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by justincarter 30 days ago
I work in the aviation industry. This was a good read. The article hinted at the oligopolies that exist in aviation and in practice the industry is incredibly conservative and slow to change (particularly commercial aviation). While new technology is developed all the time, the extreme regulatory oversight combined with so much of the industry relying on long-standing relationships makes it difficult for any new entrant to come into the market. There is also a lot of domain specific knowledge that seems difficult to easily transfer.
2 comments

Honestly this is a good thing. I can endure buggy software but I don’t want to deal with buggy planes. Regulatory pressure is a market force and a useful one too. There’s a huge difference between ship fast and ship right - the latter one requires deep pockets and willingness to commit to ongoing risk. People always say big Pharma and aviation and such are oligopolies, and that’s bad, but they rarely see the capital intensiveness of the whole process. Some things are slow and deliberate and restricted to big corporate only for good reasons
> Regulatory pressure is a market force and a useful one too.

That's assuming the regulations are competent. But if you let the market consolidate then the incumbent has enough money to buy off the government. Or it happens the other way around and the government is kind enough to set out regulations that only a megacorp can satisfy, thereby destroying the competition and awarding the last company standing the vaunted "too big to fail" get out of jail free card.

Which in turn gets you the 737 MAX sort of problems where the regulations both cause a problem (recertification is prohibitively expensive) and then fail to impede the incumbent's efforts to shirk it because you can't be damaging the business of your only domestic producer.

I agree partially with this. America is a special circumstance because of the way the industrial complex and government contracts are linked, and there’s a lot of blatant corruption. If you look at the European regulation framework I believe it works rather well. You have multiple big companies delivering components for different parts of the airplanes from different countries which are all individually big but not too big to fail because no government is solely reliant on them.. as it should be
The US Gov't doesn't always act like a single buyer. The contracts people talk about are like that, but most of what the DoD does is a much smaller scale.

Work for a company with lots of small contracts and you'll quickly see "oh the Navy does things this way, AFSOC wants it that way, DHS does it another way" and so on. Competition arises among the small companies because all these different agencies behave like independent buyers, even if they are all part of the same government.

The corruption issue is damped within the realm of small contracts, because it's hard for executive-level corruption to trickle that far down the bureaucracy. It's just hard to make a bunch of smaller organizations move in lockstep, even if they have the same top-level leadership.

Granted, network effects still matter. Certain groups want their stuff to be compatible with other groups' stuff. They all talk to each other too. If you bin a demo with JSOC and the guy has a buddy in AFSOC, you bet he's gonna get a beer with his friend and say "man, company X really binned it today." So there are still some consolidating pressures.

And you're right, all of this falls apart with the huge contracts. Just food for thought.

I agree that regulatory pressure is a market force (I wish more people understood this), but I disagree that capital intensive things that must be done right can only be done by big organizations - quite the opposite. If the regulatory environment is strong and effective, small organizations can thrive even in pharma and aviation. If an industry is comprised solely of huge organizations, then when one becomes corrupted (like Boeing has, see the 737 MAX debacle) it becomes impossible to terminate that organization. Organizations that are too big to fail are too big to be regulated.
There is an old saying in the engineering world: “Regulations are written in blood.
They had an immense amount of blood on tap to utilize when they penned out the PATRIOT Act and I think the results speak for themselves.

I know your comment was likely made as a knee jerk reaction to the above comment but I implore the reader to actually consider the process and incentives by which rules and regulations are created and how an assumption of good faith negatively affects the rules and laws we get.

> I can endure buggy software but I don’t want to deal with buggy planes

A plane built for resilience against defective engine components would be very different from the airliners we fly today. I would assume more engines for redundancy, better protection against catastrophic failure, different designs to allow engines to function even if parts flew out, and so on. It’s an interesting design exercise to build from radically different expectations from the fundamental parts.

Alternatively, a far less radical redesign would be turbines running at a much more forgiving regime feeding electric motors.

The philosophy in aerospace is more to build a better engine rather than to have more engines, and this extends to every aspect of aircraft design. Engines are already built to contain catastrophic failure, and the planes themselves remain functional for all but the most extreme situations. We're at the point where essentially every lost aircraft is a compound failure, with significant human factors contributing to the event. It's likely that we're on the pareto front of what engineering can reasonably accomplish, and the only gains in safety either barely nudge the needle of what we would notice (better materials, say), or difficult for the market to accept (removing pilots altogether).

Aerospace RND has been looking into hybrid propulsion systems for a long time. If there's one thing they aren't shy about pushing, it's the ability to go higher, faster, more efficiently. Such systems aren't used because they aren't yet good enough.

There's no reason think that removing pilots altogether would enhance safety. Military experience has shown that mishap rates for unmanned aircraft are significantly higher than similar crewed aircraft. Routine flight operations can be automated pretty well now but where human pilots really earn their pay is with handling emergencies and other unexpected situations. The variety of potential emergencies is effectively infinite so it's simply impossible to write and test code to handle them in advance. Instead pilots have to improvise in real time based on intuition and first principles logic. Current AI technology still isn't capable of that.
When I last looked into it (admittedly a number of years ago now) this was true for remotely piloted aircraft, but there wasn't enough data on systems that pilot themselves with humans doing the navigating.

I'm not convinced that humans are particularly effective in emergency situations, especially when they're expected to go from monitoring systems that work 99.99% of the time, to suddenly aviating with alarms going off everywhere. I guess there's not really much of an alternative as it currently stands, but seeing how effective agentic AI is at chewing through data and analyzing systems makes me think that eventually, such systems will be used if they ever get to the necessary level of reliability.

LLM based agentic systems can never meet current FAA certification requirements for civil aircraft. The problem is that the internal logic is essentially a black box and there's no way to verify that it won't go off and do something totally bizarre in an unpredictable way. Now you could argue that human pilots are subject to the same limitation, and there have been a few cases where humans have intentionally crashed airplanes, but we have an intuitive model of how other human minds work and in an emergency you can depend on human pilots to at least try to save themselves.
Lol.

Do you think todays aircraft are not designed with the idea that the engine can fail?

And if you have unreliable components do you think redundancy is going to save you?

And lets be real - there already exist a aerospace arena where you have a higher number of CAT-events - it's called the military. And they deal with it by having a parachute for each passenger..

No - in effect building jet-engines (that are commercially viable i.e. fuel and efficeny) is not a easy to disrupt business. And the cost of entering it would be - high. And the benefit, well less obvious.

> Do you think todays aircraft are not designed with the idea that the engine can fail?

Of course they are - but the engines are also designed to be extremely reliable, and that's why you get away with two engines on long flights over water, something previously only available for planes with four engines.

> No - in effect building jet-engines (that are commercially viable i.e. fuel and efficeny) is not a easy to disrupt business.

That's true. My point being that building a better jet engine might be the hardest way to disrupt the business - making a better propulsion system, which might or not include a jet engine, is a less difficult approach. If you have an electric plane with two motors, a big APU-like turbine charging a battery and powering the motors, you might get away with a cheaper turbine, running in less extreme regimes, and still have a more fuel efficient plane requiring less maintenance than a pure turboprop would.

You don't win a stacked game by playing it by the rules. You win by changing the game to another one you can actually win. China did that with cars already.

Aerospace as a discipline has tried just about every propulsion system under the sun. What you're proposing has already been flight tested on an unmanned vehicle, albeit with many smaller props for a larger effective prop disk than the two you're proposing. This is actually better, because electric motors want to use rpm control, so you need to keep the moment of inertia of the propellers low. The efficiency penalty of smaller props is overcome by having many of them arranged closely together to create a large effective prop disk.

For a hybrid system to be worth it, you need to claw back more efficiency than you lose in going from mechanical energy to electrical energy, and then back again. For cars, this is generally the case, because they're always accelerating and decelerating. Their wide operating band means that the engine will always be a game of compromises, which is why sticking a motor and battery in the loop and decoupling the engine from the wheels is beneficial. But planes aren't like that; they go from setpoint to setpoint, and they stay in a given configuration for long periods of time. They have very narrow, highly optimized operating bands, so hybridization just isn't as effective.

> For a hybrid system to be worth it, you need to claw back more efficiency than you lose in going from mechanical energy to electrical energy, and then back again.

For short-haul you spend a lot of time climbing and descending in relation to long flights, so the plane spends less time at the optimum the engines were designed for (cruise), so, if the power unit can be at the peak efficiency throughout the flight, with extra energy being supplied by the onboard battery for take-off and the power unit be shut down for descent, we might get to a point where it's economically viable, depending on battery operating costs and weight.

You are right to point out the aerospace industry has tried everything conceivable to see what sticks, but technology evolution sometimes throws us a curveball.

> If you have an electric plane with two motors, a big APU-like turbine charging a battery and powering the motors, you might get away with a cheaper turbine, running in less extreme regimes, and still have a more fuel efficient plane r

This works for hybrid cars because the power demand when driving varies widely, as does the output speed. The 'hybrid' bit gets huge gains by always running the engine at optimal rpm+throttle, and using the battery to cover peaks and absorb troughs (regen).

A plane cruises for many hours at a fairly constant speed and throttle, which is designed to hit peak efficiency of all components. The 'hybrid' design therefore falls far behind on weight, efficiency and cost.

> A plane cruises for many hours

This is why short-haul flight will be the first to adopt hybrid propulsion.

That's correct to an extent. It could never work for long haul flights due to the weight penalty but there is potential for regional flights. Current airliner turbine engines are sized to deliver enough thrust to safely take off and climb even if one engine fails. In theory the necessary excess thrust could be delivered by a hybrid system during critical phases of flight. We might see that for flights like SFO to LAX in a few decades.
Is aviation encumbered with patents like software development is?
For aerospace it's more like asking if Google, Meta, and Apple are encumbered by patents, because they're all big players. The smaller players tend to do one hyper-specific thing for a big player.

Also for aerospace the patents are more legitimate. Software is encumbered by stupid patents <obvious idea> but on a computer! whereas aerospace patents are more legitimately about hardware that indeed took years and millions to develop and optimize.

> ...whereas aerospace patents are more legitimately about hardware that indeed took years and millions to develop and optimize.

Something that leaps out at me reading through semiconductor and aerospace patents is a noticeable fraction of them are basically saying, "hey, <non-obvious process understanding that pushes our limits of comprehension of physics required> to achieve some desired effect was found to be useful, but it consumed <years and millions to develop and optimize> because it was such a convoluted journey filled with zillions of dead ends, so we want a patent on that because the end result only looks obvious in hindsight". I don't see as much of this in software at this time, though I suspect it may change in the future.