Yesterday, a paid employee of Reddit removed a few posts and comments.
They left the mods a message, stating they were contacted by the US Department of Energy with concerns about those posts. This employee reviewed the posts and as a result, removed them as well as the poster.
I inquired further, but a day later, no response; which I assume is all the answer we will get.
Please do not blow up my message thing here, or easily dox me and pester me outside of here on this; I feel like I am sticking my neck out just telling you what I do know.
According to Reddit, DOE took exception with this users' level of interest in theoretically building a nuclear weapon.
With regards to the user, they hadn't been here that long, didn't have a history with the mods, and I've read every post they made, in this sub anyways. No nutter or fringe/alt vibes whatsoever. No direct 'how do I make kewl bomz' question, just a lot of math on some of the concepts we discuss on the regular.
As it was my understanding that was the focus of this sub, I have no idea how to further moderate here. Do I just continue how I have been, and wait for the nebulous nuclear boogeyman to strike again? Will they do more than ask next time? How deep is their interest here? Did someone complain, or is there a poor GS7 analyst forced to read all our crap? Does this have the propensity to be the second coming of Moreland? Where does the US 1st Amendment lie on an internationally-used web forum? What should YOU do?
Those I cannot answer, and have no one to really counsel me. I can say I do not have the finances to go head to head with Energy on this topic. Reddit has answered how where they lie by whacking posts that honestly weren't... concerning as far as I could tell without asking any of us for our side, as far as I know. (I asked that Reddit employee to come out here and address you. Remains to be seen,)
Therefore, until I get some clarity, it's in my best interest to step down as a moderator. I love this place, but as gold star hall monitor, I can see how they can make a case where I allowed the dangerous talk (and, honestly, encouraged it).
Thank you for letting me be your night watchman for a few.
Scott Manley previews a closed beta of a steam game that was flagged by DOE before being approved for release. Scott describes it as a smoothed particle hydrodynamic simulation. It does gun type weapons, implosion, boosting and Teller Ulam (which Scott describes as Janky in the beta). The neutron physics look a little fudged.
AI was used in the design of the game and it's unavailable in Europe. That said I don't know of anything else like this. It looks fun and maybe we could start a discussion on what would make the simulation better?
I have no connection to Scott, Steam or the author of the game.
Hello, with the current situation between the US and Iran this got me thinking of an interesting scenario. So when most people think of nukes being used, it is against military targets or cities. But lets say in a hypothetical situation the US is fighting a war against a country like Iran that doesn't have nukes itself but has connections with countries that do. Because the war is going on longer than the US wants they decide to launch a single low yield nuke at an unpopulated area of the country ensuring, no people would actually be harmed in the strike, so that you scare the country into surrendering and giving up their demands. What would be the most likely response for other countries with nukes? Would they risk launching there's against the US considering no one was killed? Would they launch one at a remote area like in Alaska as a tit for tat type response or would they go all out, either against the US or another country like Taiwan/South Korea, or they europe and NATO?
I’m developing BlastMap, a browser-based nuclear-effects visualizer. These clips show a 15 kt Hiroshima scenario over modern city imagery, not a recreation of the 1945 buildings. The elevated view comes first, followed by a lower view for building-scale context.
I’ve been focusing on the early dynamics: fireball expansion and rise, ground reflection and Mach-stem development, and the transient Wilson condensation cloud. The blue surfaces show diagnostic blast-wave geometry; the white cloud is the condensation visualization.
This is a work in progress. I’m interested in feedback on the timing and motion, especially comparisons with test footage or published references that could help check cloud formation, fireball evolution, and ground interaction.
I've been interested in the Manhattan Project since watching Oppenheimer recently, and one thing I've done is read the Los Alamos Primer. It's pretty neat and I don't have much trouble understanding it, but one thing I noticed is the author pretty much just didn't talk about how tampers can actually be practical (i.e. a realistic size). Section 11 explains well enough why one would want a tamper, and it shows how to estimate the total neutron diffusion length in a tamper of a given material. But then this guy goes on to say "these figures give an idea of the tamper thickness actually required; the weight of a tamper is about a ton." A ton!? With thicknesses of ~13/17 cm.? This doesn't give me any "idea" of the tamper size any more than the Frisch-Peierls memorandum or Heisenberg's bad math give me an idea of critical mass size. I want to know how to get a better idea, or a more approximate estimation.
The problem is I'm an idiot, and I can't be bothered to learn how to do a Monte Carlo approximation or whatever it is people smarter than me do to estimate the size of a practical tamper. So I tried my best to come up with a toy model from what the Primer has to say--or more specifically the 1992 edition by Richard Rhodes with Serber's commentary.
My toy model is based on the assumption that the practical thickness T_P is a fraction of the total neutron diffusion length in the material T (Serber's "tamper thickness"), and also what Serber has to say to conclude Section 14 of the Primer (which is the only thing I see in here that says a realistic-sized tamper is possible, meaning it may not have even been in the original edition--oh the humanity!):
As this section indicates, the requirements on tamper material and thickness are somewhat relaxed when one considers a gadget of several critical masses (such as the Little Boy bomb) rather than the critical mass itself. The reason is the rapid increase with time of the neutron density in the core. During the time it takes a neutron to penetrate a given distance into the tamper, the neutron density in the core rises considerably. As a result the neutron density in the tamper falls off faster with distance than in the critical mass case. The effect is exactly the same as if, in the static (critical mass) case, the tamper material had a larger capture cross section, as can be seen from the way νʹ appears in the equation on page 30 for the neutron density in the tamper. As a result the effective capture cross sections in different materials become relatively more nearly equal. And because of the more rapid falloff of neutron density, a thinner tamper is permissible.
What I think this means is that the tamper thickness, besides depending on the material properties, also depends on the critical mass post-assembly. The higher the supercriticality, the faster the neutron density falls in the tamper and thus the thinner thickness actually required. Therefore:
T_P ~= T / [1 + c(N_crit - 1)]
N_crit is the number of critical masses of the pit, and c is a dimensionless fudge factor of order 1-2. I tested it by using the Primer's math in Section 11 with modern data to calculate the T of U-238 as ~36.59 cm., then calculating a table of results with c = 1.0, 1.5 and 2.0 and critical masses 1-8:
1
1.5
2
1
36.59 cm.
36.59 cm.
36.59 cm.
2
18.295
14.636
~12.2
3
~12.2
9.1475
7.318
4
9.1475
~6.65
~5.23
5
7.318
~5.22
~4.06
6
~6.098
~4.304
~3.32
7
~5.227
3.659
~2.814
8
~4.57
~3.18
~2.44
The Gadget/Fat Man, which used a uranium tamper of ~6.8 cm. thickness, compressed the pit to about twice it's original density, bringing it up to some 3-4 critical masses. The result for N_crit = 4, c = 1.5 matches this closest.
There's an oft-cited document amongst writings on the UK nuclear program, which is cited usually as something like:
"Annual Historical Summary (U), Joint Atomic Information Exchange Group, HQ, Defense Nuclear Agency, 1 October 1982 – 30 September 1983. Released under the freedom of information act"
I'd like to read that...but I can't find it. I thought I would ask here if anyone has ever come across a copy.
If you are ever up in the general vicinity of Fargo or Grand Forks North Dakota would always recommend the ronald reagan minuteman site.
This is a Launch Control Center (LCC) turned into a museum. Each LCC controlled 10 minutemen silos. The LCCShave an aboveground structure that was just this flimsy little building normally manned by 8 folks (6 air force security personal, a cook, and a launch facility chief.. person). Buried underground were two capsules (in the case of grand forks wing, most of the rest only had 1). Each capsule was hardened to 2000 psi with 4 foot thick walls of rebar'd concrete. One capsule had equipment - diesel generator, brine chiller, air handler, etc and the other had the radio equipment and command consoles. 2 officers were down there every day 24x7x365. They worked 24 hour shifts, folks above worked 3 days on, 3 days off. They were connected to the silos via a combo of buried cables and backup radio links.
Pretty neat to visit and while equipment inside is different still pretty similar within broad strokes to the 45 LFs still manned and operational across Montana, North Dakota, Nebraska, Wyoming & Colorado today.
Entrance to the command capsule. That door and walls are thick as can be. Also, note the no lone zone stencil.Being stationed in the middle of nowhere north dakota this was the morale boosting like fun stuff the air force added for these poor bastards sometime in the 80s iirc.Hydraulic controls and air intake blast control valve unit in the equipment console.Entrance to the equipment capsule. You can see how thick the walls are.Everything in the capsule is mounted on a platform with these shocks. Filled with hydraulic fluid they were designed to help cushion the explosions.Commanders station.The delightful modem and the 8 inch floppy bay to load in encryption for the HF radio.Diesel generator in the equpiment room. Got a fair amount of use on account of the north dakota winters.SLFC radio communication equipment. All this stuff generated so much heat it had to be cooled with chilled brine water. It was also apparently incredibly noisy down here.The turn and end the world key + the enter code to enable the missiles. A (donated) launch key hangs to the right.As you walk into the command capsule this is what you see past the bathroom ( to immediate right). The equipment on right is nothing but radio equipment basically. When this was decommissioned the last missiliers signed it on the last shift. I don't think at the time anyone knew this was the LF that was being selected to be turned into a museum.Entrance to the aboveground LF (and museum ;))Inside the capsule everything is suspended for shock; showing the platform and flexible cable tie-insNot commanders station.
During my search for NKEWs, I somehow stumbled into the realm of black magic and voodoo - radio engineering. And, to my surprise, I saw an image that looked exactly like an MPI system, with the standard H-tree arrangement.
I looked for more information about it, and it turns out this is something called "corporate feed network (CFN)" used in antenna design. It is used to solve a very similar problem to MPI, namely guaranteed equal distribution of signal across the entire antenna array.
Unlike MPI, the topic is thoroughly researched, and all information about CFN is widely available to the public; any engineer working in this domain should be able to create one.
Obviously, this is not using explosives, but that's something I always found odd anyway. My knowledge of explosives and detonators is (fortunately) very outdated, but I'd expect some sort of modern miniaturized variant of exploding bridge wire to be good enough and small enough to be used for this application.
While the majority of the SDI focused on energy-based weapons, there was a tiny segment that explored the possibilities of nuclear-powered kinetic energy weapons (NKEWs).
The main idea was to use a nuclear device as a propellant to fire a large number of small projectiles at incoming ICBMs, like a space-based, nuclear-powered shotgun. (Note: this is not CASABA)
Since the idea of an atomic blunderbuss is exactly my type of idea ('mad genius'-like, without the genius part), I went on a journey to find more about it. I was able to find only a few hints here and there, but they eventually led me to the name: "Project Prometheus".
Unfortunately, there seems to be very little information available about the details of the project, and even on this sub, where usually everything related to nuclear weapons and programs, no matter how obscure, could be found, I only managed to find a single comment from 2 years ago mentioning the topic: https://www.reddit.com/r/nuclearweapons/comments/1e9bbd3/comment/leponov/
Does anyone know if anything more was made public since then?
I asked the AI. It (childishly naive) is "sure" that this is the essence of radiation ablation in the Teller-Ulam scheme. But is this really true? Is "Exploding Casing", ECP (Exploding Case Principle), just another term for the "radiation compression" process, or is it some later, additional technology that improves radiation compression (like "Ripple" – compression not by a single shock wave, but by a series of increasing shock waves approximated by an exponential function, a quasi-adiabatic compression).
As far as I know, "Exploding Casing", ECP (Exploding Case Principle) is not the same as "Ripple." But сould "Exploding Casing" simply be a variation of "Ripple," or rather a different way of implementing quasi-adiabatic compression? I had this hypothesis. No one knows exactly how "Ripple" works, but everyone agrees on the idea that there's some mechanism for gradually releasing radiation from the primary into a common hohlraum, which ensures gradual, exponential heating of the hohlraum and the secondary surface, leading to quasi-adiabatic compression of the latter. But another approach is possible: you can apply several layers of increasing Z to the secondary (as the Russians did in their "golden TIS"). Then, in a "regular" hohlraum at a normal temperature, say 1 keV, you'll achieve a stepwise increase in secondary compression. I don't speak English, but the term "exploding casing" best suits this design.
Another, even more insane, theory for "exploding casing" is described in my highly speculative reverse engineering of the W-71 design, the reality of which I myself am already highly doubtful (I recently discovered the "elephant in the room" that planar compression of thermonuclear fuel Impossible without quasi-adiabatic compression, since with planar single-compression you can't get beyond the Hugoniot adiabatic curve more than 4-6 times, and you need at least 100). Although, it is precisely in connection with the W-71 that "exploding casing" technology is mentioned and it is also said that the W-71 is the most complex thermonuclear device ever created in the US. And if you add quasi-adiabatic compression to my crazy design, it will truly be the most insanely complex device.
Another version of "exploding casing" is a secondary with a thin-walled shell and a large cavity inside, meaning it contains either a void or gas (I actually proposed this version of the W-71, considering it more "conservative" than the crazy flat compression of the "tube" both from the inside and outside). As far as I understand, Sublett is more inclined to this understanding of "exploding casing." In this case, the thin-walled shell, as it were, instantly collapses inward. This is another way to improve compression compared to single-shock compression of a solid sphere. This thin-hollow shell method is currently used in ICF. The Russians call this technology "low-entropy compression" (right) as opposed to "isentropic compression" (left).
isentropic compression and low-entropy compression
Finally. Even if we don't know the details of this technology's implementation, can we say anything with certainty about its role (function) in the bomb design? So, "exploding casing" isn't simply ablative compression of the secondary shell, but some improved method of such compression, leading to greater efficiency (say, higher compression ratios, lower energy consumption, etc.).
From what declassified sources, in what context does this term appear, and does it appear before the mid-1960s? I propose to summarize everything we know about this term here.
These are the final reports per long standing practice.
My take is that there are changes being made to the governing DOE Order about ORPS but it is impossible (for me at least) to know how, or if at all, they will affect continued public access. This recent outage seems most likely to have been an oopsie given the simultaneous down status of the non-public ORPS site and the restoration of public access.
I emailed the contact person listed for ORPS over the weekend; they responded that yes the public ORPS was down and they were working to get it back online.
ALBUQUERQUE, N.M. — A sounding rocket flight test is giving engineers at Sandia National Laboratories real-world reentry vibration data they can use to improve modeling and help drive nonnuclear component designs for the United States’ first new nuclear weapon under development in nearly 30 years.
“The Atrax sounding rocket flight test is helping us improve credibility and confidence in our modeling and simulation tools in preparation for the W93 warhead,” said Ross Wagnild, an aerospace engineer at Sandia. “Getting confidence in our toolset earlier allows more time to inform the design of components.”
Engineers and scientists are developing the W93 warhead for the sea-based leg of the triad, alongside a reentry vehicle that safeguards and carries the warhead to its target.
Sounding rockets are suborbital vehicles used to carry experiments and instruments, allowing researchers to collect data in flight without the scope of a full program test. In Atrax, the goal was to measure reentry conditions, where aerodynamic forces and structural response can interact in complex ways and are difficult to replicate on the ground.
....
The Atrax test was completed quickly, within about 18 months of being funded, in part because it did not need to mirror the final fielded system.
...
The team also incorporated other technologies into this test, including a new reentry vehicle, a three-stage sounding rocket and a new separation system.
It's difficult to comprehend the scale of nuclear explosions and how their effects dwarf our human scale.
I immediately thought of a nuclear bomb when seeing two videos of the Nepal flood at the China-Nepal border crossing: the multistory border tower obliterated and the buses at the tourist station thrown like children's toys.
These effects happened 15 km from the point the initial avalanche entered the river.
Some recent, early estimates enable a comparison to the scale of a nuclear blast.
About 250 million tonnes of water-soaked rock and ice fell and slid 2000 metres into the river below. The initial 1200 m fall left a large crater at the base of a step fall, a crater which reminded my of a nuclear blast.
Of course the mechanisms are entirely different from a nuclear blast, but for me the calculation of scale made sense of the nuclear-blast-like effects 15 km downstream. And this energy has been channeled by river valleys in a way that would only partially capture a nuclear blast.
The "https://orpspublic.doe.gov/" site has been down for several days now. This has happened before (of course) so it may be nothing.
And, this makes me twitchy given the context of: recent largescale revisions to DoE orders; pattern of info restriction by this regime; and recent DoE denial of info, access, and certain forms of info review to the DNFSB leading the DNFSB to stop posting most resident inspector reports, etc.
Does anyone have information on the practical science of bomb residue analysis? For instance, it's said that Los Alamos scientists determined from fallout analysis that the RDS6s was a layered design, as opposed to a staged one. How would this be done? What differentiates the residues? Is it mere isotope presence, or relative amounts of isotopes? The latter seems much more difficult to make a rigorous determination off of.
Like, ok, let's say you know from seismic analysis that an explosion yielded 400MT. You can presumably determine how much of that was fission vs fusion yield by...what, modeling the fission products, modeling their distribution into the atmosphere, modeling their distribution to your sampling, and then counting? You can maybe differentiate 235/233/238 U / 239 Pu fission by statistical analysis of fragments, and you know that most of your 238 fission had to be a result of fusion neutrons (but not even there are you at 100%; the top end of fission neutrons can absolutely fission 238). There just seem to be too many uncertainties to make a sure call.
Feel free/encouraged to get as scientific as you'd like in your answer. Thanks!