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Physics · Ch 10 — Communication Systems

SPACE WAVE PROPAGATION

10.5.3

SPACE WAVE PROPAGATION

Space wave propagation is the mode used for sending and receiving an information signal directly through space at very high frequencies, above roughly 30 MHz -- these are called space waves, and because they travel in an essentially straight line from the transmitting antenna to the receiving antenna, this mode is also known as line-of-sight (LOS) communication. At these high frequencies, the transmitting and receiving towers must be built tall enough that the direct wave passing between them does not run into the curvature of the Earth, keeping attenuation and signal loss to a minimum; in addition to this direct wave, some signal energy can also reach the receiver only after reflecting off the ground along the way. Space-wave (line-of-sight) propagation underlies television telecast, satellite communication, and RADAR. It is also where microwaves -- very high-frequency signals in the super-high-frequency band -- are preferred over lower-frequency radio waves, because microwaves offer a larger usable bandwidth, higher achievable data rates, better directivity (a more tightly focused beam), a smaller required antenna size, and lower power consumption for the same coverage. The maximum straight-line range over which two antennas can communicate this way, the distance of coverage dd, depends purely on the antenna's height hh above the ground and the Earth's radius RR through d=2Rhd=\sqrt{2Rh}; when both a transmitting antenna of height …

Figure 10.6Distance of coverage

What this figure shows. A simple side-on diagram of a single transmitting antenna of height hh standing on the curved surface of the Earth, with a dashed line drawn from the top of the antenna tangent to the Earth's curved surface, marked with the distance dd -- the maximum straight-line (line-of-sight) distance from the base of the antenna to the point where that tangent line touches the Earth's curved horizon. This is the geometric picture behind the coverage-distance formula d=2Rhd=\sqrt{2Rh}, showing that a taller antenna pushes the horizon -- and therefore the maximum reception ran …

Misc Example 10.1Maximum line-of-sight distance between a 40 m transmitting antenna and a 30 m receiving antenna

Worked out. A transmitting antenna of height h1=40h_1=40 m and a receiving antenna of height h2=30h_2=30 m must be connected by line-of-sight communication, with the Earth's radius given as R=6.4×106R=6.4\times10^6 m; the task is to find the maximum distance between them. The total distance is the sum of each antenna's own individual coverage distance, d=d1+d2=2Rh1+2Rh2=2R(h1+h2)d=d_1+d_2=\sqrt{2Rh_1}+\sqrt{2Rh_2}=\sqrt{2R}\left(\sqrt{h_1}+\sqrt{h_2}\right). Substituting 2R=2×6.4×106=1.28×1072R=2\times6.4\times10^6=1.28\times10^7, so 2R≈3577.7\sqrt{2R}\approx3577.7, and 40+30≈6.32+5.48=11.80\sqrt{40}+\sqrt{30}\approx6.32+5.48=11.80, gives d≈3577.7×11.80≈42,217d\approx3577.7\times11.80\approx42{,}217 m =42.217=42.217 km. This shows how the maximum reliable range of a space-wave (line-of-sight) link is fixed purely by the geometry of the two antenna heights and the Earth's curvature, and grows only with the square root of each antenna's height, so doubling an ant …