30 karma · joined November 3, 2015
- The surface of the earth is a 2 dimensional positive curved space. To see this, draw a triangle with corners on the north pole, on the equator near Somalia and on the equator in Equador. The resulting triangle has a sum of all corners > 180 degrees.
- In a negative curved space, the sum would be less than 180 degrees. In a flat space, it is equal to 180 degrees.
- Another way to see the curvature of the surface of the earth is to observe that it's impossible to draw 2 parallel lines that do not intersect.
- The 2D torus (e.q. the surface of a donut) is flat. Test it with triangles.
- The towers of the Verrazano–Narrows Bridge are wider at their top than at their base. This has nothing to do with the earth have a positive curvature. Test it with a torus.
- 3D space is nearly always flat in the universe, especially at the surface of our planet.
- 4D space-time is not remotely flat. If I throw up a ball, it will come down. This is due the mass of the earth curving its surrounding 4D space-time. The straight line for a ball in the curved space-time looks like the ball changes directions and comes down in our flat 3D space.
- If you try to find the triangle of a sphere with the biggest sum of corners, you'll discover that the outside and inside of a triangle are interchangeable. We've entered the field of topology now and this has nothing to do with its curvature.
The only real long-term risk to geological disposal are future humans. The question the documentary adresses is 'how to communicate to future generations not to dig there'.
Also: what better place to temporarily store nuclear waste in the exact same place where it is produced where safety and security measures are already in place?
1. Isn't a business POV or about deadends and it applies to any shift in energy production.
2. I think some geologists are going to want to have a word with him concerning tectonics. Also just because US can't do it, doesn't mean it can't be done. E.g. Finland is doing it.
3. The production cost of nuclear based electricity is very weakly dependent on the price of natural uranium. A doubling of the cost in U-nat results in a cost increase of a few %. Also backstop technologies (U from seawater or Th or bomb deconstruction) are available and technologically viable (though not economically viable with oil below $150)
4. No terrorist is going to build a Pu-bomb. It's orders of magnitude more difficult and expensive than a U-bomb. Moreover, no terrorists is going to 'build' a bomb. Also, reactor grade Pu is unusable for a bomb due to its isotopic composition.
5. I'm calling BS. Freshwater consumption for energy generation is typically a few % if cooling towers are involved. As for coastal NPP's: Fukushima Daini is located 12km from Fukushima Daichi one the same coast yet nothing happened there.
Reprocessing or transmutation are alternatives to handle nuclear waste but they have in common that they're more expensive and even less acceptable to society.
Due to its unsuitability for bombs, the militaries of the world (in the '50s) didn't invest into researching Thorium. Industrial inertia (and sunk costs) and Uranium being good enough lead us to where we are today.
It is 'technically' possible to make a U-233 bomb but the effort required is so far above U-235 bombs that for any nation able to do the former, it's much easier and cheaper to do the latter.