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I disagree in a small way. Telsa / SpaceX / Elon - focused on ground up physics principals. They said things like, how can we make a better battery pack and wi
by donor20 6y ago
I disagree in a small way.
Telsa / SpaceX / Elon - focused on ground up physics principals. They said things like, how can we make a better battery pack and will the math then work for a good EV car. They showed to their satisfaction that the answer was yes, and built from there to a degree. Their battery / powertrain work has been consistently good before any of the huge capital efforts, and the path forward was pretty well defined.
Same with their rocket engines. They iterate and qualify pretty quickly.
ITER and these folks are spending billions on what is actually ancient tech with really no realistic (I don't think) path to sustainable commercial power even theoretically in any reasonable time horizon. This is the Space Launch System approach, gear up and go on old tech.
We do need someone in a lab (Tesla / SpaceX style) iterating, and then proving out key physics / components. The problem with ITER, you CANNOT stop funding it, it's just gobbling up all the money because the number of jobs now tied to this - it's a jobs machine basically.
At spaceX it doesn't feel like their are a lot of sacred cows. These maga projects are pure sacred cow it feels like sometime. It's private / personal capital driven.
- coliveira 6y agoTesla/SpaceX are not doing anything closer to the research needed for Plasma discovery, they just put in industrial production technologies that already existed. Some of these technologies, like space exploration, existed for 50 years before SpaceX started. If you're looking for a model for Plasma exploration, the model should be closer to Manhattan Project/Man on the Moon rather than yesterday's tech that SpaceX deals with.
- XorNot 6y agoSpaceX is very nearly an exercise in how messed up the government procurement and funding process is in the US. A lot of SpaceX's innovations are things like "maybe you friction stir weld aluminum panels together rather then machining a solid block into a tube". This is innovation that could've been done anytime in the past few decades by the big players, but they never had an incentive. Even the Raptor engine, though it was never widely used, was initially built by the Russians decades ago. The concept is known to work.
- cpgxiii 6y agoSpaceX's innovation was looking at the market and deciding that Iridium was right but about two decades too early. A lot of people in the industry (and a number of governments as well) lost big when Iridium went bankrupt, and quite understandably the large players were content to stay in their lane. After all, ULA came about basically because the DoD needed two technologically diverse launch platforms, but wasn't willing to commit to the launch cadence needed to keep both commercially viable under separate parent companies. If there hadn't been a future with customers ready to fly, and launching enough to survive a couple launch failures, SpaceX just would have been the upstart with high insurance costs. Hardware-wise, SpaceX did a great job gathering the best of what had already been done and proven. Friction stir welding? Used to build Delta II, Delta IV, Atlas V, Space Shuttle tank and more. Pintle injectors? Lunar Excursion Module. Semi-balloon tanks? Proven on Atlas I and II, and Centaur. Then, once they had something that flew, and a contract from NASA to keep it flying, they iterated on it to make it reusable. Much like the story of Boeing with the KC-135 and 707, a key early contract was enough to support the program and subsidize further development.
- rayiner 6y ago> Same with their rocket engines. They iterate and qualify pretty quickly. They iterated starting from a LOX/RP-1 rocket engine cycle that has been proven to work and in widespread use for half a century. Fusion is totally different.
- XorNot 6y agoThe ground up physics principles for fusion give you ITER at best. Everytime someone has a brand new concept, they get some promising results and then reach the same problem: we need to build a vacuum chamber 10 meters in diameter to see if it'll produce power. And then you're back to ITER - which is what its exactly trying to do (the internal diameter of ITER is...about that scale). We know rockets work inside an envelope we can see, it's a matter of how to do it cheaply. What we know, today, is that fusion doesn't work in envelopes much smaller then ITER.
- nardi 6y agoIt seems like there are a dozen or more fusion startups that are pursuing concepts that are much smaller than ITER. I'm no nuclear physicist, but it seems like there might be room for innovation still.
- SiempreViernes 6y agoThe claim isn't that there is only one way to build fusion reactors, the claim is simply that there is only one well-developed design. Small prototypes don't mean immediate progress in fusion, the original tokamak was hailed as great progress in 1958 and it was less than a metre across. Until we have perfect understanding of Magnetohydrodynamics and materials science one simply cannot reliably predict the behaviour of completely new devices.
- cromwellian 6y agoThese prototypes aren't scaled down versions of ITER, the field strength of ARC is of the same magnitude of ITER, it's capable of the same pressures and confinement, only in a much smaller volume. It's like saying a 5nm CPU design is somehow the same as a 32nm CPU, even if they both had the same die size, even those the 32nm versions had far less transistors.
- SiempreViernes 6y agoI never said they were versions of ITER, my point was that the new prototypes themselves need to do most of the upscaling work that's gone into tokamaks. As for Arc, that's simply a tokamak that can't be built yet because the tech isn't ready, not sure what that is supposed to contribute, did you read the rest of this thread? To summarize: . <-- the point --> your comment
- baddash 6y agoLook up SPARC and the CFS. It sounds like they're doing exactly what you're describing.