !{width:30%}Length.PNG! |
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27 | 6 | SCHNEIDER, Joris | In compliance with these results we can model our antenna: |
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29 | 6 | SCHNEIDER, Joris | p=. |
30 | 8 | SCHNEIDER, Joris | !{width:70%}AntennaDesign.PNG! |
31 | 9 | SCHNEIDER, Joris | p=. |
32 | 9 | SCHNEIDER, Joris | !{width:70%}AntennaDesign2.PNG! |
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34 | 2 | SCHNEIDER, Joris | h2. Polarization |