Refreshed episodes/hosts/comments/series from hpr.sql, and added official HPR transcripts for the 180 episodes aired since the last sync (hpr4516-hpr4695).
116 lines
10 KiB
Plaintext
116 lines
10 KiB
Plaintext
Episode: 4685
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Title: Listening to SSB stations in the early 1980s
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Source: https://hub.hackerpublicradio.org/ccdn.php?filename=/eps/hpr4685/hpr4685.mp3
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Transcribed: 2026-07-31 16:16:45 (official HPR transcript)
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---
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This is Hacker Public Radio Episode 4685, for 2026-07-17
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Today's show is entitled, "Listening to SSB stations in the early 1980s"
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The host is Lennart Benschop and the duration is 00:15:12
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The flag is Clean, and the license is CC-BY-SA
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The summary is "Lennart tells how he could listen to SSB stations on shortwave on a radio without SSB capability."
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Listening to SSB stations in the early 1980s, I'm Leonard Benschop, I'm an embedded software engineer in the Netherlands.
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In 1980, I was 13 years old, and we had a grondic tube radio in the house that had a single shortwave range from 5.9 to 15.5 megahertz covering the 49 to
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19 meter broadcast bands. And between those broadcast bands, you could hear all strange noises like heavily
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distorted in intelligible speech, and number stations, and telek signals, and more signals of some
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short, and then you had this very crowded islands, the shortwave broadcast bands that were
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completely filled to the brim with signals. You couldn't have enough selectivity on a shortwave radio.
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There were so many signals on the band. The 49 meter band in particular had a signal on every
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multiple of 5 kilohertz, wherever you tuned. Whatever time of the day it was, 24-7, this band was
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overcrowded. In 1980, they legalized CB radio in the Netherlands, and then I had a desire to own a radio
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on which I could listen to those stations. I didn't need to have a transmitter for it, but I wanted
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to be able to receive those things. And in 1981, I got the opportunity to buy a transistor radio
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with 5 bands, made in 4 shortwave bands, covering the entire range from 1.6 to 30 megahertz. I think
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the brand name was Silver. The radio had a fine tuning knob, which was very convenient. It was
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all analog. It had an LED signal strank meter, which I think 5 LEDs to indicate. Signal strank
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in a bar graph. It wasn't selective enough for shortwave broadcasting, but then you couldn't be
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selective enough at that time. It didn't have a way to receive SSB. I could tune to the CB radio,
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CB radio in the Netherlands was in FM, narrow band FM. The radio could only receive AM mode signals,
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but if you off tuned a bit, you could still hear the signal. It wasn't as good as a proper FM detector,
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but you could hear quite a few of those stations anyway. And then, of course, I had more broadcast bands.
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16 meter band could be heard with radio South Africa on it. It was one of the few Dutch language
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international stations outside of the Netherlands itself. Really nice to hear that from so far away.
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That nothing to do with the apartheid regime in South Africa itself. That wasn't important.
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The content of the program wasn't important, but you could hear a Dutch language stuff from
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that long distance. And that was great. Then I wanted to hear radio emitters
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and also marine traffic, like a scavening radio, marine telephony. And all these things were in SSB.
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And they invented SSB as a way to save bandwidth and transmit a power. If you have an AM transmitter
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and you look at the transmitted spectrum, it has two side bands, an upper N lower side band,
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both contain the same modulation information. And then it has in between them carrier frequency,
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with lots of signal power concentrated at carrier frequency. The carrier frequency itself contains
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no information. You need it to demodulate the signal, but you don't convey information with it.
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What were the professional users related radio emitters doing? They filtered out one of the
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side band that saved a lot of bandwidth and they filtered out or just
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constructed their modulator in such a way that the carrier signal wasn't transmitted. But what was
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left contained one side band, all the information you need, but you couldn't demodulate it
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without reconstructing the carrier frequency signal. And that was exactly what the proper SSB
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receivers do. They reconstruct the carrier frequency with internal oscillator. But my radio didn't
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I could have bought a different radio that had a BFO. The internal oscillator was called BFO
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for Marscoat and SSB signals. But my radio didn't have one. Some radios were on the market,
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way above my budget, like the Kenwood R1000, the JZFRG 7700. That was even a Sony portable radio,
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the ICF 2001, that looks very nice in brochures. It got good reviews. It covered all the way from 150
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kilohertz longwaves to 30 megahertz and then FM from 76 to 108 megahertz, very desirable radio.
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But maybe if I had one at that time, I wouldn't have liked it because it had no tuning knob.
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I had that scale of precisely tuning in an analog dial, pushing buttons and then
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there was muting all over the place while tuning. And I needed to hear the signal while you were
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tuning. That was our radio was supposed to work. It's it's a bit like you don't put the blind
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fold on if you start walking. You want to see what's going on while you're walking. And it's
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like the same. You want to hear what's going on while you're tuning your radio. So muting is a very
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deaf idea, but still many of those digital portable radios with the up and down push buttons
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have excessive muting while tuning. That's not nice and nothing feels like a real tuning knob.
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The one on our two radio even had a flywheel behind it. That feeling despite this being way too
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white frequency range. My own new transistor radio wasn't much better in that respect. It also
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had frequency bands of 10 megahertz wide, but you had true analog tuning and that was important.
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But I didn't have a BFO in my radio. If I was better at soldering, I could have
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constructed one to build into my radio. But there was another trick. And all radios essentially
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that are made and factored commercially between the 1930s and early 2000s are super hetero-dine
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receivers. They have a local oscillator that mixes the incoming signal with the oscillator and
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then it produces the difference and some frequencies difference frequency. That's the one we
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want to have. That's fed into a selective single frequency filter. The IF, the intermediate frequency,
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and then you have a fixed bandwidth, selective filter and amplifier and detector. And that's how
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the radios work. So if you tune a radio medium-wave radio to one megahertz, one thousand kilohertz
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and you tune the local oscillator to around 1450 to 1417 megahertz. The IF, the intermediate frequency,
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is roughly in the range for 50 for 70 kilohertz. You tune the local oscillator to that frequency.
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If you put a radio nearby, you tune one radio to one thousand kilohertz and another radio to
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something around 1450 to 1470 kilohertz, you were here the signal of the local oscillator.
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And if there's station in that range, you can hear that local oscillator interfere with that station.
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And I thought, well, if that happens, couldn't you use that signal to as a stand-in for the
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carrier frequency? Yes, something like a BFO. And I wanted to hear the marine band, the lower part of
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it between say 1800 and 2000 kilohertz and an ordinary medium-wave radio had its local oscillator
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all the way up to 2050 kilohertz. So it could cover that range. And indeed, I could tune
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to say 1850 kilohertz on my portable radio, tune a different radio to 450 kilohertz lower. And
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low in the old, I could hear that interfering signal from the local oscillator. And I could tune it
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to the missing carrier frequency and make intelligible speech out of that as a B signal.
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Great. And if I used a tube radio as the second radio, the second harmonic of the local oscillator,
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would tune to over 4 min. And then I could cover the 18 meter emitter band, the 18 meter emitter band
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was a very desirable band for me to hear. It had some Dutch language stations in it. You had the
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veron station every week in the 18 meter band in SSB, PI4AA, and Papa India for alpha, and it had
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a bulletin and I wanted to hear that. And I could hear that. Great. And then, if I had not a radio
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with short-wave range, I could use it as a BFO for the 14 meter hand band around 7
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megahertz and the 20 meter hand band around 14 megahertz. And that worked kind of.
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Was a bit finicky and you had to vary the distance between the two radios to make the BFO signal,
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the local oscillator signal just strongly enough that it makes properly with the signal you want
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to receive. But that was doable. Until 1985, I didn't have anything else to hear as its base
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stations on. In 1985, I got a communication receiver on non and R107. I had that radio for. I think about
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a year or so alone. It's tuned from 1.2 to 18 megahertz in three bands. It was stone death
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of 10 megahertz, so I couldn't hear the 20 meter emitter band on it, but 80 meter was great. Never had
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such good 80 meter reception ever since. I only had an indoor antenna, but I had a ground connection
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and the wires were laid out optimally for the 80 meter band. And yes, that was a great experience
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to hear emitors in that band. Of course, in those days you had number stations, you had the
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Russian wood packer that was an over the horizon radar that obliterated complete sections
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of the shortwave spectrum. It was a Russian over the horizon radar. Everybody hated that one,
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but you had to live with it. That trick, though I kind of discovered it myself, was kind of well-known
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in the time. I read about it several times. It was especially widely used in countries where
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SSB capable receivers were restricted or were like Middle East countries, or where they weren't
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simply available to consumers, like the Soviet Union. It wasn't prohibited by law, but nothing
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wasn't sale to mere consumers, emitors were supposed to build their own equipment. And
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using two radios meant you didn't have to modify your existing radio, you didn't have any
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illegal equipment in your house, and in some countries that made the difference.
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This is all I want to tell for today. I hope to speak to you next episode.
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You have been listening to the Hacker Public Radio podcast, at hackerpublicradio.org.
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Today's show was contributed by a HPR listener like yourself.
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If you ever thought of recording a podcast, then visit the HPR site to find out how easy it really is.
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Hosting for HPR has been kindly provided by anhonesthost.com, the Internet Archive, rsync.net, and the HPR Community Content Delivery Network.
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Unless otherwise stated, today's show is released under a Creative Commons Attribution-ShareAlike 4.0 International (CC BY-SA 4.0) license.
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