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Fusion energy breakthrough by Livermore Lab

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Re: Fusion energy breakthrough by Livermore Lab

#251
It’s insane how much cynicism I’m seeing here. I know people who are nuclear scientists at LLNL - if they’re excited about this then it’s a big deal. The experiment actually created more energy than expected and damaged the sensors.

This website is seriously infested with reflexive contrarians and it’s a not healthy.

Re: Fusion energy breakthrough by Livermore Lab

#252
2.1 megajoules of energy in lasers to make 2.5 megajoules of heat energy.

If you turned that heat energy into electricity (our ultimate goal here) you'd have:

(2.5 megajoules produced * 50% loss in conversion to electricity) - 2.1 megajoules input = negative 0.85 megajoules generated

This is still cool of course, but we're still way off from making this anywhere near feasible.

Re: Fusion energy breakthrough by Livermore Lab

#253
post #71

Good write-up to temper expectations at https://twitter.com/wilson_ricks/status/1602088153577246721 My TLDR (from a layman): * The output is greater than the energy *in the lasers*, but the lasers deliver 1% of the energy required to power them. Need 100x improvement to break even. * Converting the generated energy into electricity would cut the output in half. We need a further 2x improvement here, so it's ~200x to…

Helion tech seems to be interesting in that they use the electricity directly so avoids the costly conversion via steam/turbines etc.

Re: Fusion energy breakthrough by Livermore Lab

#254
post #245
post #235

Earlier quoted context omitted.

I don't see that scaling anytime soon, still more than two orders of magnitude away. But never say never.

The exact numbers depend on the form of fusion in question, but fusion does have some several places where it has quite substantial x^n growth possibilities, where "n" is definitely greater than one and can be greater than two at times, sometimes even substantially so. This means that there is some real, concrete hope for improvement in a way that, say, solar could never improve more than 4-5x where it is now because…

This is laser based fusion, which is super cool, but it might be a stretch to expect 200x more efficient lasers. Still maybe there's other things you could do, like make a bigger fusion reaction. Hydrogen bombs do it, so maybe.

Re: Fusion energy breakthrough by Livermore Lab

#255
I have personally taken a tour of the NIF at Livermore. The guide was an old hand, who constantly remarked about the efforts of NIF towards "stockpile stewardship," ie the maintenance of the US arsenal of nuclear weapons. It seemed like NIF was all about the stockpile stewardship first, and fusion research was a secondary consideration.

The capability of the NIF to get positive energy from the energy that they impart on the Hohlraum itself is neat, but I constantly discount any milestones that Livermore/NIF report, because the inertial confinement approach has such higher barriers to commercialization than tokamak style approaches, that I just consign it to "boondoggle" in my head.

Yeah, the lasers could be 20x more efficient, and yeah, they probably could figure out how to pump 10s of targets into the chamber per second, but the energy extraction is just completely missing from the considerations. The engineering challenges are a whole 'nother level for NIF, a big barrier to usability.

Re: Fusion energy breakthrough by Livermore Lab

#256

Earlier quoted context omitted.

The analogy doesn't really work. The utility of a steam engine was obvious to antiquity, but they did not have the materials technology to build it. They did not need basic science to do steam power. The first practical steam engine predates the understanding by chemists of combustion. It was invented when phlogiston was still the going theory. NIF on the other hand is already a miracle of materials science. An absol…

People in antiquity did build a functioning steam-powered engine, but dismissed it as a curiosity. https://en.wikipedia.org/wiki/Aeolipile

This fascinating article goes into more detail on the reasons why: https://acoup.blog/2022/08/26/collections-why-no-roman-indus...

They correctly dismissed it as a curiosity because it was far too inefficient to do anything useful with the amounts of fuel they would have had available. They couldn't have made a more efficient one because they didn't have any idea how to construct reasonably uniform pressure-bearing cylinders.

Real innovation didn't happen until much later on, at British coal mines because 1. there was lots of fuel because it's already at a coal mine, 2. there was a useful task for the work in pumping water out of the mine, and 3. materials technology had advanced enough to make it possible to construct an engine that did a useful amount of work from a manageable amount of fuel.

Re: Fusion energy breakthrough by Livermore Lab

#257

Earlier quoted context omitted.

"That’s because they had to use 500 MJ of energy into the lasers to deliver 1.8 MJ to the target – so even though they got 2.5 MJ out, it’s still far less than the energy they needed for the lasers in the first place. In other words, the energy output (largely heat energy) was still only 0.5% of the input."

Partly that's because they use laser tech from the 1990s, with less than 1% efficiency. Now we have NIF-class lasers with over 20% efficiency. https://physicstoday.scitation.org/do/10.1063/pt.6.2.2021102...

They'd still be getting only ~1/4 of power input with a 20% efficiency laser.

Re: Fusion energy breakthrough by Livermore Lab

#258
post #71

Good write-up to temper expectations at https://twitter.com/wilson_ricks/status/1602088153577246721 My TLDR (from a layman): * The output is greater than the energy *in the lasers*, but the lasers deliver 1% of the energy required to power them. Need 100x improvement to break even. * Converting the generated energy into electricity would cut the output in half. We need a further 2x improvement here, so it's ~200x to…

To be honest, looking at those numbers, that doesn't look 10-20 years away. We'd need Moore's law style improvement in efficiency and to productionize it. So we're really saying 20 years at best for the technology, and then let's look at quickly we can build Nuclear power plants today... uh oh. In the UK for example it has taken 12 years to even agree to build a new Nuclear plant on a site that already has Nuclear plants!.

Re: Fusion energy breakthrough by Livermore Lab

#259
post #235

Earlier quoted context omitted.

"That’s because they had to use 500 MJ of energy into the lasers to deliver 1.8 MJ to the target – so even though they got 2.5 MJ out, it’s still far less than the energy they needed for the lasers in the first place. In other words, the energy output (largely heat energy) was still only 0.5% of the input."

I don't see that scaling anytime soon, still more than two orders of magnitude away. But never say never.

If they replaced the lasers in this building from the 90's with a modern light source it would immediately do two orders of magnitude. Research like this needs to focus on solving, and experimenting with one problem (in this case the physics of inertial confinement fusion). They are not _trying_ to build something which gets "net power out of the building". So don't assume you're net in, net out ratios are representative of what a plant targeted doing that would be.

It's quite easy to see that replacing the lasers, the capacitors, etc. with more modern technology would have an immediate effect. But it doesn't matter until doing the reaction at all makes sense. That's what they are focusing on.

Re: Fusion energy breakthrough by Livermore Lab

#260
This is no different than the hundreds of "fusion breakthroughs" we've been reading about over the past 20+ years. Progress is good, sure, but we're tired of celebrating small incremental gains.

A leap forward or two might be worth celebrating along the way, sure, but we're at least 3 orders of magnitude away from actually generating net power here.

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