"The design could produce a reactor that would provide electricity to about 100,000 people, they say." It would be a huge step forward if this can be built, but there still would be a long way to go. To scale that to "electricity for everyone in the USA", you would need to build about 3,000 of these (or build much bigger ones). And that's for _current_ electricity use, not if everybody starts driving an electric car.…
New design could finally help to bring fusion power closer to reality
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Re: New design could finally help to bring fusion power closer to reality
#12The challenge is the materials that compose the reactor become brittle and highly radioactive far faster than usable. Controlled fusion as an energy source isn't just challenging because fusion is difficult, it's also challenging because materials don't handle neutron bombardment well.
I think where this advancement is going to really help is in the iteration phase due to lower build costs but I'm still waiting for a solution to the radioactive economic issues associated with the materials these reactors would be constructed from.
Re: New design could finally help to bring fusion power closer to reality
#13http://arxiv.org/abs/1409.3540
Interesting that the liquid blanket is the same as in the molten-salt thorium reactors (lithium beryllium fluoride (FLiBe)).
Re: New design could finally help to bring fusion power closer to reality
#14The big problem with controlled fusion, as I understand it, isn't creating a net energy positive fusion reactor like this article implies. The physics is already there, we just need the engineering to catch-up. The challenge is the materials that compose the reactor become brittle and highly radioactive far faster than usable. Controlled fusion as an energy source isn't just challenging because fusion is difficult, i…
"Another key advantage is that most of the solid blanket materials used to surround the fusion chamber in such reactors are replaced by a liquid material that can easily be circulated and replaced, eliminating the need for costly replacement procedures as the materials degrade over time. "It's an extremely harsh environment for [solid] materials," Whyte says, so replacing those materials with a liquid could be a major advantage."
Re: New design could finally help to bring fusion power closer to reality
#15"The design could produce a reactor that would provide electricity to about 100,000 people, they say." It would be a huge step forward if this can be built, but there still would be a long way to go. To scale that to "electricity for everyone in the USA", you would need to build about 3,000 of these (or build much bigger ones). And that's for _current_ electricity use, not if everybody starts driving an electric car.…
As long as the cost per kWh is reasonable, smaller unit size is a good thing, since it lowers capital requirements. That's why a lot of people are pushing for small modular fission reactors.
Also smaller reactors have less fuel inside and the new MSR designs don't produce plutonium or other weapons-usable byproduct, so they're less attractive targets for terrorists, dirty bomb builders and other threats, not to mention the reduced risk in failure case with the MSR technology.
Re: New design could finally help to bring fusion power closer to reality
#16""" Tokamak Energy is particularly focused on Spherical Tokamaks, pioneered at Culham, because these compact devices can achieve a much higher plasma pressure for a given magnetic field than conventional tokamaks, i.e. they are more efficient.
Theoretical calculations show that a Spherical Tokamak using high fields produced by HTS magnets could be significantly smaller than other fusion machines currently proposed. For example, a compact ST power plant would have a volume up to 100 times smaller than ITER """ -- http://www.tokamakenergy.co.uk/about-us/
Re: New design could finally help to bring fusion power closer to reality
#17The big problem with controlled fusion, as I understand it, isn't creating a net energy positive fusion reactor like this article implies. The physics is already there, we just need the engineering to catch-up. The challenge is the materials that compose the reactor become brittle and highly radioactive far faster than usable. Controlled fusion as an energy source isn't just challenging because fusion is difficult, i…
Isn't that problem solved with aneutronic fusion?
https://en.wikipedia.org/wiki/Aneutronic_fusion
Of course we should focus on getting fusion working (working in the sense of providing more energy than we put in), regardless of whether we use the aneutronic approach or not, but as the field develops I'm optimistic we'll find ways to have robust fusion reactors.
Re: New design could finally help to bring fusion power closer to reality
#18Re: New design could finally help to bring fusion power closer to reality
#19The big problem with controlled fusion, as I understand it, isn't creating a net energy positive fusion reactor like this article implies. The physics is already there, we just need the engineering to catch-up. The challenge is the materials that compose the reactor become brittle and highly radioactive far faster than usable. Controlled fusion as an energy source isn't just challenging because fusion is difficult, i…
This allows the vacuum vessel to be replaced quickly,
mitigating first wall survivability concerns, and permits a
single device to test many vacuum vessel designs and
divertor materials.
[...] The replaceable vacuum vessel is made of corrosion-
resistant Inconel 718, which maintains high strength and
corrosion resistance at elevated temperatures.
[...] Little research has been done regarding how Inconel
718 responds to the irradiation environment of a fusion
device [82]. However, studying the response of components to
fusion neutron effects is part of the motivation for
ARC. [...] It is unknown if Inconel 718 would behave
similarly in a fusion neutron spectrum, but one expects the
vacuum vessel would survive for at least 6-12 months (15-30
DPA).
[0] http://arxiv.org/abs/1409.3540Re: New design could finally help to bring fusion power closer to reality
#20The big problem with controlled fusion, as I understand it, isn't creating a net energy positive fusion reactor like this article implies. The physics is already there, we just need the engineering to catch-up. The challenge is the materials that compose the reactor become brittle and highly radioactive far faster than usable. Controlled fusion as an energy source isn't just challenging because fusion is difficult, i…