#superpressure
You can build and launch a superpressure balloon that tours the sky for about the cost of a nice dinner. Using a small radio, solar panels, and a Raspberry Pi, you can send a balloon orbiting the planet and track its location from home. #DIY spectrum.ieee.org/explore-stra...
February 14, 2026 at 3:15 PM
Tons of questions, I somehow missed this.

I love the superpressure balloon inside an ambient pressure one, great way to do altitude control. The air bladders from some historical airships but better and inverted.

Solar electric + batteries power I assume?
May 20, 2025 at 10:24 PM
In 1950, the General Electric Research Laboratory in Schenectady, New York, assembled a consortium of chemists, physicists, and engineers to form Project Superpressure, an effort to synthesize diamonds in the lab.
August 3, 2025 at 4:21 PM
Exploring the stratosphere with a DIY Raspberry Pi Pico balloon @raspberry_pi @IEEESpectrum There’s an interesting development in amateur ballooning: using so-called superpressure balloons, whic...

#GPS #ham #radio #Pico #Raspberry #Pi #solar #balloon #gps #high #altitude

Origin | Interest | Match
February 4, 2026 at 6:02 PM
📰 Explore the Stratosphere With a DIY Pico balloon

There’s an interesting development in amateur ballooning: using so-called superpressure balloons , which float high in the atmosphere indefinitely rather than simply going up and up and then popping...
Explore the Stratosphere With a DIY Pico balloon
There’s an interesting development in amateur ballooning: using so-called superpressure balloons , which float high in the atmosphere indefinitely rather than simply going up and up and then popping..
spectrum.ieee.org
January 31, 2026 at 2:41 PM
Explore the Stratosphere With a DIY Pico balloon
<img src="https://spectrum.ieee.org/media-library/a-printed-circuit-board-attached-to-two-small-solar-panels-hangs-beneath-a-balloon.png?id=63339900&amp;width=1245&amp;height=700&amp;coordinates=0%2C566%2C0%2C567" /><br /><br /><p>There’s an interesting development in amateur ballooning: using so-called <a href="https://en.wikipedia.org/wiki/Superpressure_balloon" rel="noopener noreferrer" target="_blank">superpressure balloons</a>, which float high in the atmosphere indefinitely rather than simply going up and up and then popping like a normal weather balloon. Superpressure balloons can last for months and travel long distances, potentially circumnavigating the globe, all the while reporting their position.</p><p>You might imagine that an undertaking like this would be immensely difficult and cost thousands of dollars. In fact, you can build and launch such a balloon for about the cost of a fancy dinner out. You just have to think small! That’s why amateur balloonists call them pico balloons.</p><p>The payload of a pico balloon is so light (between 12 to 30 grams) that you can use a large Mylar party balloon filled with helium to lift it. They’re also inexpensive; that’s important because you won’t get your payload back. And because such diminutive payloads don’t pose a danger to aircraft, they aren’t subject to the many rules and restrictions on free-floating balloons that carry more mass.</p><p>The essential advances that made pico ballooning possible were figuring out how to track a balloon no matter where in the world it might be and how to power such tiny payloads. A lot of folks worked on these challenges and came up with good solutions that aren’t hard or expensive to reproduce.</p><h2>What is WSPR?</h2><p>Amazingly, the global tracking of the balloon’s telemetry is done without satellites. Instead, pico balloonists take advantage of an <a href="https://spectrum.ieee.org/tag/amateur-radio" target="_blank">amateur-radio</a> network called <a href="https://en.wikipedia.org/wiki/WSPR_(amateur_radio_software)" rel="noopener noreferrer" target="_blank">WSPR</a> (Weak Signal Propagation Reporter), a protocol developed by a rather famous ham-radio enthusiast—<a href="https://en.wikipedia.org/wiki/Joseph_Hooton_Taylor_Jr." rel="noopener noreferrer" target="_blank">Joseph Hooton Taylor Jr</a>., one of the two scientists awarded the 1993 Nobel Prize in Physics for discovering binary pulsars.</p><p class="shortcode-media shortcode-media-rebelmouse-image"> <img alt="Major components of a pico balloon payload." class="rm-shortcode" id="176da" src="https://spectrum.ieee.org/media-library/major-components-of-a-pico-balloon-payload.png?id=63339919&amp;width=980" /> <small class="image-media media-caption">A Raspberry Pi Pico microcontroller [top left] is soldered directly to a daughterboard consisting of a high-frequency transmitter and a GPS module [bottom left], which are all powered by solar panels [right].</small><small class="image-media media-photo-credit">James Provost</small></p><p>WSPR was designed to monitor signal-propagation conditions for different radio bands—useful information if you’re a ham trying to make distant contacts. WSPR can also record low-power balloon-telemetry signals. WSPR is very low bandwidth—less than 10 bits per minute—but it does the job. A worldwide network of radio amateurs receives these WSPR signals and reports them publicly over the internet, which gives picoballoonists a way to track their flights. You need at least a <a href="https://www.arrl.org/upgrading-to-a-general-license" target="_blank">general-class</a> ham-radio license to launch a pico balloon, as one is required to transmit on the bands used for long-distance telemetry.</p><p>The pico balloon payload I chose to build is based on the aptly named US $4 <a href="https://www.adafruit.com/product/4864" target="_blank">Raspberry Pi Pico board</a>, with a solder-on daughterboard that contains a <a href="https://spectrum.ieee.org/tag/gps" target="_blank">GPS</a> receiver and transmitter. The folks who developed this daughterboard and associated software (to create what they call the <a href="https://traquito.github.io/tracker/" target="_blank">Jetpack WSPR Tracker</a>) have done a fantastic job of making their work easy to reproduce.</p><p>You could, in principle, power the Jetpack tracker with batteries, but in practice it would be impossible to keep them warm in the stratosphere, where average temperatures can be as low as –51 °C. Instead, the tracker runs off two lightweight solar modules. At night, it gracefully powers down. When the sun rises high enough in the morning, the tracker powers up and starts transmitting again.</p><p class="pull-quote"><span>My first pico balloon made it only halfway across the Atlantic before going silent.</span></p><p>I had five Jetpack boards custom-manufactured in China for just $39. The cost nearly doubled after adding shipping and tariff charges. Still that’s really cheap, even when you add the cost of the Raspberry Pi ($4), <a href="https://www.amazon.com/dp/B0F28ZWPY6" target="_blank">the party balloon</a> ($10 for two), the helium ($10 at my local supermarket), and the two <a href="https://www.amazon.com/PowerFilm-MPT6-75-Module-Flexible-Thin-Film/dp/B002MFGD16" target="_blank">solar modules</a> ($7 each).</p><p>The biggest sticking point I had with the Jetpack design was the liberties it takes with spurious emissions from its transmitter. Federal Communications Commission (FCC) regulations call for spurious emissions to be at least 43 decibels below the power of the transmitted signal. But my transmitter had strong unwanted emissions at odd harmonics of the fundamental frequency. (That’s because the transmitter is a<a href="https://cdn.sparkfun.com/assets/3/e/a/9/a/Si5351-datasheet.pdf" rel="noopener noreferrer" target="_blank"> Si5351A</a> temperature-controlled oscillator, which outputs a square wave, not a sinusoid.) Taking measurements, I could see that the third harmonic at 42 megahertz was only 25 dB quieter than the 14-MHz fundamental of my WSPR signal’s frequency. </p><p class="shortcode-media shortcode-media-rebelmouse-image"> <img alt="A map showing a track from North Carolina in the United States across the Atlantic and the Iberean peninsula to the Mediterranean. " class="rm-shortcode" id="77213" src="https://spectrum.ieee.org/media-library/a-map-showing-a-track-from-north-carolina-in-the-united-states-across-the-atlantic-and-the-iberean-peninsula-to-the-mediterranea.png?id=63339932&amp;width=980" /> <small class="image-media media-caption">As of press time, the WSPR network had tracked my balloon from the Eastern United States to the Mediterranean coast. </small><small class="image-media media-photo-credit">James Provost</small></p><p>In practical terms, this shouldn’t create any noticeable interference, given that this transmitter puts out milliwatts at most and floats miles away from the nearest receiver. Still, I wanted to be fully compliant with FCC regulations, so I added traps to the antenna—simple circuit elements that hams use to allow a single antenna to work on multiple bands by altering how the antenna resonates at different frequencies. Each trap was made of a small inductor (four 5-millimeter-diameter loops of No. 32 magnet wire) in parallel with a 220-picofarad capacitor. I tuned them with the help of a <a href="https://nanovna.com/" target="_blank">NanoVNA</a> signal analyzer by stretching the loops apart slightly. I attached the traps directly to the tracker board, so that they quashed the spurious 42-MHz emissions at the source. That worked well and added only 0.3 grams of weight.</p><p>With my payload complete, I partially filled my balloon with helium. You want the balloon to hold just a little more gas than it takes to lift the payload off the ground. This will give the helium room to expand as the balloon climbs to its final altitude.</p><p>My first pico balloon, launched from a park near my home in North Carolina, made it only halfway across the Atlantic before going silent. My second went up and was never heard from again. The third was indeed the charm. It crossed the Iberian Peninsula and at the time of this writing is somewhere over the Mediterranean at an altitude of nearly 12 kilometers. With any luck, <a href="https://traquito.github.io/search/spots/dashboard/?band=20m&amp;channel=104&amp;callsign=N4LVD&amp;dtGte=2026-01-01" target="_blank">it might go on</a> to orbit the planet.</p><p>I’m a little puzzled about the balloons’ telemetry messages received on the WSPR network, as they have been few and far between. My best guess is that power from the horizontal solar panels I’m using is marginal, with the winter sun being so low in the sky. That’s something I should have thought about before launching the first balloon just 24 hours after the winter solstice!</p><p><em>This article appears in the February 2026 print issue as “<span>Long-Duration Amateur Ballooning</span>.”</em></p>
spectrum.ieee.org
February 1, 2026 at 12:28 AM
230 years ago the first superpressure balloon flew with a ballonet, successfully controlling altitude in the year 1790. From the book "Airships Past and Present
January 24, 2025 at 11:56 PM
The rise and fall of the superpressure balloon. This chart illustrates the US Govt and academic interest in practical pressurized long duration balloons. From Google Books word popularity by year.
January 24, 2025 at 11:56 PM
BALSAMINE project - 88 superpressure balloons to study monsoon circulation over the Arabian Sea. temperature, humidity, pressure and over-pressure sensors. Tracking was accomplished by the ARGOS system aboard TIROS-N and NOAA-6 satellites.

stratospherique.cloud/envelope/1979%…
January 24, 2025 at 11:56 PM
Just uploaded a new balloon science video! Balloon Sci Chat Live: BALSAMINE Superpressure Report

buff.ly/2ScTTxv
Balloon Sci Chat Live: BALSAMINE Superpressure Report
Powered by Restream https://restream.io/ BalloonSciDan is Live - Taking a look at a long-duration superpressure balloon project from France, BALSAMINE.
buff.ly
January 24, 2025 at 11:56 PM
Live Balloon Sci Chat now - Chat is back! Let's take a peek at France's BALSAMINE superpressure balloon project of 1979.PDF Download:#weatherballoon

stratospherique.cloud/envelope/1979%… bit.ly/ytballoonsci twitch.tv/balloonscidan
January 24, 2025 at 11:55 PM
Good on them for admitting it in their published academic paper? Navajo Native American kids weaving superpressure balloons! Mr. Tom Kelly points out: child labor laws yo, go back to drawing board, do not collect $200. 1963 PDF:

pst.cr/DBqBDf
January 24, 2025 at 11:53 PM
Live Balloon Science watch party stream tonight!  We'll be watching the newly released archival (old) documentary on the TWERLE superpressure balloon flight trip to Samoa, Summer 1975. 9 pm EDT / 6 pm PDT / 1 am UTC.1hr stream #balloonsciencefilms

twitch.tv/balloonscidan
January 24, 2025 at 11:53 PM
The Papers of Ballooning
Science Podcast · 5 Episodes
podcasts.apple.com
January 24, 2025 at 11:49 PM
Explore the Stratosphere With a DIY Pico balloon
Explore the Stratosphere With a DIY Pico balloon
There’s an interesting development in amateur ballooning: using so-called superpressure balloons, which float high in the atmosphere indefinitely rather than simply going up and up and then popping like a normal weather balloon. Superpressure balloons can last for months and travel long distances, potentially circumnavigating the globe, all the while reporting their position. You might imagine that an undertaking like this would be immensely difficult and cost thousands of dollars. In fact, you can build and launch such a balloon for about the cost of a fancy dinner out. You just have to think small! That’s why amateur balloonists call them pico balloons. The payload of a pico balloon is so light (between 12 to 30 grams) that you can use a large Mylar party balloon filled with helium to lift it. They’re also inexpensive; that’s important because you won’t get your payload back. And because such diminutive payloads don’t pose a danger to aircraft, they aren’t subject to the many rules and restrictions on free-floating balloons that carry more mass. The essential advances that made pico ballooning possible were figuring out how to track a balloon no matter where in the world it might be and how to power such tiny payloads. A lot of folks worked on these challenges and came up with good solutions that aren’t hard or expensive to reproduce.What is WSPR? Amazingly, the global tracking of the balloon’s telemetry is done without satellites. Instead, pico balloonists take advantage of an amateur-radio network called WSPR (Weak Signal Propagation Reporter), a protocol developed by a rather famous ham-radio enthusiast—Joseph Hooton Taylor Jr., one of the two scientists awarded the 1993 Nobel Prize in Physics for discovering binary pulsars. A Raspberry Pi Pico microcontroller [top left] is soldered directly to a daughterboard consisting of a high-frequency transmitter and a GPS module [bottom left], which are all powered by solar panels [right].James Provost WSPR was designed to monitor signal-propagation conditions for different radio bands—useful information if you’re a ham trying to make distant contacts. WSPR can also record low-power balloon-telemetry signals. WSPR is very low bandwidth—less than 10 bits per minute—but it does the job. A worldwide network of radio amateurs receives these WSPR signals and reports them publicly over the internet, which gives picoballoonists a way to track their flights. You need at least a general-class ham-radio license to launch a pico balloon, as one is required to transmit on the bands used for long-distance telemetry. The pico balloon payload I chose to build is based on the aptly named US $4 Raspberry Pi Pico board, with a solder-on daughterboard that contains a GPS receiver and transmitter. The folks who developed this daughterboard and associated software (to create what they call the Jetpack WSPR Tracker) have done a fantastic job of making their work easy to reproduce. You could, in principle, power the Jetpack tracker with batteries, but in practice it would be impossible to keep them warm in the stratosphere, where average temperatures can be as low as –51 °C. Instead, the tracker runs off two lightweight solar modules. At night, it gracefully powers down. When the sun rises high enough in the morning, the tracker powers up and starts transmitting again.My first pico balloon made it only halfway across the Atlantic before going silent. I had five Jetpack boards custom-manufactured in China for just $39. The cost nearly doubled after adding shipping and tariff charges. Still that’s really cheap, even when you add the cost of the Raspberry Pi ($4), the party balloon ($10 for two), the helium ($10 at my local supermarket), and the two solar modules ($7 each). The biggest sticking point I had with the Jetpack design was the liberties it takes with spurious emissions from its transmitter. Federal Communications Commission (FCC) regulations call for spurious emissions to be at least 43 decibels below the power of the transmitted signal. But my transmitter had strong unwanted emissions at odd harmonics of the fundamental frequency. (That’s because the transmitter is a Si5351A temperature-controlled oscillator, which outputs a square wave, not a sinusoid.) Taking measurements, I could see that the third harmonic at 42 megahertz was only 25 dB quieter than the 14-MHz fundamental of my WSPR signal’s frequency. As of press time, the WSPR network had tracked my balloon from the Eastern United States to the Mediterranean coast. James Provost In practical terms, this shouldn’t create any noticeable interference, given that this transmitter puts out milliwatts at most and floats miles away from the nearest receiver. Still, I wanted to be fully compliant with FCC regulations, so I added traps to the antenna—simple circuit elements that hams use to allow a single antenna to work on multiple bands by altering how the antenna resonates at different frequencies. Each trap was made of a small inductor (four 5-millimeter-diameter loops of No. 32 magnet wire) in parallel with a 220-picofarad capacitor. I tuned them with the help of a NanoVNA signal analyzer by stretching the loops apart slightly. I attached the traps directly to the tracker board, so that they quashed the spurious 42-MHz emissions at the source. That worked well and added only 0.3 grams of weight. With my payload complete, I partially filled my balloon with helium. You want the balloon to hold just a little more gas than it takes to lift the payload off the ground. This will give the helium room to expand as the balloon climbs to its final altitude. My first pico balloon, launched from a park near my home in North Carolina, made it only halfway across the Atlantic before going silent. My second went up and was never heard from again. The third was indeed the charm. It crossed the Iberian Peninsula and at the time of this writing is somewhere over the Mediterranean at an altitude of nearly 12 kilometers. With any luck, it might go on to orbit the planet. I’m a little puzzled about the balloons’ telemetry messages received on the WSPR network, as they have been few and far between. My best guess is that power from the horizontal solar panels I’m using is marginal, with the winter sun being so low in the sky. That’s something I should have thought about before launching the first balloon just 24 hours after the winter solstice! This article appears in the February 2026 print issue as “Long-Duration Amateur Ballooning.”
spectrum.ieee.org
June 5, 2026 at 1:20 AM
Guy Suits, General Electric’s director of research, overruled them and approved the funds. Shortly after, Project Superpressure would make its breakthrough.
August 3, 2025 at 4:21 PM
Four years of intense experimentation followed, during which Project Superpressure exhausted all of its original research budget and two additional funding allocations.
August 3, 2025 at 4:21 PM