Nazi Germany had no hope of making an atomic bomb, uranium cubes reveal
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Nazi Germany had no hope of making an atomic bomb, uranium cubes reveal
Unofficial Hacker News client; not affiliated with Y Combinator.
WalterBright · · focus · HN ↗
fusslo · · focus · HN ↗
If I remember right, the Japanese scientists confirmed signs of an atomic explosion, but the leaders were stuck in a debate as to whether or not to accept the findings
Maybe someone better educated can correct me if I didn't get that history quite right
Edit:
<a href="https://en.wikipedia.org/wiki/Yoshio_Nishina#Atomic_bomb" rel="nofollow">https://en.wikipedia.org/wiki/Yoshio_Nishina#Atomic_bomb
<a href="https://en.wikipedia.org/wiki/Bunsaku_Arakatsu" rel="nofollow">https://en.wikipedia.org/wiki/Bunsaku_Arakatsu (check out his academic advisor!)
7speter · · focus · HN ↗
AngryData · · focus · HN ↗
Contrary to Fallout lore, most nuclear bombs dont leave much concentrated radioactive material unless it was done on purpose. You either need a shittier and smaller explosion with the same material, or you need a ground burst which reduces the effective blast area.
The US was on ground zero in under 2 weeks in Japan and couldn't detect anything over the background in radioactive isotopes.
Lumich · · focus · HN ↗
Would it? How so?
First, the notion of “normal burns from being near a firebomb” is inadequate. There are various types of firebombs. The ones “generously” employed by Uncle Sam against the Japanese (primarily civilians, and later idem against the Koreans and the Vietnamese) are napalm bombs. The way they work is that burning napalm is blasted about in lumps and sticks to anything it hits, including clothes and human skin. The injuries caused by napalm lumps are special. They're called keloids.
Figure 9.3 on page 171 of Palmer's book (free PDF available, link in 49938615, which is among the comments on this topic) shows keloid burns in Hiroshima bombing victims. These have been interpreted as “flash burns”. However, this defies common sense. First, they show characteristically strong locality, irregular shapes, sharply defined edges, and look exactly like napalm burns. Second, how would you explain a hypothetical “flash” (of whatever nature) from a distance more than a couple inches away to produce such conspicuously localized injuries? (And even from ten inches away you'd need strong directionality.) The forensics flatly contradict and preclude such a “flash” interpretation.
Palmer, who is an MD, found that not much can be found about napalm in the medical literature, which curiously contrasts with its very wide-spread application against humans by the U.S. Air Force (p.140, referred to on p.175 and p.241):
WalterBright · · focus · HN ↗
Books:
Code-Name Downfall by Allen
Downfall by Frank
The surrender was due to their fear that the US had a third bomb and would drop it on Tokyo.
defrost · · focus · HN ↗
Perhaps that "third bomb on Tokyo" fear was a bit made up and ahistoric.
Lumich · · focus · HN ↗
I'm curious. We know that there's a lot of energy in the atom. Some of it can be released by fission, which results in fission products, radiation, and heat.
However, there doesn't seem to be anything in the process that would account for any sort of explosion. Radiation doesn't contribute. Heat alone is insufficient. In addition, you need an instant and manyfold increase in the volume of matter generated on the other side of the reaction. With TNT, for example, this increase is three orders of magnitude. Fission products are completely insignificant in this respect.
So nothing comparable exists for nuclear fission, else it would be a problem for reactors. So how can it explode? What is the mechanism?
womble2 · · focus · HN ↗
Reactors don't explode because the amount of heat then generate is carefully monitored and matched the the rate at which that heat can be pulled from the reactor and converted into work.
Lumich · · focus · HN ↗
It is usually stated, however, that the X-rays go first, and at the speed of light. Plasmarization, OTOH, would be subject to some inertia, however little, wouldn't it. So there'd be a delay before plasma formation, and the X-rays would already be “over the horizon” (joke – they wouldn't follow Earth's curvature, would they).
womble2 · · focus · HN ↗
Someone · · focus · HN ↗
That’s what causes the shockwave.
As a corollary, having more material around the bomb that can capture some of its radiation means a bigger shockwave, but less radiation further away from the detonation.
Lumich · · focus · HN ↗
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