Earlier quoted context omitted.
> During normal operation, the primary is entirely contained within the primary containment, and circulates naturally, using the differential temperature and gravity. The steam system can is used to remove heat. If it's using gravity, what happens if this whole reactor gets tilted? What happens at 10 degrees? 45? 90? 180? Are there any critical angles where it would melt down? I'm curious how you would make such a de…
>what happens if this whole reactor gets tilted? What happens at 10 degrees? 45? 90? 180? Are there any critical angles where it would melt down? Ahh i see, a flat earth believer ;)
Small nuclear reactors: tiny NuScale reactor gets safety approval
411–420 of 554 posts
Re: Small nuclear reactors: tiny NuScale reactor gets safety approval
#412Earlier quoted context omitted.
That is not really the point, it doesn't matter if there is 4 or 40 or 400 billion tons of uranium, the point is that it is finite. At some point, there is none, or better there is no more usable ressources available. This can be shifted with technology and better knowledge but it is still finite. And that is all the point I wanted to make.
The sun also will burn out eventually, and every other star as well.
Re: Small nuclear reactors: tiny NuScale reactor gets safety approval
#413Here is the NRC website about this reactor: https://www.nrc.gov/reactors/new-reactors/smr/nuscale.html Here is an interesting sub-report: https://www.nrc.gov/docs/ML2022/ML20224A525.pdf Information withheld for security reasons. One item concerns the "ultimate heat sink". What happens when the ultimate heat sink is lost? Well a design assumption is that it is not lost: https://www.nrc.gov/docs/ML2020/ML20205L410.pdf…
Nuclear engineer here. I've read through a good portion of the regulatory submission to the NRC and have a few takeaways that oppose some of the less-well-informed takes in this thread: - The reactor differs substantially from existing PWRs by encasing the primary in double containment, using natural circulation flow for both normal operation and emergency cooling. There are no pumps needed (or installed) to move coo…
Re: Small nuclear reactors: tiny NuScale reactor gets safety approval
#414Earlier quoted context omitted.
> the designers imagined many of the events you mentioned and more Designers are awesome. Sadly they were also unable to find some time in 50 years to raise a wall a few m so it can stand a Tsunami. It seems that the extra scrutiny, was not so extra in the real life when the company will need to allocate real money.
The event you are referring to was also a freak event. The Tohoku earthquake was the 4th largest _ever_ recorded and the largest ever recorded in Japan (by 0.2M, it is a log scale btw). The closest earthquake to that, in the region, in the previous 100 years was 0.7M lower (and the 6th largest ever recorded, in the area). The Tohoku earthquake also resulted in one of the largest tsunamis ever recorded. We should note…
Repeating this again is infuriating. No lives lost? seriously?
Re: Small nuclear reactors: tiny NuScale reactor gets safety approval
#415Earlier quoted context omitted.
It does, but it makes sense to explore fail-safe designs. Depending on a lack of incompetence in dangerous systems works until it doesn't. To the extent that these things can simply halt when incompetently managed, they should. If anyone disagrees, I'd like to know why they think the next hundred years are going to be so much freer of political shortsightedness and corruption than the last hundred.
Fukishima is a perfect example. Unit 1 had been retrofitted with an isolation condenser, which should have been able to prevent a meltdown even with no power, but it wasn't activated, for reasons that remain murky.
Sounds like a quite simple design indeed, and only one valve opening away from use?
Re: Small nuclear reactors: tiny NuScale reactor gets safety approval
#416Earlier quoted context omitted.
What is t here?
I assume they meant T^4 radiation (Stefan-Boltzmann law): https://en.m.wikipedia.org/wiki/Stefan–Boltzmann_law
Re: Small nuclear reactors: tiny NuScale reactor gets safety approval
#417Earlier quoted context omitted.
You'd still need a heat exchanger at some point, and you want a lot of surface area and thin walls for that.
Random thought experiment -- why not just drop it in the middle of a lifeless desert, forget about heat exchangers, and just let it slowly melt its way down through the crust of the earth? Assuming it went straight down and into the mantle, it would probably not impact the ecosystem.
If you go to the desert to make use of the space, might as well build a solar array instead.
Re: Small nuclear reactors: tiny NuScale reactor gets safety approval
#418Earlier quoted context omitted.
I'm not sure it's that simple.
It's literally a big hole with water in it; what are you unsure about?
If our smallest manmade lakes (swimming pools) can leak a lot, and our largest manmade lakes (dams) can also leak a lot the idea there's an in-between size that doesn't leak might need a bit of elaboration.
Re: Small nuclear reactors: tiny NuScale reactor gets safety approval
#419Earlier quoted context omitted.
And so a pool of water is not enough because it will boil away. A continuous flow must be present that can not be interrupted.
Around 600-700 kWh per cubic meter depending on temperature. The reactor outputs around 200 MW thermal. So if you have one of them in an olympic size swimming pool 50x25x2 meters, 2500 m^3, it'd need ~8 hours to evaporate the whole pool at full output. If you assume decay heat as 1% of regular output ( https://en.wikipedia.org/wiki/Decay_heat ), you'd need to add (or have stored) ~3 m^3 of water per hour, or slightly…