WEBVTT

NOTE Dipoles and Verticals

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<v Narrator>Cutting to length.

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<v Narrator>L feet equals (468) divided by (f MHz ) (half minus wave dipole) The monopole figure is half the dipole figure, because a monopole is one half of a dipole with the ground plane supplying the other half.

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<v Narrator>Three worked answers the pool asks: Band, 20 m; Frequency, 14.250 MHz; Antenna, half-wave dipole; Length, 468 / 14.25 = 33 feet. Band, 80 m; Frequency, 3.550 MHz; Antenna, half-wave dipole; Length, 468 / 3.55 = 132 feet.

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<v Narrator>Band, 10 m; Frequency, 28.5 MHz; Antenna, quarter-wave monopole; Length, 234 / 28.5 = 8 feet. Why 468 and not 492, the true free-space half wavelength in feet?

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<v Narrator>Because a real wire has an end effect: capacitance at the ends makes it behave electrically longer than it is, so the physical cut comes out about 5% short.

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<v Narrator>Height, wire diameter, and nearby objects shift it further, which is why the number is a starting point. Cut long and trim. Patterns.

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<v Pool>Question. What is the radiation pattern of a dipole antenna in free space in a plane containing the conductor?

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<v Pool>Answer. It is a figure-eight at right angles to the antenna.

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<v Narrator>Maximum broadside, nulls off the ends. Which way you hang the wire decides who hears you: an east-west dipole favours north and south.

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<v Pool>Question. Which of the following best describes the radiation pattern of a quarter-wave ground-plane vertical antenna?

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<v Pool>Answer. Omnidirectional in azimuth.

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<v Narrator>Equal in all compass directions. That is a vertical's advantage and its limitation, no favoured direction to exploit, and no null to reject interference with. And the height effect, which surprises people:

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<v Pool>Question. How does antenna height affect the azimuthal radiation pattern of a horizontal dipole HF antenna at elevation angles higher than about 45 degrees?

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<v Pool>Answer. If the antenna is less than 1/2 wavelength high, the azimuthal pattern is almost omnidirectional.

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<v Narrator>A dipole close to ground loses its figure-eight. The ground reflection dominates, the pattern fills in, and the radiation goes mostly upward.

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<v Narrator>So a low dipole is both omnidirectional and a poor DX antenna, the two facts have the same cause, and the NVIS lesson in the propagation module is the case where you want exactly that. Feed point impedance.

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<v Narrator>Two questions that are mirror images and both worth understanding rather than memorising.

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<v Pool>Question. How does the feed point impedance of a horizontal 1/2 wave dipole antenna change as the antenna height is reduced to 1/10 wavelength above ground?

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<v Pool>Answer. It steadily decreases.

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<v Pool>Question. How does the feed point impedance of a 1/2 wave dipole change as the feed point is moved from the center toward the ends?

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<v Pool>Answer. It steadily increases.

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<v Narrator>The second follows from the current distribution. A half-wave dipole has maximum current at the centre and maximum voltage at the ends.

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<v Narrator>Impedance is voltage over current, so it is lowest at the centre, around 50 to 70 ohms, and rises toward the ends, reaching thousands of ohms.

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<v Narrator>That is why a dipole is fed at the centre and why an end-fed wire needs a very different matching arrangement. Verticals and radials.

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<v Narrator>A vertical needs something to work against, and getting that wrong is the most common vertical-antenna disappointment.

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<v Pool>Question. Where should the radial wires of a ground-mounted vertical antenna system be placed?

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<v Pool>Answer. On the surface or buried a few inches below the ground.

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<v Narrator>Not elevated, for a ground-mounted vertical, on or just under the surface, and as many as you can manage. Radial quantity matters more than radial length: sixteen short radials outperform four long ones.

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<v Pool>Question. Which of the following is a common way to adjust the feed point impedance of an elevated quarter-wave ground-plane vertical antenna to be approximately 50 ohms?

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<v Pool>Answer. Slope the radials downward.

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<v Narrator>A quarter-wave ground plane with horizontal radials feeds at roughly 30 ohms. Sloping the radials down raises it toward 50, matching coax directly.

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<v Narrator>This is why commercial ground planes have drooping radials, it is impedance matching, not mechanical convenience. Horizontal versus vertical.

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<v Pool>Question. Which of the following is an advantage of using a horizontally polarized as compared to a vertically polarized HF antenna?

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<v Pool>Answer. Lower ground losses.

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<v Narrator>A vertical drives current into the ground system, and soil is a mediocre conductor; those losses are unavoidable without an extensive radial field. A horizontal antenna at reasonable height couples to ground far less.

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<v Narrator>The trade-off: a vertical is omnidirectional, physically compact, and radiates at low angles even at modest height, which suits a small lot. The random wire warning.

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<v Pool>Question. What is a characteristic of a random-wire HF antenna connected directly to the transmitter?

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<v Pool>Answer. Station equipment may carry significant RF current.

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<v Narrator>An end-fed wire with no counterpoise uses your station, chassis, power leads, coax shields, mains earth, as the missing half of the antenna.

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<v Narrator>The consequences are real: RF in the audio, interference to everything nearby, RF burns from touching a microphone, and unpredictable tuning.

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<v Narrator>The fix is a proper counterpoise or an antenna designed to be end-fed with its own matching transformer. Not more tuner. Check yourself. What length dipole for 7.150 MHz? Your dipole is 20 feet up on 40 metres.

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<v Narrator>Which way does it favour? Your ground-mounted vertical works poorly. Radials elevated or on the ground?

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<v Narrator>468 / 7.15 = 65.5 feet, then trim. Nowhere in particular. Twenty feet is well under a half wavelength on 40 metres (66 feet), so the azimuthal pattern is almost omnidirectional, and most of the radiation goes up.

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<v Narrator>On the surface or a few inches below, and as many as you can manage. Count matters more than length.
