---
title: 'The Bizarre Bases of Antenna Towers'
source: 'https://youtube.com/watch?v=3nDdLiXS5wk'
video_id: '3nDdLiXS5wk'
date: 2026-07-25
duration_sec: 1088
---

# The Bizarre Bases of Antenna Towers

> Source: [The Bizarre Bases of Antenna Towers](https://youtube.com/watch?v=3nDdLiXS5wk)

## Summary

This video explores the engineering behind guyed masts, the tallest structures on Earth, which are used for radio and television broadcasting. It covers their structural principles, tradeoffs, collapse risks, and unique design features like pivoting bases and ceramic insulators.

### Key Points

- **Collapse of Warsaw Radio Mast** [01:09] — In 1991, the 646-meter Warsaw Radio Mast collapsed due to an error in guy wire replacement procedure, where a main cable was disconnected before temporary guys were fully installed.
- **Structural Efficiency of Guyed Masts** [06:03] — A guyed mast of the same height as the Eiffel Tower (324 m) weighs only about 5% of the Eiffel Tower's 7000 tons, demonstrating extreme material efficiency.
- **Buckling from Guy Wires** [07:04] — Guy wires transfer lateral wind loads into compressive forces on the mast, causing buckling if the mast is not stiff enough. This is a key structural challenge.
- **Unusual Bases: Pivot Supports** [11:33] — Many guyed masts use spherical bearings or pin supports at the base, allowing rotation and simplifying design. This avoids complex foundations and makes the structure more predictable.
- **Energized Towers as Antennas** [12:18] — For AM radio, the tower itself is the antenna and must be electrically insulated from the ground. This is often achieved with a ceramic disc at the base.
- **Lightning Protection** [13:36] — Towers are frequently struck by lightning and require robust grounding. Energized towers use spark gaps to safely conduct surges without grounding the antenna.

### Conclusion

Guyed masts are marvels of structural engineering, balancing efficiency with complex challenges like buckling, ice, lightning, and maintenance. Their unusual bases and guy wire systems are critical to their function and safety.

## Transcript

In 1974, a new world record was set for&nbsp; the tallest structure on Earth. Soaring&nbsp;&nbsp; to 646 meters or 2,120 feet, the Warsaw Radio&nbsp; Mast was built to broadcast radio programs to&nbsp;&nbsp;
Polish-speaking audiences across Europe. If&nbsp; the atmospheric conditions were just right,&nbsp;&nbsp; those signals could be picked up from&nbsp; nearly anywhere in the world. But&nbsp;&nbsp; like all big infrastructure projects,&nbsp; building it was only half the battle.&nbsp;&nbsp;
Maintaining a structure that tall—and that&nbsp; slender—was incredibly expensive. Over time,&nbsp;&nbsp; the guy wires that held the tower upright&nbsp; began to wear out. By 1991, many of them&nbsp;&nbsp;
were frayed and overdue for replacement, a job&nbsp; that wasn’t just costly, but also fairly complex. To replace a guy wire, two temporary guys needed&nbsp; to be attached to the mast first. Then the old guy&nbsp;&nbsp;
could be removed and swapped out for a new one.&nbsp; But on August 8, 1991, the sequence got mixed up.&nbsp;&nbsp; Reports vary, but it seems that one of the main&nbsp; cables was disconnected before the temporary ones&nbsp;&nbsp;
were fully installed. A gust of wind twisted the&nbsp; tower, pulling the temporary cables away, and the&nbsp;&nbsp; unsupported mast collapsed. Incredibly, no one was&nbsp; injured in the failure, but it was a catastrophic&nbsp;&nbsp;
loss nonetheless. Usually, the tallest structures&nbsp; in the world lose their position because something&nbsp;&nbsp; else is built taller. In this case, a tower&nbsp; in North Dakota regained the lead by default.
It’s actually not an unusual story.&nbsp; This particular type of structure,&nbsp;&nbsp; called a guyed mast, has some seemingly bizarre&nbsp; structural characteristics that make it possible,&nbsp;&nbsp; including the sometimes unusual bases that&nbsp; seem to defy logic. But they come with risks,&nbsp;&nbsp;
too. At least nine guyed masts taller than&nbsp; 600 meters have collapsed, mostly in the US,&nbsp;&nbsp; and hundreds of similar shorter structures around&nbsp; the world as well. They’re pretty interesting&nbsp;&nbsp;
structures: cool to look at, incredibly tall,&nbsp; just rare enough that seeing one is kind of&nbsp;&nbsp; special. So this video is an ode to guyed&nbsp; masts, and of course, I built a little demo&nbsp;&nbsp;
in the garage to help explain how they work.&nbsp; I’m Grady, and this is Practical Engineering.
Radio communication is a remarkable technology&nbsp; that enables a huge variety of wireless devices,&nbsp;&nbsp; from garage door openers to cell phones. electromagnetic radiation, even just the&nbsp; human-made stuff, we would be completely&nbsp;&nbsp;
overwhelmed by the volume and variety of&nbsp; information moving through the airwaves.&nbsp;&nbsp; Many of the frequencies used for communication,&nbsp; especially those broadcast by radio and television&nbsp;&nbsp; stations, require a clear line of sight; the&nbsp; path between the transmitter and receiver&nbsp;&nbsp;
has to be relatively unobstructed, at least&nbsp; by objects that are opaque to radio waves,&nbsp;&nbsp; like the earth. That’s why many antennas&nbsp; are mounted at the tops of hills, mountains,&nbsp;&nbsp; or (lacking those) gigantic towers. The higher&nbsp; they are, the further their signals can extend.
Antenna towers are some of the tallest&nbsp; human-made structures in the world,&nbsp;&nbsp; with many topping out above 600 meters&nbsp; (roughly 2,000 feet). At that height,&nbsp;&nbsp; the distance to the horizon is more than 50&nbsp; miles (or 80 kilometers). To achieve that&nbsp;&nbsp;
has required some very clever structural&nbsp; engineering. Let me show you what I mean. This is my model antenna tower. Pretty basic;&nbsp; just a steel welding rod stuck in a plate.&nbsp;&nbsp; This isn’t going to match the structural&nbsp; behavior of an actual mast, but it’s close&nbsp;&nbsp;
enough for a garage demo. The main load on&nbsp; a tower like this, besides its own weight,&nbsp;&nbsp; is wind. So let’s apply some wind and see what&nbsp; happens.
The tower’s still standing - it&nbsp;&nbsp; didn’t collapse. But structural engineering&nbsp; isn’t all about strength. A structure can “not&nbsp;&nbsp; fall down” but still fail. We also have to address&nbsp; the concept of serviceability: does the structure&nbsp;&nbsp;
actually do what it’s meant to? And in this case,&nbsp; hopefully it’s clear that the answer is no. Many&nbsp;&nbsp; antennas are designed to be directional. It takes&nbsp; a lot of power to radiate signals, so you don’t&nbsp;&nbsp;
want to waste it sending them where they’re not&nbsp; needed. This varies a lot depending on the end&nbsp;&nbsp; use. Radio and TV broadcasts are less sensitive&nbsp; to movement than microwave communications, but in&nbsp;&nbsp;
general, we can’t have antenna towers wobbling&nbsp; around like floppy wet noodles in the sky. You can imagine that to adequately stiffen this&nbsp; tower, it would have to be a lot wider at the&nbsp;&nbsp; base. And that’s just what we do with so-called&nbsp; self-supporting towers. They’re designed to be&nbsp;&nbsp;
freestanding and stable against the wind entirely&nbsp; on their own. Self-supporting towers don't take up&nbsp;&nbsp; much space, so they are ideal in urban areas where&nbsp; land comes at a premium. But, they are expensive&nbsp;&nbsp;
to build because of all the extra material&nbsp; required for stiffness and stability against&nbsp;&nbsp; lateral wind loads. In fact, their cost goes up&nbsp; roughly proportional to the height squared. For&nbsp;&nbsp;
guyed masts, it's roughly height to the power of&nbsp; 1.5. You need more land for a guyed tower since&nbsp;&nbsp; the guys extend so far out, so there is more&nbsp; cost there, but above a certain height (that&nbsp;&nbsp;
depends on those land costs), it becomes the most&nbsp; economical option. And for really tall towers,&nbsp;&nbsp; it’s really the only technically feasible one.&nbsp; They are just so structurally efficient, it's&nbsp;&nbsp;
almost unbelievable. To give you an example, at&nbsp; 324 meters tall (or 1,060 feet) the Eiffel Tower&nbsp;&nbsp; weighs around 7000 tons. A guyed tower of the same&nbsp; height would weigh roughly five percent of that.
So let me add some guys to my tower&nbsp; and we’ll see how it works. Of course,&nbsp;&nbsp; you can’t add just one. Wind can come from any&nbsp; direction, and don’t forget one of the most&nbsp;&nbsp; important adages of civil engineering: you can’t&nbsp; push a rope. So it takes at least three guys to&nbsp;&nbsp;
get some tension in every direction. Some towers&nbsp; use four lanes, but most stick with three. This&nbsp;&nbsp; seems like a more stable situation, but now we’ve&nbsp; got a new problem. Watch what happens when I apply&nbsp;&nbsp;
a lateral load. It's still just not that stiff,&nbsp; and actually, the tower buckles. And here’s why: The guys can’t pull horizontally on the&nbsp; tower to resist lateral loads directly.&nbsp;&nbsp; They have to be anchored to the ground,&nbsp; which means they meet the tower at an&nbsp;&nbsp;
angle. Any tension in the cable is going to&nbsp; necessarily put the tower in compression as&nbsp;&nbsp; well. And what happens with skinny&nbsp; compression members? They buckle. Steel can take a lot of compression.&nbsp; Theoretically, this rod is strong&nbsp;&nbsp;
enough to hold my entire weight without&nbsp; a material failure. If it were short,&nbsp;&nbsp; it’d be more than capable of bearing a full&nbsp; Grady, but when it’s tall and skinny like this,&nbsp;&nbsp; it can barely hold its own weight. When the tower&nbsp; takes a lateral load, the guy wires transfer that&nbsp;&nbsp;
into compressive force. And unless the structure&nbsp; is stiff enough, it buckles. you can&nbsp;see it takes a lot more wind load to buckle the&nbsp;&nbsp;
structure. Less cable tension is needed for an&nbsp; equivalent horizontal force. And this is one of&nbsp;&nbsp; the many structural tradeoffs with guyed towers.&nbsp; You have to balance the land cost of extending&nbsp;&nbsp;
anchors outward against the cost of a stiffer&nbsp; tower that can withstand steeply angled guys. But you can see we’re not quite out of the&nbsp; woods here. Some shorter guyed towers can&nbsp;&nbsp;
get away with one level of supports, but&nbsp; mine is still pretty flimsy in the middle.&nbsp;&nbsp; and it’s still prone to buckling under&nbsp; compressive loads, like, for example,&nbsp;&nbsp;
the weight of an antenna mounted to the top. We’ve got supports on both ends and loads trying&nbsp; to bend the structure in the center. So we can&nbsp;&nbsp;
do what the bridge engineers do: either stiffen&nbsp; the structure or add more intermediate supports.&nbsp;&nbsp; It’s a little more complicated than that though,&nbsp; since every guy adds additional compressive load&nbsp;&nbsp; on the tower, in addition to providing lateral&nbsp; support to reduce the unbraced height. You’re&nbsp;&nbsp;
kind of adding to both sides of the equation.&nbsp; Luckily, the lower you go on the tower, the&nbsp;&nbsp; shallower the angle of the cable. Just as a little&nbsp; demonstration of this, let’s compare the loads&nbsp;&nbsp; my little tower can support as we add more guys.&nbsp;
This can barely support its own weight, let alone&nbsp; any extra on top. With a second level halfway up,&nbsp;&nbsp; it’s quite a bit stiffer. I could get 100 grams&nbsp; on top with no failure. Adding two more levels,&nbsp;&nbsp;
now this thing feels rock solid. I’m&nbsp; not sure if it comes across on camera,&nbsp;&nbsp; but the change in stiffness is dramatic.&nbsp; It passes the wind test with flying colors.&nbsp;&nbsp;
It couldn’t quite hold a kilogram,&nbsp; but Brady could sit on it just fine,&nbsp;&nbsp; even if it made him a bit uneasy (since his&nbsp; hard hat is still damaged from the last demo). One of the other tradeoffs with this is&nbsp; the pre-tension of the cables. These guys&nbsp;&nbsp;
sag along their length; they’re not perfectly&nbsp; straight. Under high wind, they tighten up and add&nbsp;&nbsp; stiffness. But in calm conditions, that slack can&nbsp; cause the tower to wobble. The obvious solution&nbsp;&nbsp; is to pre-tension the guys to take the sag out,&nbsp; but again, that pretension puts extra compression&nbsp;&nbsp;
on the tower, requiring stronger members or&nbsp; more guys. So this is a balancing act as well. And then there’s the base. You have essentially&nbsp; two choices here. We’re used to seeing large&nbsp;&nbsp; columns with a rigid attachment to the foundation.&nbsp; I did a whole video on base plates diving into&nbsp;&nbsp;
this topic deeper if you want to learn more. You&nbsp; can see in my model that, with a fixed connection,&nbsp;&nbsp; my tower holds itself up just fine without&nbsp; loading. Obviously, this rod is solid steel - not&nbsp;&nbsp; a thin latticework of individual members -&nbsp; so the behavior is a little different. But&nbsp;&nbsp;
remember that buckling is a function of the end&nbsp; connections of the column. With the bottom fixed,&nbsp;&nbsp; it takes about 140 grams to buckle the rod.&nbsp; When it’s free to rotate at the bottom,&nbsp;&nbsp; it buckles at around half that. The&nbsp; problem in this case is that fixing&nbsp;&nbsp;
such a tall tower rigidly to the foundation&nbsp; makes the design a lot more complicated. If you want rigid restraint, you have to have&nbsp; a way to transfer the loads into the ground. So&nbsp;&nbsp;
the foundation has to be designed to resist&nbsp; rotation and pullout forces, and for not a&nbsp;&nbsp; lot of structural benefit. So the other option&nbsp; is to use a spherical bearing or pin support.&nbsp;&nbsp; And if you keep your eye out, you’ll see that a&nbsp; lot of these masts have these sorts of unusual&nbsp;&nbsp;
bases where they taper down to a narrow&nbsp; point. In this way, you can just rely on&nbsp;&nbsp; the guys to handle almost all the restraint. The&nbsp; foundation only has to resist the vertical force,&nbsp;&nbsp; and maybe a touch of shear. This allows some&nbsp; movement or settlement of the foundation&nbsp;&nbsp;
without inducing stress into the structure.&nbsp; And it just makes the design process easier.&nbsp;&nbsp; Removing the restraint simplifies the structural&nbsp; response and makes the tower more predictable,&nbsp;&nbsp;
so you don’t have to be super conservative&nbsp; or spend tons of engineering effort and&nbsp;&nbsp; use sophisticated modeling software in the&nbsp; design. Finally, some towers aren’t used to&nbsp;&nbsp; mount antennas; they are the antennas themselves.&nbsp; For lower frequency transmissions like AM radio,&nbsp;&nbsp;
you need a big antenna, so the tower&nbsp; itself is energized. In those cases,&nbsp;&nbsp; the base needs to be electrically insulated from&nbsp; the ground, which is much easier to do at a single&nbsp;&nbsp; point. If you look closely at some towers, you’ll&nbsp; see they’re actually standing on a ceramic disc.
Beyond structural design, these masts come with&nbsp; a lot of other engineering challenges. Of course,&nbsp;&nbsp; there’s the hazard to aircraft. &nbsp; painted in alternating orange and white&nbsp; bands and equipped with warning lights,&nbsp;&nbsp;
whose color and flash rate&nbsp; are carefully prescribed,&nbsp;&nbsp; and can even be synchronized with nearby&nbsp; towers to avoid dazzling pilots at night. Ice is another big one. These towers stretch&nbsp; into colder, wetter layers of air where ice&nbsp;&nbsp;
can build up on the mast and guys. That&nbsp; adds weight, but it also adds surface area,&nbsp;&nbsp; sometimes dramatically increasing wind loads. When&nbsp; it melts, it can fall and damage anything below,&nbsp;&nbsp;
so often you’ll see protective structures&nbsp; over the radio transmission lines. Lightning is another threat. For most towers,&nbsp; it’s not a question of IF, but rather HOW OFTEN&nbsp;&nbsp; they’ll be struck. Towers are often equipped&nbsp; with lightning rods or other protection devices&nbsp;&nbsp;
and robust grounding systems to keep stray&nbsp; voltage out of the transmission lines and&nbsp;&nbsp; sensitive equipment on the ground. Obviously,&nbsp; those mast radiators I mentioned earlier,&nbsp;&nbsp; where the entire tower services as the antenna,&nbsp; can’t be grounded for lightning protection.&nbsp;&nbsp;
So most use some type of spark gap to keep&nbsp; the tower insulated. If lightning strikes,&nbsp;&nbsp; the air in the gap ionizes, allowing&nbsp; the surge to safely reach the ground. Like all infrastructure, antenna towers need&nbsp; maintenance - painting, changing light bulbs,&nbsp;&nbsp;
and servicing antenna equipment. Technicians with&nbsp; specialized training for heights and electrical&nbsp;&nbsp; hazards have to do the work. Some tall towers are&nbsp; even equipped with elevators to provide access,&nbsp;&nbsp; but most require some manual climbing.&nbsp; Although the frequencies used for radio&nbsp;&nbsp;
communication are non-ionizing (meaning&nbsp; the waves can’t break apart molecules),&nbsp;&nbsp; that doesn’t mean they aren’t dangerous.&nbsp; Electromagnetic radiation can generate heat;&nbsp;&nbsp; it’s the fundamental principle of a microwave&nbsp; oven. And if the tower itself is energized,&nbsp;&nbsp;
With so much of our telecommunication happening&nbsp; through the internet these days, it’s easy to&nbsp;&nbsp; forget the importance of large-scale radio&nbsp; broadcasting and communications. The cells for&nbsp;&nbsp;
cellular communications are small, so we’re used&nbsp; to seeing those antennas relatively close to the&nbsp;&nbsp; ground. But you have to look way up to remember&nbsp; how critical the other wireless systems are,&nbsp;&nbsp;
especially in emergency situations where radio&nbsp; and television signals can be an essential link&nbsp;&nbsp; to information. So next time you pass one&nbsp; of these towers by, take a closer look,&nbsp;&nbsp; and I hope you’ll appreciate some of the&nbsp; thoughtful engineering that goes into them.
I plan these&nbsp; videos out in advance, and I actually bought&nbsp;&nbsp; a telephoto lens for my camera about a year ago so&nbsp; I could get some of the shots in this video. So,&nbsp;&nbsp; I went outside to test it out, and the first&nbsp; thing I took a picture of was a bird. Of course,&nbsp;&nbsp;
then I wanted to learn what kind of bird&nbsp; it was. And that basically snowballed&nbsp;&nbsp; into a full-on new hobby of birding. I’ve got&nbsp; feeders in the backyard, fancy new binoculars,&nbsp;&nbsp; and the Merlin app on my phone. I try to get&nbsp; out at least once a week, and so far I’ve seen&nbsp;&nbsp;
about 160 species. But once you start paying&nbsp; attention and learning more about birds, it&nbsp;&nbsp; can be a little disheartening. For example, I see&nbsp; Loggerhead Shrikes pretty regularly here in Texas,&nbsp;&nbsp;
but if you live in the northeastern US, they’ve&nbsp; pretty much disappeared. The species has lost&nbsp;&nbsp; about three-quarters of its population in North&nbsp; America since 1966, and that’s just one example. Another is Little Owls - cute little guys who&nbsp; have seen major population declines in some&nbsp;&nbsp;
parts of Europe. My friends at Planet Wild have&nbsp; been working with conservationists in Germany to&nbsp;&nbsp; help re-establish the population there. Planet&nbsp; Wild is a community-based organization dedicated&nbsp;&nbsp; to protecting our natural world, including&nbsp; wildlife. It’s basically crowdfunding for nature.&nbsp;&nbsp;
Every month, all the members fund a new&nbsp; project related to endangered species,&nbsp;&nbsp; oceans, or forests. And then they produce&nbsp; a video documenting the project so you&nbsp;&nbsp; can see for yourself where your money&nbsp; is going and the impact it’s having.
I love the idea, which is why I’m a member.&nbsp; It makes me feel more connected to the causes&nbsp;&nbsp; I care about and part of a community who are&nbsp; working together to accomplish something bigger&nbsp;&nbsp; than any individual could do on their own. If&nbsp; you’ve been looking for a neat way to give back,&nbsp;&nbsp;
I think Planet Wild is a great way to do it. And&nbsp; to prove it, for the first 100 people who sign up,&nbsp;&nbsp; I’ll cover your first month. Just scan the QR&nbsp; code or click the link in the description and&nbsp;&nbsp; use my code PRACTICAL10 to get your first&nbsp; month free. No catches - you can cancel&nbsp;&nbsp;
anytime. If you’re not sure yet, go check&nbsp; out their project protecting the Little&nbsp;&nbsp; Owl in Germany. You can give whatever amount&nbsp; - big or small - that feels right to you. Your&nbsp;&nbsp; money will go towards really cool conservation&nbsp; projects that you can watch happen here on&nbsp;&nbsp;
YouTube. I hope you’ll consider joining. Thank&nbsp; you for watching, and let me know what you think.
