Earlier quoted context omitted.
Yeah this is something people keep forgetting. The reason fossil fuels have such an impact is because the industry is happening at such a scale. Solar and wind are working at miniscule size ... and ... "no" impact (well, wind clearly has impact already, but ... let's forget that). Well actually, solar does have an impact. In Spain there's a couple large wind farms I visited and ... not that it should surprise anyone…
I think Fission would be great if we had somewhere to put the waste, if it didn't cost $10 billion dollars to set up a plant and people weren't phobic of it. Overall Nuclear makes more sense than coal and arguably more sense than wind and solar. But then there's the risk of the meltdown. No politician, no utility CEO, no corporation commission is going to take the risk of a meltdown when the political cost of pumping…
Why is nuclear fusion so hard?
101–110 of 182 posts
Re: Why is nuclear fusion so hard?
#102Earlier quoted context omitted.
Yeah, it's probably a conservative number. But the Toronto area (~20% of Canada's population) would not be much different from Chicago, New York, Boston, Philadelphia, etc. And yeah, Canada has a lot of land, but once we ask Canadians "How would you like to chop down 5 Torontos worth of forest to cover them in silicon panels and make it into a lifeless desert?", then maybe some people will reconsider the relative mer…
5 Torontos worth of forest is nothing. In BC for just the last two years we lost forest half the size of Switzerland to fires. If you think how much land is cleared and maintained clear for agriculture in Canada, 5 Torontos is a rounding error. Land is cheap and abundant it's a non-issue for the kind of area we'd need to even power the whole world 100% on solar. Habit losses would be more than made up for by not cont…
Re: Why is nuclear fusion so hard?
#103Earlier quoted context omitted.
My big problem with nuclear (fission) is that while on paper it looks like a great solution, in practice our civilizational apparatus does not appear to be up to the task of long-term responsible implementation. Fission power looks like a long game of hot potato, where everyone hopes they won't be the ones on the hook when the eventual equipment failure, natural disaster, or time to decommission eventually arrives. (…
I posted further up thread, and I am not an expert, that thorium based nuclear power may be safer with less dangerous waste and potential for weaponization.
"Don't believe the spin on thorium being a greener nuclear option"
and
https://thebulletin.org/2018/08/thorium-power-has-a-protacti...
"Protactinium separations provide a pathway for obtaining highly attractive weapons-grade uranium 233 from thorium fuel cycles. The difficulties of safeguarding commercial spent fuel reprocessing are significant for any type of fuel cycle, and thorium is no exception."
Re: Why is nuclear fusion so hard?
#104Would zero gravity be helpful in order to make it easier to get fusion working?
Re: Why is nuclear fusion so hard?
#105Then there's the first wall problem.[2] Fusion generates heat and neutrons. Lots of neutrons, which break atoms apart. Finding something which will stand up to that in an experimental machine has been tough. Finding something which will stand up to that in a long term production environment is really tough. In a fission reactor, you can use water to slow and stop the neutrons, and you just get some tritium as a byproduct. A fusion reactor's first wall faces a vacuum, so that's out.
Re: Why is nuclear fusion so hard?
#106> Some kinds of instability are slow enough that we can control them. For example bicycles are unstable, but many of us eventually learn to ride them. Actually, bicycles are only unstable when they are moving slowly (or stopped), and most people never learn how to stabilize one in this unstable regime. It can be done, but it's very, very hard.
Re: Why is nuclear fusion so hard?
#107This is somewhat tangential to the specific issue here, but I was surprised by this: At the center of the Sun, fusion power is estimated by models to be about 276.5 watts/m3. Despite its intense temperature, the peak power generating density of the core overall is similar to an active compost heap, and is lower than the power density produced by the metabolism of an adult human.[1] So practical fusion power requires…
> The low power outputs occurring inside the fusion core of the Sun may also be surprising, considering the large power which might be predicted by a simple application of the Stefan–Boltzmann law for temperatures of 10 to 15 million kelvins. However, layers of the Sun are radiating to outer layers only slightly lower in temperature, and it is this difference in radiation powers between layers which determines net power generation and transfer in the solar core.
So if a m^3 of sun core was moved to a powerplant it would generate a lot more energy.
Re: Why is nuclear fusion so hard?
#108This is probably another ignorant question, but why can't we "aim" and shoot protons at each other to make them smack together without requiring all that heat and pressure?
For instance, lithium-6 is a stable solid metal with the right nucleon composition and binding energy to fuse into carbon-12. I have no idea if it actually would to a useful degree.
Re: Why is nuclear fusion so hard?
#109> Some kinds of instability are slow enough that we can control them. For example bicycles are unstable, but many of us eventually learn to ride them. Actually, bicycles are only unstable when they are moving slowly (or stopped), and most people never learn how to stabilize one in this unstable regime. It can be done, but it's very, very hard.
Now, what would be great is if that analogy could be stretched further. It would pretty wonderful if someone found a way to do fusion where, like a bike, it's stable once it gets going.
Re: Why is nuclear fusion so hard?
#110This is somewhat tangential to the specific issue here, but I was surprised by this: At the center of the Sun, fusion power is estimated by models to be about 276.5 watts/m3. Despite its intense temperature, the peak power generating density of the core overall is similar to an active compost heap, and is lower than the power density produced by the metabolism of an adult human.[1] So practical fusion power requires…
That also shows why fusion power always centers around exotic isotopes like deuterium and tritium rather than plain hydrogen. The reaction paths needed to fuse plain hydrogen are so improbable that they don’t happen fast enough to be useful.