TopPodcast.com
Menu
  • Home
  • Top Charts
  • Top Networks
  • Top Apps
  • Top Independents
  • Top Podfluencers
  • Top Picks
    • Top Business Podcasts
    • Top True Crime Podcasts
    • Top Finance Podcasts
    • Top Comedy Podcasts
    • Top Music Podcasts
    • Top Womens Podcasts
    • Top Kids Podcasts
    • Top Sports Podcasts
    • Top News Podcasts
    • Top Tech Podcasts
    • Top Crypto Podcasts
    • Top Entrepreneurial Podcasts
    • Top Fantasy Sports Podcasts
    • Top Political Podcasts
    • Top Science Podcasts
    • Top Self Help Podcasts
    • Top Sports Betting Podcasts
    • Top Stocks Podcasts
  • Podcast News
  • About Us
  • Podcast Advertising
  • Contact
Not in our directory?
Add Show Here
Podcast Equipment
Center

toppodcastlogoOur TOPPODCAST Picks

  • Comedy
  • Crypto
  • Sports
  • News
  • Politics
  • True Crime
  • Business
  • Finance

Follow Us

toppodcastlogoStay Connected

    View Top 200 Chart
    Back to Rankings Page
    Hobbies

    Foundations of Amateur Radio

    Starting in the wonderful hobby of Amateur or HAM Radio can be daunting and challenging but can be very rewarding. Every week I look at a different aspect of the hobby, how you might fit in and get the very best from the 1000 hobbies that Amateur Radio represents. Note that this podcast started in 2011 as “What use is an F-call?“.

    Advertise

    Copyright: ℗ & © 2015 - 2020 Onno Benschop

    • Apple Podcasts
    • Google Play
    • Spotify

    Latest Episodes:
    eBook Volume 1 Dec 13, 2017
    Show notes

    Foundations of Amateur Radio is now available as an eBook. Six years in the making, after much prodding from fellow amateurs, the edited transcripts of this podcast are now available as a series of eBook volumes. Covering our amazing hobby with short discussions about hundreds of different topics.

    In Volume 1 - Join the hobby - follow my initial journey through the community, what to buy when you start, how to participate in the community, things to practice, what the first steps look like once you have a license, playing in radio contests, encouragement and sharing.

    Search for my callsign - VK6FLAB - on your local Amazon store to have a Look inside.

    Amateur radio is a thousand hobbies rolled into one. I hope you find your way.

    I'm Onno VK6FLAB


    60 years of amateur radio Dec 10, 2017
    Show notes

    Foundations of Amateur Radio

    This morning I spoke with two amateurs on-air. Not that surprising, since I was hosting a weekly net called F-troop for new and returning amateurs. Both amateurs came on-air for the first time in our net, one licensed sixty years ago, the other six days ago.

    It didn't strike me until long after the net had finished that these two amateurs have a completely different experience in this shared community. One started in a world where megacycles were common, the other knows them as megahertz, one purchased their radio in parts, the other purchased it online, one heard Donald Duck sounds and needed to read about a new mode called Single Side Band, the other is going to be reading about digital modes and how they work, one was dealing with analogue television interference, the other is dealing with plasma screens.

    Both these operators share many things. They are both licensed radio amateurs, both have the opportunity to participate in contests, attain their DXCC, pull out a soldering iron, participate in social activities and become members of their local radio club.

    If during their first year as an amateur both of them read Amateur Radio magazine, the members' periodical published by the Wireless Institute of Australia, they'd both find the rules and the results of the Rememberence Day contest, field days, letters to the editor, instructions on how to build antennas, including detailed instructions on building a 2m Yagi, information from the QSL manager, DX activity reports, the new Australian call book and information about the local news broadcast which continues to go to air on Sunday morning at 9:30am local time.

    In the intervening sixty years amateur radio has changed a lot, but it's also stayed the same. A radio from 1957 will still be able to communicate with a radio from 2017. Imagine that for a moment. Electronics during those sixty years saw countless dramatic changes. For example, Fairchild Semiconducter one of the pioneers in the manufacturing of transistors and integrated circuits was founded in 1957.

    Imagine that, the introduction and obsolesence of transistors within those sixty years. The first integrated circuit build by Jack Kilby in 1958 was a phase shift oscillator, consisting of one transistor and a handfull of capacitors and resistors. Today an integrated circuit contains 25 million transistors per square millimeter with some chips being up to 600 square millimeter in size, that's 15 billion transistors.

    The mind boggles what has happened in those sixty years, but the most satisfying part of all this is that both these amateurs can come on-air, join a net and participate in the hobby today.

    If that's not the representation of an amazing hobby, then I don't know what is. Thank you to Sandy VK6FBHW and Brian VK6DAD.

    I'm Onno VK6FLAB.


    Leave judgement outside the shack ... Dec 03, 2017
    Show notes

    Foundations of Amateur Radio

    Today I'm here to tell you that I'm in the process of writing a book, actually seven of them, and to be precise, there's more of editing than writing, since I'm putting together all of my podcast efforts over the past seven years. Nice how that works out, seven years, seven books.

    Most of the effort is in proof-reading my work. Do I spell radio amateur with capital letters, or not, do I use my word-processor to replace all occurrences of radio amateur without capital letters and what happens when I refer to them as radio amateurs instead? You get the drift, lots of minutia, consistency and every now and then a little edit to make a sentence make sense to a reader. As an aside, if I don't get distracted by life I'm planning to publish in the next week.

    The unexpected joy I'm getting from this experience is to read about my adventures and to remember some of the adventures that you have told me about, things I've been working on, events that you and I attended, contests, victories and frustration.

    One thing I've noticed, something that you're likely to observe once in a while by accident, is the immense variety of activities that encompass this wonderful hobby.

    There are build projects, activations, social outings, research activities, laughter, joy, disgruntlement, dissatisfaction and triumphs. I've said many times that this hobby of ours is 1000 hobbies in one and reading back, I suspect that 1000 is underselling the experience.

    Going back also shows that learning Morse code has been on the books for a long time and clearly I'm stumbling on some roadblocks there. My DXCC adventures continue to grow one contact at a time, my mobile setup is working well compared to other methods of activating my station and new adventures appear just around the corner waiting to be discovered.

    I'm in the middle of my next adventure. Adding crystal filters to my radio, installing a temperature compensated crystal oscillator, finding out about the drift and frequency accuracy, all these are part of a much larger project. The next step is finding a suitable antenna. I'm still on the fence between building and buying. It's a joint decision with a fellow F-call, and we're working through this adventure together to see where it might lead.

    Our skill-set is completely different, with different perspectives on the same thing, different tools we bring to bear on the challenge we've set ourselves and that in and of itself is a fun experience to have. We've spent some time together talking about the landscape we're stepping into and I think it's safe to say that we can both learn a lifetime of knowledge from the other person, if our life outside amateur radio doesn't intrude - hi hi.

    The point of this observation is that I've noticed over the years that there are amateurs who leave the hobby, never to return. Some would say: "Good riddance!", but I think that given the infinite breadth of this hobby and community, each of those people leaving makes for a poorer experience for them, and also for us.

    I'll be the first to admit that I have disagreements with fellow amateurs, sometimes very strong disagreements. I know that this is true among other amateurs as well. This is not particularly unusual in a technical pursuit like our hobby, I see it in my professional life in computing as well.

    The thing that should set us up for a better experience is that we're all about communication in this hobby, but there are times when I wonder if we just pay lip-service to that notion, rather than attempt to be tolerant, inclusive and welcoming. Perhaps it would be wise to add another thing that should be left out of the ham shack, together with talk about religion and politics, perhaps we should leave judgement at the door as well.

    I think it would be a good idea to learn how to do that, perhaps bite our tongues a little more, take a breath, ask the other what they're thinking, rather than rant back and forth between two individuals who can't stand the sound of the other person's voice.

    I note that I took a little detour there, but I think it's important to note that this hobby isn't all cookies and cream, that there is discussion, argument and dissent. I think that we are in a unique position to do something about it.

    As for my adventures, they always seem to just be beginning. There's always something new to discover, something new to build, to do, to experience. I've said it before and I'll say it again: "Amateur radio, what a hobby. Tell your friends."

    I'm Onno VK6FLAB


    How can you measure what frequency your radio is on? Nov 26, 2017
    Show notes

    Foundations of Amateur Radio

    The frequency you listen and transmit on in a modern radio is derived from a crystal master oscillator, in my case 22.625 MHz. That master frequency is multiplied and divided to determine the final frequency. To get to 2m you need to multiply by 6. To get to 70cm, multiply by 20. Similarly, to get to 40m, divide by 3.

    Any slight variation of crystal frequency has an impact. 100 Hz variation in the master oscillator causes the radio to be off by 600 Hz in 2m, or 2000 Hz in 70cm. The higher you go the bigger the error.

    This leaves us with two problems. If the crystal changes frequency over time, your radio wanders with that change which is especially noticeable on the higher frequencies. I've previously discussed how you can deal with the variation by correcting for temperature.

    The other problem is the actual absolute frequency. If the radio is set-up for a crystal with one frequency and you replace the crystal with a different one, how do you know what frequency you're actually on? Your dial says one thing, but is that the actual frequency? How do you measure any difference?

    Is a new radio the same as an old radio, does the frequency change over time?

    Measurement is the act of comparing two things. Think of a ruler, wooden stick with markings on it. If the lines on the stick are not drawn in the right place, anything you measure with that stick will not match other sticks. That won't matter if you only ever use your stick to build everything, but typically you use parts supplied by someone else with their own measuring stick.

    In your radio the same is true. What the actual frequency is doesn't matter until you need to compare it to the frequency of someone else. Like say, another radio station.

    The first thing we need is something to compare with, a reference frequency. As it happens there are several of those around. As an example, you'll find reference broadcasts on 5 MHz, on 10 MHz, 15 MHz and 20 MHz. There are countless other frequencies where you'll find radio time signal stations. These stations broadcast on a steady frequency with a defined signal that you can use to do measurements against, even your local broadcast stations have a carrier that you can get started with.

    A typical radio time signal will be an AM station with all manner of information encoded on the transmission. You can tune your radio to the station and hear a talking clock, second marks etc. Unless your radio is seriously out of whack you're unlikely to be able to notice any frequency errors.

    If you tune to the same station with side-band you'll hear some artefacts, but essentially you'll hear nothing. However, if you tune slightly off frequency, you'll hear a tone. This tone is the central carrier frequency and it's very accurate.

    At this point you can do many things. I'll cover one of them.

    I'll explain this with 10 MHz.

    If you set your radio to Upper Side Band and tune to 9.999 MHz on your radio, you should hear a 1 kHz tone. Similarly if you set your radio to Lower Side Band and tune to 10.001 MHz you'll also hear a 1 kHz tone.

    In essence you're listening to the carrier as a 1 kHz audio tone.

    You can swap between the two frequencies, by setting one on VFO-A and the other on VFO-B and switching between them with the A/B switch on your radio. If the tone changes, your radio is off frequency. How much off frequency is determined by the difference between the two tones. By lowering both frequencies by the same amount, or raising both by the same amount, one of the tones will go up while the other one goes down and vice versa. Once you've got both the tones the same, write down both frequencies. Split the difference and you'll know what frequency your radio thinks 10 MHz is on.

    You'll need a radio with both Upper and Lower Side-Band and the ability to switch between two frequencies and before you get started, you need to make sure that your radio doesn't have any frequency changing stuff turned on, RIT, Clarifier, Offset, whatever it's called on your radio. All of them need to be off.

    There are countless other ways of doing this, a procedure called zero-beating with a signal strength meter, using a tone and listening for a wobble in the sound, using an external second receiver and zero beating against that, using a computer to generate tones, using the FMT software included with the WSPR software and likely many more.

    The point of all of these processes is to detect a difference where there shouldn't be one.

    One final comment.

    The most accurate process at this time without specialist measuring equipment is by using your WSPR enabled computer and the FMT software that's included. I'll look at that next time if I can understand what Joe K1JT wrote on the subject.

    Happy measuring!

    I'm Onno VK6FLAB


    How does a Temperature Compensated Crystal Oscillator work? Nov 19, 2017
    Show notes

    Foundations of Amateur Radio

    You know when you walk down the street and you lift your foot and all of a sudden you realise that you stepped in something and now it's stuck to your shoe?

    I had that feeling during the week.

    Last week I mentioned that I had purchased a TCXO, a Temperature Controlled External Oscillator. Lowell NE4EB set me straight by pointing out that XO stood for crystal and that TCXO stood for Temperature Compensated Crystal Oscillator, which then lead me on a merry goose-chase trying to learn about all that.

    I mention this because while the stickiness on my shoe kept me busy, it also highlighted that I'm still a babe in the woods on a steep learning curve to knowledge with some roadblocks, diversions and potholes along the way.

    That reminds me, if you ever feel the urge to pull me up on something I've said, you can email me via my callsign at gmail.com.

    So, how does this Temperature Compensated Crystal Oscillator actually work?

    Without getting into the circuitry behind the scenes, as I mentioned previously, a crystal oscillates and the frequency is dependent on temperature. Turns out this is a predictable curve, which makes it possible to account for changes in temperature.

    In addition to keeping the temperature stable, another way to keep the frequency of a crystal stable is to have an electrical circuit that changes depending on temperature and have that create something like an opposing curve, so you can add the two together and end up with a pretty stable frequency. Before you start asking how exactly, let me just remind you of the shoe with the stickiness on it.

    In essence you have something like a resistor that changes resistance depending on temperature, it's a component called a thermistor, and that in turn affects a resonant circuit, also known as an Electronic Oscillator, or LC circuit, which in turn affects the circuit that is driving the crystal. These days most if not all of that is on a chip and you get a neat little package that you can plug into your radio to give it frequency stability and hopefully accuracy.

    I did say I was going to talk about accuracy this week, but the doo-doo I stepped in put a swift halt to that. Besides, now I know that there is a thing called a thermistor, the second portmanteau I ever learned, together with Gerrymander, so there's that - oh, also, Tanzania, Eurasia and Oxbridge.

    Back to Amateur Radio. The oven controlled crystal I mentioned last week, they exist in high-end measuring gear, not in the $26 TCXO I have installed in my radio. While I'm on the subject, you can also compensate for temperature with software, using either a purpose built micro-processor, or even the host processor that is using the crystal, but that gets into magic self-referencing voodoo pretty quickly.

    And while I've been playing, Japan is finally being received here and I heard a station 18656km away during the week. Mind you, AA3GZ in Doylestown, Pensylvania, on the Atlantic Ocean side of the United States was putting out 100 Watts, so there's that.

    I'll leave you with a thought that I hope to be able to answer next week.

    If your radio has a crystal that determines what frequency it's tuned to, how do you use that to determine the accuracy of the frequency, more self-references, just because I can and besides, I'm a software developer and recursion is part of my make-up.

    I'll give you a hint, it's not all to do with MHz.

    I'm Onno VK6FLAB.


    What did you hear last week? Nov 12, 2017
    Show notes

    Foundations of Amateur Radio

    Last week I spent a little time talking about the Weak Signal Propagation Reporters network, or WSPR, pronounced Whisper. You might remember that I set up my radio to receive these signals to see what I could learn. Turns out, I learnt quite a bit.

    I left the software running for a week. During that time my station reported 456 signals received with a total of 54 stations in 27 call areas.

    The longest distance 14,000 km, PC1JB in Veenendaal in the Netherlands who was using 1 watt.

    The best performance based on km per watt is R0AGL in Siberia, 10,000 km, with 2 milliwatt.

    Highest power heard, one station with 100 watts, but from a performance perspective, only just squeaks into the top 10 contacts. Typically stations used 5 watt or less.

    My 10m quarter-wave vertical antenna was pretty good in hearing things across all bands. I heard stations across the frequency range, from 160m through to 10m.

    It heard 1 station on 160m, VK7MF, using 5 watts, 3,000km away.

    The most prolific band was 40m, accounting for 41% of the signals, 30m was pretty close at 35% and even 10m was respectable with 5% of signals heard on that band. Which brings me to a comment about propagation. The Solar Flux Index this week was pretty abysmal. It's been the lowest it's ever been, 66 and still I was able to hear signals across all HF bands.

    Just think about that for a moment.

    All the solar numbers say the bands are dead, all the listening in the world says the bands are dead, but using WSPR reveals that this isn't true, it's not even close to being true.

    My station in a very high noise environment still heard signals across all bands.

    Based on a visual comparison with other stations, signals were generated in all directions, but for my station, I didn't hear anything coming from the North East Quadrant, that's between North and East. It could be that the signals are being suppressed by the distortion in my antenna pattern, which might be caused by a metal gutter in that direction, or it might be that signals coming from that direction, mainly Japan and the United States, are too weak to be heard above the noise level at my station. I'm investigating that further, but that's for another day.

    Speaking of other stations, in total during the same period as my station listening, there was a total of 6.9 million reports, representing 2490 listeners and 4463 transmitters. That means that I heard just over 1% of stations on my radio. Not bad given my meagre set-up and minimal configuration and installation.

    On to things that I was attempting to learn about the performance of my radio. Every WSPR transmission includes the frequency and location information, which allows you to determine what the difference is between what frequency the other station reports and what frequency your radio sees.

    Of course, there can be variation across both radios and to make things more interesting, this changes over time. This drift is likely to be distributed pretty evenly across all stations, but then I didn't hear all of them, so my results are not completely definitive, but overall the drift reports show a frequency drift of minus 3 to plus 2 Hertz. Slightly skewed down. That's not yet conclusive proof that my station is slightly off frequency, but it seems to indicate that my new crystal is slightly low. I'll be investigating that further.

    And that neatly brings me to why I have been doing this.

    You might not be surprised to learn that many things inside your radio are frequency controlled. Those frequencies come from a single central location, a master oscillator that in my radio vibrates at 22.625000 MHz. The crystal that does this is affected by temperature. When you transmit, the radio heats up and the frequency of the crystal changes slightly. Normally this isn't an issue, but if you're working on being on a particular frequency, especially on the 2m or 70cm band, then this starts to matter. If you leave your radio running for a few hours, things are likely to be more stable, since the temperature in your radio becomes more stable.

    Another way to do this is to control the crystal temperature directly. You can insulate it, or heat it in a little oven, or a combination of both. This is a so-called Temperature Controlled External Oscillator, a TCXO. It's more stable and thus over time the frequency shouldn't change much.

    In my case, the range is 5 Hertz and as I said, it's slightly skewed down.

    The next step is to measure the actual frequency that my radio is tuned to. This will require a little more effort. I'll talk about that next week.

    In the mean time, I'm doing some more analytics to compare how my noise-floor affects my station, how it compares to other stations across the same time-range and how little changes in volume, antenna and the like affect what results I get.

    There is lots of data to digest, lots of knowledge buried among the stats and I'll be spending the coming weeks seeing if there are things here of a wider interest.

    One thing's for sure, this is the simplest way you can measure and compare your station against a whole globe of other stations. Of course it doesn't actually get you on air to make noise, and that is the ultimate test of the success of a station.

    I'm Onno VK6FLAB


    Hearing very weak signals Nov 05, 2017
    Show notes

    Foundations of Amateur Radio

    This week I'm going to talk about a Digital Mode you can use with any Amateur License, or even without an Amateur License. You can set-up your radio, hook it to a computer and the Internet and after installing some software, you can join the Weak Signal Propagation Reporters.

    So how do you start, what does it do and how can it help you?

    First of all, WSPR, pronounced Whisper, is a way of encoding information and transmitting it across the spectrum. At the other end a radio receives that signal, sends it to a computer where a piece of software attempts to decode and then log it.

    This Digital Mode, invented by Joe K1JT, is one of several modes that are gaining popularity across the Amateur Radio community because the beauty of this mode is that it's so unobtrusive that you're unlikely to actually hear it if you were to tune to a dedicated WSPR frequency.

    If you want to find out what your station can hear, you can set yourself up as a dedicated receive-only station and report your findings to a central database where others can share your information and learn what propagation is like at that particular point in time.

    Of course, it also means that you can use the same information to learn what propagation looks like in your neck of the woods with your radio and your antenna set-up.

    There's even an option that allows you to have your radio automatically change frequency - known as band hopping - and listen for WSPR signals across the bands that you allocate.

    If you like, you can go to the wsprnet.org website right now and do a search for my callsign, VK6FLAB and see what stations I've heard since I turned it on. Go on, have a look, I won't mind.

    My station is set-up to do band hopping across all HF frequencies all day and night and during the grey-line it only listens to 80m, 40m, 15m and 10m, since those are the frequencies my license allows me to transmit on and I'm particularly interested how they work at sun-rise and sun-set.

    You might have heard me before talking about how the noise at my home is atrocious. Nothing has changed, it's still abysmal, but WSPR signals are coming in and being decoded.

    If you want to do this, you'll need a radio - any radio will work, a computer with a microphone socket and a way to pipe the audio from the radio into the computer, I'm using a 3.5mm male plug to 3.5mm male plug - you don't need a fancy audio interface, you're only listening. If you can connect an interface cable, your computer can also change frequency for you, but that's not needed to get started.

    Make sure that you turn the volume right down before you plug anything in. Connecting a headphone output directly into a microphone input can blow up the port if you're not careful and WSPR doesn't need much in the way of volume. The software helps you get it set right, so read the manual before you start.

    Once you've set-up your radio and your computer, you can watch the signals coming in on a waterfall display, a graphical representation of the audio and frequency that shows strong signals in red and no signal as blue. You'll find that turning up the volume too high will actually reduce the ability to hear signals.

    I'm keen to learn what I can hear and how many stations my simple 10m vertical antenna can hear across the Amateur Radio spectrum.

    I'd love to hear your weak signal stories and see what you can hear. As I said, it seems I'm becoming a short-wave listener after-all.

    I'm Onno VK6FLAB


    Radio signals don't travel in straight lines Oct 29, 2017
    Show notes

    Foundations of Amateur Radio

    The other day a friend of mine asked a really silly question.

    How come when I point my YAGI at a direction for a station using the great circle, the signal is there but weak, but when I point it in a different direction, say 20 degrees away from the great circle, the signal improves?

    Being a good little Amateur, I responded with the logical explanation.

    Well, two things come to mind, one being that you're not pointing where you think you're pointing, that is, North on your antenna isn't North in reality, so when you point at the other station, it's not actually where you're pointing, and when you adjust, the antenna ends up in the correct direction.

    Another explanation I came up with is that the pattern of their YAGI isn't what they expect. There might be local factors that influence the pattern, putting weird distortions into their foot-print and making for "interesting" nulls where there should be signal, and vice-versa.

    That in turn started a whole conversation about directions and where stations are.

    Leaving aside the difference between long-path and short-path, which I should probably talk about at some point, an antenna should get signal from the direction in which you point it, right?

    So, what if I told you that the antenna was in fact pointing correctly and there were no distortions in the antenna pattern, what then?

    Turns out that the Ionosphere isn't uniform - who'd have predicted that - in case you're wondering, that's a joke - the Ionosphere isn't uniform, it takes in many and varied influences, from the earth's magnetic field, to heating by the sun, to solar storms, coronal mass ejections, and any number of factors that we as a species are only just beginning to discover.

    If you imagine for a moment a radio-wave coming up from your antenna, bouncing against the Ionosphere, back to earth, then bouncing back up, then doing the same thing again, you'll quickly understand that because the Ionosphere is variable, the height and angles at which this bouncing is occurring varies along the path.

    But here's a shocker, who said that the signal had to bounce up and down vertically, what if the same variability of the Ionosphe height caused a signal to bounce in some other weird direction, like at an angle, or side-ways. Would the path of the signal from your station to the other end follow a great circle line?

    Turns out that this silly question wasn't silly at all and I learned something unexpected, my radio signal isn't a straight line, something which I confess, did come as a surprise, but now, looking back, seems pretty obvious.

    I love silly questions, they often turn into an opportunity to learn.

    I'm Onno VK6FLAB


    What to pack for a Contest? Oct 22, 2017
    Show notes

    Foundations of Amateur Radio

    In the past I've talked about what kind of station I have, how I tend to operate and what kind of tools I use in my day-to-day running of an Amateur Radio station. This week I want to take a closer look at what I do when I participate in a contest.

    I remember fondly the first contest I ever set-up for, fondly as-in, "What was I thinking?"

    Let me set the scene.

    I'd previously been to a few stations that were participating in a contest. Some of those were in a club-shack, others were set-up portable in the field. For my first contest I was going to set-up my station in the field, so I needed to bring everything myself. Fortunately I was with friends, one with a camper-trailer, so I didn't need to bring a roof, or the kitchen sink, but I did bring pretty much everything else.

    My list included tables, chairs, antennas, radios, headphones, connectors, soldering iron, power-boards, extension cables, logbooks for paper logging, pens, clipboards, two computers, four spare batteries, power supplies. It took hours of preparation, packing and not to forget, lugging, and when the contest was all done and dusted I noticed that while I brought everything, I didn't bring the right things and some things were missing.

    For example, the little connector cable between the front face of my radio and the back of my radio was not packed, so I could only work with a long cable, which was subject to interference which I couldn't fix because I didn't have any ferrites. Other missing tools were a multi-meter, an antenna analyser and a dummy load, to name just the ones that come to mind today.

    A wise man once told me that the more you camp, the less you bring.

    Combined with my first contesting experience, that's become my motto.

    Bring Less.

    So last week, I packed much less and much more precise. My total packing list was:

    A radio and a tuner, wire for wire antennas, crimp connectors and a crimper, a multi-meter and antenna analyser, a dummy load, barrel connectors and adapters from N to PL259, BNC and the like. A computer for logging and a CAT cable, a headset, a foot pedal, a notebook and pen.

    That's it - other than a toothbrush and a sleeping bag and warm clothes.

    As it was, my foot pedal didn't work, because there was a fault in the adapter cable and I've added fixing that to my list of to-do items. Which brings me to the next thing I learned.

    It doesn't matter what you start with on your first contest. What matters is that you track it and then after the contest try to spend some time figuring out what worked and what didn't. If you update your list then over time it will become better and targeted to your specific circumstances.

    When I do a contest mobile from my car, my packing list is similar, but not the same. I've not yet got it down to a fine art, but I'm getting better. One day I'll have the perfect kit, but then something unexpected is likely to happen and the perfect kit will change, again.

    What is currently in your contesting list, what do you bring and what do you leave at home? What adventures did you have with your latest contest and what lessons could you share with others?

    I'm Onno VK6FLAB


    Ladder Line is not Evil Oct 15, 2017
    Show notes

    Foundations of Amateur Radio

    The way we connect our antenna to our radio depends on a number of different factors. If you've come through the ranks recently, like I have, it's probable that you've only ever considered using COAXIAL cable. It's a single conductor, surrounded by some type of insulator, which in turn is surrounded by a conductive shield, which is protected by another layer.

    There are variations where the shield has multiple layers, including layers of foil and braid, so-called quad-shield COAX, and there are variants that have several cores, sometimes two sets of COAX connected side-by-side and so on.

    In many ways, COAX is an invention of convenience, which has several compromises as a result, loss over distance, termination issues, twisting and deformation and others. It's compact, less susceptible to external interference, it's relatively easy to route to its destination and if you treat it well, it's easy to carry around, but it's not the only way you can feed an antenna.

    You may have come across the term Ladder Line or Twin-lead, or Twin-feed line. You may also have heard horror stories associated with this "ancient" - well at least in Amateur Radio Terms - technology. Essentially, Ladder Line is two conductors, side-by-side, evenly separated by spacers. It's in use all over the place. If you look up at your power-lines in the street, or the high-voltage lines on top of towers, you'll notice that those are essentially Ladder Line.

    You've no doubt been told that you need to keep Ladder Line away from everything, in order for it to work, but that's not actually what's needed. What's required is that both conductors are exposed to the same fields. This means that if you're running the Ladder Line through a metal window, you need to ensure that both lines get the same amount of exposure to any nearby metal, you might put a slight twist in the Ladder Line, or you might put it in the middle between two bits of conductor, like a metal window frame.

    You might also have been told that Ladder Line radiates. It does, but only if the antenna you're feeding isn't balanced, because what actually happens is that the two sides of the antenna don't cancel each other out and the difference is radiated by the Ladder Line. It's worse if the Ladder Line is some resonant length on the frequencies on which you're using the antenna, because it will receive the signal from your antenna and re-radiate that too.

    It really means that you need to pay attention, but the cost of that attention pales into insignificance, if you think of the benefits.

    You might recall that your radio is most happy when it's transmitting into a 50 Ohm load. One of the measurements associated with that is an SWR reading of 1:1. This has come to be interpreted as: "You need a 50 Ohm antenna in order for it to radiate." and that's not actually true.

    All antennas will radiate, and as long as they are at least half a wave length long, their efficiency will be about 90%. The problem isn't the antenna, it's how you feed the antenna. As I said earlier, if you're a relatively new amateur like me, you might have put one and one together and decided that you need to feed it with 50 Ohm COAX and that your antenna needs to be 50 Ohm. If you do that, it will work, but it's not the only way.

    The reason you need to have a 50 Ohm feed-point to plug your COAX into, is because the COAX has a lot of loss if there is a feed-point mis-match. The higher the mis-match, the higher the loss. For example, using an 80m Dipole on 40m might mean an SWR of 65:1. This has about 80% loss on 100 feet of RG-8 COAX at 7 MHz. All you're doing is heating up COAX.

    However, if you were to feed it with 600 Ohm Ladder Line, the loss might only be around 3%. Before you start getting out the calculator to prove my maths wrong, this isn't about maths, it's about the difference between Ladder Line and COAX.

    COAX is wonderful as a tool, but Ladder Line should not be consigned to the annals of history, because in many, many situations it out-shines COAX. The combination of the thickness of the conductor and the separation width, determines its native impedance. There is lots of documentation online, including calculators on spacing and thickness, so you can build your own.

    I've seen lots of different types of spacers, from watering tubes cut to length holding the wire with cable-ties, to bits of Perspex, to cutting board plastic and others. The simplest and cheapest one I've seen to date was last weekend, made from two earth wires separated by strips of garden edging that comes in rolls. You cut off little strips, drill two holes, feed the wire through and if you're feeling that it needs permanency, glue them in place.

    Of course you can buy the stuff, but it's getting harder and harder to find at reasonable cost, so experiment a little.

    Ladder Line, it's not evil, it might surprise you and you will have another feather in your cap when you go out portable to set-up a field station.

    I'm Onno VK6FLAB


    Previous 1 46 47 48 49 50 61 Next

    Related Podcasts

    Ham Nation

    1

    Ham Nation Games & Hobbies
    The Brülosophy Podcast

    2

    The Brülosophy Podcast Games & Hobbies
    Good Job, Brain!

    3

    Good Job, Brain! Games & Hobbies
    Making It With Jimmy Diresta, Bob Clagett and David Picciuto

    4

    Making It With Jimmy Diresta, Bob Clagett and David Picciuto Arts
    Waypoint Radio

    5

    Waypoint Radio Arts
    BeerSmith Home and Beer Brewing Podcast

    6

    BeerSmith Home and Beer Brewing Podcast Games & Hobbies
    footer-logo

    Contact Us

    Toll Free: 844-670-7747

    Links

    • Home
    • Top Charts
    • Networks
    • Apps
    • Independents Podcasts
    • Podcast Advertising
    • Podcast News
    • Contact Us
    • About Us
    • Analytics & Insights

    Stay Connected

      Privacy, Terms of Use & Our Code of Ethics Protecting Content Creators Copyrights