Physics · Ch 16 — Communication Systems
Sky waves
Sky waves
Sky Waves
For frequencies from roughly a few MHz up to about 30-40 MHz, long-distance communication becomes possible because radio waves can be reflected back down to earth by the ionosphere - this is sky-wave propagation, the mechanism used by short-wave broadcast services (see Figure 15.4, which shows rays launched from a ground tower being bent back to earth by the D, E, F1 and F2 layers, with waves reflected off higher layers landing farther away).
The ionosphere gets its name from the large density of ions (charged particles) it contains, and it extends from about 65 km to about 400 km above the earth's surface. This ionisation occurs because air molecules absorb ultraviolet and other high-energy radiation from the sun. Ionisation density is not uniform with height: close to the ground, molecular concentration is high but the ionising radiation has already been absorbed higher up, so ionisation stays low; at very great heights, radiation is intense but molecules are too sparse to ionise much, so ionisation is again low; the maximum ionisation occurs at some intermediate height (as tabulated in Table 15.3). …
| Name of the stratum (layer) | Approximate height over earth's surface | Exists during | Frequencies most affected |
|---|---|---|---|
| Troposphere | 10 km | Day and night | VHF (up to several GHz) |
| D (part of stratosphere) | 65-75 km | Day only | Reflects LF, absorbs MF and HF to some degree |
| E (part of Stratosphere) | 100 km | Day only | Helps surface waves, reflects HF |
| F1 (Part of Mesosphere) | 170-190 km | Daytime, merges with F2 at night | Partially absorbs HF waves yet allowing them to reach F2 |
What this figure shows. Line drawing showing a lattice radio tower standing on a grey curved 'Earth surface', broadcasting several curved wave-paths upward and to the right. Four roughly horizontal, parallel curved bands are labelled on the left margin, from bottom to top: D, E, F1, F2 (grouped under the heading 'Ionospheric Layers'). Multiple wave-ray paths (open curved arrows) leave the tower, arc upward, touch/reflect off different labelled layers, and bend back down toward the earth's surface at increasing distances, illustrating that waves reflected from higher layers travel farther befor …