Goodyear Inflatoplane
en.wikipedia.org
en.wikipedia.org
Discussions are not optimistic, but do invoke some related inflatable craft - https://www.reddit.com/r/WeirdWings/comments/n7a4k1/what_hap...
If I've learned anything from youtube - flying is not an expensive or inaccessible hobby. But safe flying is.
I think the inflatable SUPs and kayaks are as heavy as they are because of the thick layers of vinyl and nylon that prevent punctures and abrasion.
Kitesurfing kites are made of lightweight ripstop polyester, with a super-thin urethane coating, and have an inflated bladder to help hold their shape. That might be more appropriate tech for creating an airplane.
I don't have experience with hard SUPs but have a cheap RetroSpec weekender 10'6" SUP at 17.5lbs - I quickly looked up the weight of similar size composite boards (e.g. Isle 2) and was seeing more like 24lbs. I googled "competition SUP" and found some at 17lbs in the same length as my inflatable, but much narrower and 100lbs lower in max weight capacity than the inflatable SUP of the same weight.
For kayaks, high end drop stitch kayaks are about half the weight of rotomolded plastic ones of the same size, and only slightly heavier than skin on frame kayaks made from exotic materials, which are the lightest kayak technology and slightly lighter overall.
https://repository.tudelft.nl/islandora/object/uuid:306785d0...
https://www.prospective-concepts.ch/html/site_en.htm (click "Projects" > "Air" on the right)
Personally I think this is a technological dead-end, at least for the civil aviation use cases that I understand. The only advantage of an inflatable system is compactness / portability, but since the Inflatoplane, that's been solved in many other ways by rogallo wings, hang glider type wings, paragliders, parachutes, various types of fold-out rigid wings, etc.
And all of the other properties of inflatable wings aren't advantageous other. They're not simpler, lighter, stronger, more durable, or more reliable than the alternative best option, and they don't seem to have a particularly good mix of useful properties to win against the other best alternative for any given use case, even if you assume modern materials and modern techniques.
While the pulley system at the root cause of this could be improved, the failure mode of "floppy wing got chopped up by the prop" seems like there could be quite a lot of ways to get there. Dunno what you think we've done in the last 50 years to improve on this situation, but for anything other than an emergency, I wouldn't want to bet my life on a vehicle like this. Also, I'm having trouble picturing an emergency that would be resolved by an inflatable plane.
Nevermind, I've got it. A single container could hold a hundred inflatable airplanes. That'd be a helluva surprise deployment, if you don't value the lives of your pilots.
Nebula (subscription required): https://nebula.tv/videos/mustard-escape-in-an-inflatable-air...
I'm pretty sure it would be ridiculous and impractical, but we could use a way to solve the "it's only five blocks away but the weather's miserable" in a way that doesn't involve huge parking lots and otherwise terrible land use.
I know that there must be clothing that solves this, but donning a whole suit for what might be a 90-second trip is a lot of friction, especially when the alternative is feeling a little bit guilty about driving for a trip that could easily be biked/walked/etc.
I’m more excited about the Aptera. I think it’s significantly bigger and more highway-capable than the Nimbus, while still much more efficient than contemporary EVs. It’ll cost twice as much as the Nimbus as well… quite different vehicles other than the common 2-front, 1-back wheel configuration.
For example, make a flimsy structure out of thin steel foil, then pressurize it to give it far more strength than it would otherwise have.
Same as the strength of a coke can.
Except with steel as the tensile material, you can probably use pressures up around 1000 psi, making the whole structure have an amazing strength to weight ratio.
Congratulations, you have created a bomb.
You also need pressure regulator valves in case of fire.
And you might want to make the whole thing double or triple skinned so the highest pressures can be deeper inside where they are less likely to get punctured/less vulnerable to corrosion damage/crash damage.
Unmanned aviation comes to mind, but the ratio between structural mass and battery+payload is already so low, even a zero-mass structure would not make a meaningful performance difference. It's all about the battery tech.
Scaling up foil boating perhaps? Carbon fiber construction would certainly appear like a good candidate for taking advantage of being pressurized, and I perhaps naively take it as a given that materials is the major limiting factor in scaling up.
You might not design for that case. A suspension bridge can't survive a tower falling over, or a cable snapping.
The pressurized structures wouldn't be able to survive leaks over X size, and for leaks under X size, compressors would be used to maintain pressure.
Just for some reference, 1000psi is the kind of pressure you get ~700m depth (2300ft), double what a submarine would regularly withstand. Pressure in your average propane gas tank probably peaks around 200psi in high temperature. That steel isn't flimsy, it tends to get bulky and heavy even with creative ribbing and reinforcement.
It has to make a lot of sense practically and economically to consider such an option. So it ends up being used in places where weight or cost matter less.
This highlights that high pressure and "thin steel foil" do not go well together and don't scale in your favor. Pressure makes any failure considerably more dangerous.
Fueled rockets are treated like live bombs. No one around except for people who really need to be (like astronauts).
I'm assuming you're referring to the unnominal situations resulting in the unscheduled rapid disassembly procedures? I wonder how many people watch launches with similar intent as NASCAR races where they're just looking for the crashes or hockey games looking for the fights?
But for, say the JWST launch, it really wasn't with the same intent.
In the former, it is just SpaceX way of doing business, no big deal, no significant payload being destroyed and the next rocket is on the line. The latter is the result of billions of dollars, many years of work and great scientific promises that could be blown to pieces.
And of course, for manned flight, who in their right mind wants astronauts dead?
Which begs the question, who wants to fly Starliner?
"The tank of the Atlas consisted of stainless steel which was no thicker than a dime at any point. Generals, and later congressmen, worrying about what would happen if somebody dropped a wrench on such a tank were conducted to a test version of the "stainless steel balloon" that was stiffened by pressure and offered a choice of assorted mallets to see whether they could dent it. In each case the general or congressman grew tired before he had even succeeded in producing a mark that could be seen."
Willy Ley's "Rocket's, Missiles and Men in Space"
I think this is the failure you're referring to: https://www.youtube.com/watch?v=imkdz63agHY
And here's a picture from ULA/Tony Bruno showing a Centaur tank in their factory, being supported by a rig: https://twitter.com/torybruno/status/1435553806792728579
For reference, a steel or aluminum SCUBA tank is usually filled to 3000psi and when I fill steel tanks I can hear and sometimes see the metal start to slightly balloon. This is normal because steel is not brittle but it is very strong.
There is a lot of rules put in place for safety though. A tank has to be visually checked by a professional every year and hydro statically tested every 5. The danger is any rust/corrosion weakening the metal and causing it to rupture. More often seen in aluminum tanks, which is one reason I prefer steel.
We use it because it's cheap and well tested. But we are probably better of with a layered combination of a few different materials. Steel may not even enter it.
Layers of dissimilar materials are often problematic due to galvanic corrosion, different rates of heat expansion, and water intrusion between layers.
> Omni-Vision – The [term for the] rear windows on some Cessna singles, starting with the 182 and 210 in 1962 and followed by the 172 and 150 in 1963 and 1964 respectively. The term was intended to make the pilot feel visibility was improved on the notably poor-visibility Cessna line. The introduction of the rear window caused in most models a loss of cruise speed due to the extra drag, while not adding any useful visibility.
That's hilarious.
https://news.ycombinator.com/item?id=21249801 (26 comments)
While a cool concept, subsequent ultralight aircraft made this design obsolete.
Just don't get shot at or have a leak. While it could be very compact to transport, it's not very practical or robust.
Also, the service ceiling and service floor(?) could vary based on temperature. For example, if it started at sea level and very cold conditions, it's possible it could not exceed a certain altitude below the need for a pressurized cabin and below its performance coffin corner.
I would not want to be caught in inclement weather in an inflatable anything.
I am surprised this was not pursued more aggressively, in fact.
Or flying low ?
A proposal demonstrator of this was suggested in a paper:
https://www.icas.org/ICAS_ARCHIVE/ICAS2014/data/papers/2014_...
Wonder what a modern variant would look like?
Imagine a version with modern drop-stitch technology .. [1]
[1] - https://www.yachtingworld.com/yachts-and-gear/the-new-inflat...