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Propagation: let the wavelength decide

حدود 6 دقیقه

پرسش‌ها به همان زبانی می‌مانند که منتشر شده‌اند.

Propagation questions ask what happens between two antennas: how far a signal reaches, why it fades, what stops it, what sends it back. Nearly every one is settled by the wavelength and the size of what is in the way.

One wave, one speed, one ruler

A radio wave is an oscillating electric field with a magnetic field square to it, both square to the line of travel, and in free space every wave moves at the rate light does. So frequency and wavelength say one thing twice: wavelength in metres is about 300 divided by frequency in MHz. Amateur bands are therefore named by their length, not by channel number, and the velocity to know is 300 million metres per second, not miles per hour.

What the wave meetsWhat it does there
Fog and raindrops against a wave metres longPasses as though they were not there
Rain, snow and hail at microwaves; leaves and needles at UHFAbsorbed and scattered; loss grows with frequency and depth, and weak signals go first
Buildings, hillsides, vehiclesReflected strongly, with some energy bending past a sharp edge into the shadow behind
The lower atmosphereBent slightly downward, and trapped where warm air lies over cool, carrying VHF and UHF a few hundred miles
The ionised layers overheadFrequencies under the ceiling of the moment return to earth; the rest carry on into space

When one transmission reaches you by more than one route, the copies arrive out of step and either add or subtract. At VHF a wavelength is a metre or two, so shifting an antenna a few feet swings the strength sharply, a moving vehicle hears that pattern as a rapid flutter, and a data stream collects delayed copies that overlap the symbols behind, so the error rate climbs. The same holds along a whole path: copies returning from overhead drift in and out of step, and the fading is irregular.

Polarization is the plane the electric field lies in. Over a direct path both ends must share it: turning one antenna square to the other throws most of the signal away. Through the ionised layers the wave is rotated and reshaped and arrives with a foot in both planes, so either orientation recovers it. Those layers are ionised by the sun: they build through the day, decay after dark, and the highest frequency they return rises with solar activity: on an ordinary day it stays well below the top of the shortwave range, and only a strong sunspot cycle lifts it over 28 MHz and, at the peak, past 50 MHz. A patch of intense ionisation low in the layer, or the thin trail of a meteor, works the same way: the thinner the ionisation, the lower the frequency it can still return. Above the ceiling a signal leaves for space, so the higher bands stop at the horizon; the rest is the work of air and terrain.

Where the answers are lost

Try it yourself

سؤال 110

When using a directional antenna, how might your station be able to communicate with a distant repeater if buildings or obstructions are blocking the direct line of sight path?

  1. Change from vertical to horizontal polarization
  2. Try to find a path that reflects signals to the repeater
  3. Try the long path
  4. Increase the antenna SWR
سؤال 131

What is a characteristic of HF communication compared with communications on VHF and higher frequencies?

  1. HF antennas are generally smaller
  2. HF accommodates wider bandwidth signals
  3. Long-distance ionospheric propagation is far more common on HF
  4. There is less atmospheric interference (static) on HF
سؤال 136

What band is best suited for communicating via meteor scatter?

  1. 33 centimeters
  2. 6 meters
  3. 2 meters
  4. 70 centimeters
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Propagation: let the wavelength decide · Questena