This makes no sense to me. Don't you also need cryogenic systems to keep the H2 cold? Wouldn't those use waaaaay more energy than what you save with superconducting motors? Maybe they are talking about short haul flights where the H2 is ground cooled and then used as a cold sink but then in order to keep your electronics cold you're carrying lots more fuel than you need. TFA was too thin to pass the sniff test.
The idea is that a large-scale LH2 flow into the system is being consumed, and perforce heated, and may be used as refrigerant on the way there. It makes perfect sense. Rockets do this today, as indeed they have done from the earliest days, sending liquified gases through channels in the engine bell and combustion chamber before burning, keeping them both from vaporizing. Here, the very high efficiency of electric-dr…
Airbus pioneers a superconducting powertrain cooled by liquid hydrogen
11–20 of 37 posts
Re: Airbus pioneers a superconducting powertrain cooled by liquid hydrogen
#12This makes no sense to me. Don't you also need cryogenic systems to keep the H2 cold? Wouldn't those use waaaaay more energy than what you save with superconducting motors? Maybe they are talking about short haul flights where the H2 is ground cooled and then used as a cold sink but then in order to keep your electronics cold you're carrying lots more fuel than you need. TFA was too thin to pass the sniff test.
Re: Airbus pioneers a superconducting powertrain cooled by liquid hydrogen
#13This makes no sense to me. Don't you also need cryogenic systems to keep the H2 cold? Wouldn't those use waaaaay more energy than what you save with superconducting motors? Maybe they are talking about short haul flights where the H2 is ground cooled and then used as a cold sink but then in order to keep your electronics cold you're carrying lots more fuel than you need. TFA was too thin to pass the sniff test.
Motors are solid 3D structures. The more power you put in not superconducting, the more heat you have to extract. Superconductors mean you only need to keep your refrigerant cool, and that's a product of insulation effectiveness, not power output.
In electric, heat is the enemy and inefficient.
In combustion, heat is a key component of the thermodynamic efficiency, unavoidable, and effectively only limited by material tolerances.
(I didn't major in physics, so someone keep me honest on the ceiling / floor efficiency equations for combustion engines?)
Re: Airbus pioneers a superconducting powertrain cooled by liquid hydrogen
#14Re: Airbus pioneers a superconducting powertrain cooled by liquid hydrogen
#15But the problems with hydrogen as an aviation fuel are many:
- hydrogen embrittlement of containers
- volatility (compared to Jet A). Since hydrogen is the smallest molecule, it can escape any container.
- distribution (world-wide locations and airport safety)
- containment weight and condensation
- containment integrity at low temperatures (airplanes flex and fuselage fasteners fail around 33,000 cycles.)
And ffs, the Hindenburg:
https://en.wikipedia.org/wiki/Hindenburg_disaster
https://www.avweb.com/ownership/fuel-news/williams-internati...
Re: Airbus pioneers a superconducting powertrain cooled by liquid hydrogen
#16This makes no sense to me. Don't you also need cryogenic systems to keep the H2 cold? Wouldn't those use waaaaay more energy than what you save with superconducting motors? Maybe they are talking about short haul flights where the H2 is ground cooled and then used as a cold sink but then in order to keep your electronics cold you're carrying lots more fuel than you need. TFA was too thin to pass the sniff test.
Re: Airbus pioneers a superconducting powertrain cooled by liquid hydrogen
#17I have estimated that an Airbus A320 generates something on the order of 80 MW during takeoff. A hydrogen-powered aircraft, for the same freight load, will have benefit of efficiencies not available to an A320, so the needed power will be less, but I don't know how much less. The 0.5 MW system described looks like a good first step, but should be scaled up quickly. Results will be immediately useful for co-generation…
In general, a modern fuel cell is ~60% efficient at turning chemical energy into electricity, and an electric fan is ~4x as efficient at turning electricity into thrust when compared to a turbofan engine turning chemical energy into thrust.
So ignoring transmissions losses (which would probably be really low anyway if ran on superconductors...) you'd need about 40% of the power of a modern jet to do the same work. There is clearly a lot of scaling work needed, and I don't see a fuel cell/electric aircraft beating existing ones anytime soon if you ignore the emissions, but at least this clearly shows that there is a future for mass commercial aviation once burning carbohydrates is no longer acceptable.
Re: Airbus pioneers a superconducting powertrain cooled by liquid hydrogen
#18The failure modes are going to be interesting, to say the least...
You might be able to save the weight of any fire suppression systems.
Re: Airbus pioneers a superconducting powertrain cooled by liquid hydrogen
#19This makes no sense to me. Don't you also need cryogenic systems to keep the H2 cold? Wouldn't those use waaaaay more energy than what you save with superconducting motors? Maybe they are talking about short haul flights where the H2 is ground cooled and then used as a cold sink but then in order to keep your electronics cold you're carrying lots more fuel than you need. TFA was too thin to pass the sniff test.
Probably not. Cryogenic liquids like liquid H2 are typically stored in dewers, which use a vacuum as the primary insulation, along with silvered surfaces and layers of mylar film to reduce radiation losses. We've been able to make dewers with boil off rates of 1% per day or better for decades. That's more than low enough that you don't need any refrigeration at all for an aircraft application where the flight just lasts a few hours anyway.
Most likely they'll actually use less effective insulation to save weight. Fortunately for them, cryogenic liquids are commonly used in rockets, so there's already lots of know-how and technology out there for making lightweight cryogenic insulation.
Re: Airbus pioneers a superconducting powertrain cooled by liquid hydrogen
#20Earlier quoted context omitted.
Motors are solid 3D structures. The more power you put in not superconducting, the more heat you have to extract. Superconductors mean you only need to keep your refrigerant cool, and that's a product of insulation effectiveness, not power output.
This is the difference between electric and combustion powertrains, no? In electric, heat is the enemy and inefficient. In combustion, heat is a key component of the thermodynamic efficiency, unavoidable, and effectively only limited by material tolerances. (I didn't major in physics, so someone keep me honest on the ceiling / floor efficiency equations for combustion engines?)
Combustion engine's are also limited by Carnot cycle engine efficiency - about 64% theoretically, no more then 50% in the real world. So you're still going to wind up having to dump progressively more heat from a fixed surface area.