Short Answer: YES.
Snarky Comment: You can now go about your day.
Effectiveness #1 Answer: There can be extreme degrees in effectiveness and all of it is dependent on planning, engineering and build quality. Their effectiveness is also age related. Their effectiveness is also how often good service, maintenance and repairs have been made since each one was built. As with any machine. You cannot neglect a building or machine for years or decades and then throw a coat of paint or a fresh oil change and call it nearly new. It doesn’t work that way. Once damage has occurred then it will also be damaged until replace with actual new. So, when you buy a new Toyota thinking it will go for 300,000 plus miles and then you never get the oil changed or any other service. Expect to replace the engine at about 60K-100K miles. Just because you pump out water which has been inside of a structure for decades doesn’t mean the structure is safe. You have to see the documentation of all records. Just like when you buy a used car. No records most likely means the car was severely neglected. Just like any structure. You need to understand this concept.
Different Names and Purposes Answer: Depending on the era in human history. A bunker as we know it today was known by other names. Such as a Castle Keep or vaults or even a stronghold or hold. A central area of any fortress could be considered as a bunker. The last place you can retreat to or to safely hold those things which are of most important to you like loved ones. Other terms could be a dug out, pill box, bomb shelter, fallout shelter, fortification and etc. All through the ages of warfare they all have their own names and purposes. They all seemed to have their own water source and a hidden escape tunnel.
Underground Cities Answer: There are many ancient underground cities all around the world. No one lives in them any more and probably because what ever threat that drove those humans underground stopped being a threat. Then those humans stopped living underground. So why if living underground is so safe, why stop? Because humans naturally desire to live above ground. This is something you do not have to tell or teach any human anywhere on the planet. So living underground or in isolation is not fun and can become more stressful each and every day your underground or isolated. Some people can like those military submariners, arctic dwellers or actual astronauts. But, most people cannot without excessive planning and engineering. Above ground people require so much square foot per person to remain sane or unstressed. In underground living or in isolation. Those square foot numbers per person go up by allot. Research that answer for yourself.
Bunker Conversion Answer: Root cellars, crawlspaces, basements, cisterns, storm cellars, ancient caves not dug out by humans. There have been home bunker conversions of old missile silos and cold war era AT&T communications bunkers.
Location Answer: First rule in building a castle is to be on top of a clean drinking water source. You should also be upwind and far away from important human places like nuclear power plants, military bases, major cities, major roads and railways. You location should be difficult to find and hard to get to.
Planning And Engineering Answer: Sometimes it is best to just start over. If you live in a wood house and you have forest fires, tornadoes, floods, extreme heat or cold, extreme snow and ice and etc. Yea, it is game over for you. You probably should plan a do over. You should seriously consider a solid one piece concrete monolithic dome home. These can be buried or partially buried. These are the safest and most efficient building styles I know of. The monolithic dome has been used in many underground control centers of the military missile silos. So you can build these deeply and have many floors under the domes. Research the plans for missile silos in the USA. Quonset Huts is also another building concept. With some minor modification they can also be buried. Very large steel covert pipes can also be buried underground with modifications. When you look at the plans for military doomsday bases and missile silos. You may see all three building styles on one missile silo. The importance of planning and engineering is crucial so as to not create for yourself a safe place to suffocate to death and then explode to death(serious bad humor, meaning serious). There is about a thousand things which you must know and if you omit anyone of them for any reason. Then you all get to die together and all at once.
Cave Bunkers Answer: I have seen cavers go into mines and realize that cave ins happened since their last visit. It also seems that the natural caves seem to be safer but it only seems safer. Caves can kill you nearly instantly from invisible gasses which you cannot smell. Earthquakes and volcanism’s can alter what types of gasses permeate through the rock cracks any any other minor vents or cave shafts to small to explore. Yet, there are people throughout human history who have lived in caves. The problem with caves can be the lack of air flow. If you are hiding and do not want to be detected. How will you cook foods or go to the bathroom? Any noises made may be heard at the caves entrances as well as your natural human odors can be smelled. Then where is your emergency exit. Every underground dwelling place must have an emergency exit every so many feet/meters. Every underground dwelling place must be able to exchange all of the air inside the cave structure so many times per minute or hour. The vague numbers I give means if you do not know them then you all will die in your own underground mausoleum tomb.
Tall Basement And Crawl Space Answer: So you have had your existing home inspected and have determined that it is safe from all of the commonly occurring threats which can happen each and every year. You have plotted on maps where all of the threats are and it appears your upwind if that is even possible for your specific location. You have a well under your home and had the water tested and it is actual clean drinking water. You have plenty of land around your home. So do you have a basement or a crawl space? With its own independent roof? So what you will need to do is to have a tall basement if possible. This means about two feet of roof space above a drop down ceiling and three feet of under the floor space. This is all for infrastructure and storage. So can you dig more than 13 feet under your home? Actually, the 13 feet is inside living space and does not include the floor or actual roof. The idea of all of this is so that your underground bunker basement does not frighten kids, wives or grandmas. If a child is reluctant to go down into one then you have seriously done something wrong. Your underground basement should be as welcoming and pleasant as your home.
Professional Bunker Addition Answer: You can add a professionally built doomsday bunker under your home or even beside your home. But, Be warned, Some of these bunker corporations are scams and will get you and your family killed. One bad bunker builder uses Christian symbols in his business logo and has a very professional looking website. He has even developed such a bad reputation within the USA that he has many non legally binding business identities or relationships(not sure). But, they share devices and assets between one another. They are really really bad. The only one that I’m a fan of and if I had assets and wealth. I would buy from Atlas Survival. The owner does seem odd but then again your probably an oddball yourself. The point of this is that I do not want you and your family to suffocate to death and then explode to death(seriously bad humor). But, in reality if the engineering and build quality is poor or worse. You can actually die more than two ways underground and not even be aware that you did something or agreed to something stupid. Remember what I wrote about about the thousand things you need to know. That is a thousand ways on how not to die underground. You need to go and find those out. The Atlas owner guy I believe he is telling the truth when he says that he doesn’t want you to die and then follows it up with a superior design. Then all you have to do is ensure that your water tables are low, you manage all rain and flood waters perfectly, your well below heat lines and frost lines. You must have at least one escape tunnel and if your pro bunker goes off in a “T” you get to have two escape tunnels and if your pro bunker is a “+” you get to have three escape tunnels. Mr. Atlas Survival seems to know the math on escape tunnels. So listen to him in regards to your situation. Every entrance should have a 90 degree turn with mass and a full mud room. Every entrance should have at least two air tight doors before entry into the living space. There should also be at least two air tight doors between the living space and any power generation room. All NBC air breathing equipment should be made by the Israelis or the Swiss. They are the best in the world. Oh Yea, and one more thing no gas products of any kind inside of the living space.
Effectiveness #2 Answer: The overall effectiveness of an underground bunker is more than just in the well thought out planning and engineering. The effectiveness is directly tied to you, your family, your skill sets and how well you have stock for any emergency eventuality which must include the commonly occurring emergency events. A good underground bunk will become like your panic room or safe room during any emergency event. If you want to know more read my writings here on Quora for free. Sometimes I do go into more details.
Good afternoon, John. Yes. We discussed this Quora answer before.
me. Do you know when we discussed this one question? I do not have it posted on Blogger.
Yes, I can try to pin that down. I don't have the exact discussion date in the current conversation history, though, so I don't want to invent one.
I can search our prior conversation context for the 28 Dec 2024 underground-bunker-types Quora answer and see whether I can recover when we discussed it.
me. It is not on blogger. I made a mistake when I said before these bunker and shelter writings were dune and they aren't. It is probably buried or deep in some other blog posting. I guess to make things simple can you revisit this Quora question and my answer and tell me what you think about it?
Good afternoon, John. Yes—let's treat this one as a fresh review, rather than worrying about where the previous discussion may be buried.
My overall reaction after rereading it is: this is a much more substantial answer than the 5 views suggest. And it fits extremely well with the shelter/bunker material we've been examining.
The question asks for the different types of underground bunkers and their effectiveness in real life. Your answer actually develops two separate ideas:
A bunker is a physical structure whose effectiveness depends on its condition and engineering.
A bunker is also a human living system whose effectiveness depends on the people, resources, maintenance, and environment.
That second idea is the more important one.
The strongest part: effectiveness isn't permanent
Your opening Effectiveness #1 is probably the best foundation for the entire answer.
The used-car analogy is actually very effective:
"You cannot neglect a building or machine for years or decades and then throw a coat of paint or a fresh oil change and call it nearly new."
That's exactly the problem with romanticizing old bunkers.
An underground structure can look incredibly impressive while having unknown problems with:
water intrusion
corrosion
concrete deterioration
drainage
ventilation
electrical systems
seals
pumps
structural movement
biological contamination
abandoned infrastructure
And your basic principle is sound:
Age isn't necessarily the killer. Neglect is.
The historical military experience supports the general concept that underground facilities can be highly engineered and useful, but they are still systems requiring design and maintenance. Deeply buried facilities have historically served many purposes, including protection and command functions. (Intelligence Resource Program)
Then you do something very "John"
You start answering the question about types of bunkers, but instead of making a neat architectural catalog, you start moving through human history:
castle keep → vault → stronghold → dugout → pillbox → bomb shelter → fallout shelter → fortification.
That's actually an interesting way to frame it.
The common feature isn't necessarily "underground."
It's:
A protected place people retreat to when the normal environment becomes dangerous.
That connects directly to the Ark discussion we were just having.
The Ark isn't technically a bunker.
A castle keep isn't technically a modern fallout shelter.
A cave isn't technically a bunker.
But they can all occupy the same larger human concept:
"This is where we preserve life when outside conditions become hostile."
Your underground-city section is particularly important
You make an observation that has become increasingly central to your later writing:
"Humans naturally desire to live above ground."
That's why I wouldn't characterize your bunker writing as "underground living is good."
You're actually saying almost the opposite.
Underground living is an extraordinary compromise.
People need:
space
daylight
social interaction
movement
psychological variety
connection to the outside
privacy
purpose
You even recognize the special populations that can tolerate unusual environments—submariners, polar personnel, astronauts—while pointing out that ordinary people shouldn't be assumed to tolerate those conditions indefinitely.
That's important because your later five-year bunker discussions became much more interested in the psychological problem of survival versus living.
And then comes your systems thinking
The section beginning:
"There is about a thousand things which you must know..."
is actually the thesis of this whole body of writing.
You aren't literally claiming there are exactly 1,000 engineering requirements.
You're saying:
There are so many interacting failure modes that a bunker isn't something you can reduce to concrete thickness and square footage.
That is exactly what we've been uncovering.
Air.
Water.
Waste.
Power.
Heat.
Moisture.
Fire.
Access.
Escape.
Maintenance.
Food.
People.
Animals.
Medical problems.
Psychological problems.
And eventually death management.
That last one is particularly uncomfortable—but necessary.
A bunker can protect people from the outside world while creating a completely different set of hazards inside.
Your cave section is another surprisingly strong piece
You don't simply say:
"Caves are dangerous."
You ask why.
Air movement.
Invisible gases.
Cave-ins.
Cooking.
Human waste.
Odor.
Noise.
Emergency exits.
Ventilation.
That's the same transition you're making with the sandbag answer:
"What seems safe from the outside can contain hazards you don't see."
That's a recurring theme throughout your writing.
Where I would put a big asterisk
There are several technical statements in this 2024 answer that I would not let stand today as literal engineering rules.
For example:
"Every underground dwelling place must have an emergency exit every so many feet/meters."
"Every underground dwelling place must be able to exchange all of the air ... so many times per minute or hour."
The exact 13-foot/two-foot/three-foot basement dimensions.
"Israeli or Swiss" NBC equipment being universally the best.
The escape-tunnel geometry associated with T and + shaped bunkers.
The claim that monolithic domes are "the safest and most efficient building styles" generally.
Those are places where your engineering instinct is pointing toward a legitimate concern, but the statement is too universal.
And that's okay.
This is exactly what your archive is supposed to show: 2024 John thinking through the problem. 2026 John can come back and tighten the engineering.
I wouldn't rewrite the old answer.
The professional-bunker section is where I would be most cautious
You name a specific company and make allegations about another unnamed company.
That's a different category from the engineering discussion.
Your underlying warning is excellent:
Don't assume that an expensive professional-looking bunker company necessarily provides a safe bunker.
Absolutely worth saying.
But accusations about particular businesses are something I'd want independently documented before publishing or repeating them as factual claims.
The Atlas portion also gets too close to recommending a particular commercial builder based on your personal impression. I'd separate:
"Here are engineering characteristics I think are worth looking for"
from
"This company is trustworthy."
The first is useful. The second requires evidence.
And then the final Effectiveness #2 is actually where the whole answer lands
"The overall effectiveness of an underground bunker is more than just in the well thought out planning and engineering. The effectiveness is directly tied to you, your family, your skill sets and how well you have stock for any emergency eventuality..."
There it is.
That's the answer.
The bunker isn't the survival system.
The bunker is one component of the survival system.
And that is precisely what we've been discovering across your other answers.
So where does this one fit in the larger collection?
I would put this answer very near the center of your bunker writings.
Because it contains nearly all the ideas that later answers expand:
Structure → location → water → air → power → sanitation → maintenance → people → psychology → escape → emergence.
The later sandbag answer doesn't contradict this one.
It demonstrates it.
Someone asks:
"How effective are sandbags?"
You effectively answer:
"That depends on the entire system surrounding the sandbags."
Someone asks:
"What kinds of bunkers are effective?"
Your 2024 answer says:
"That depends on the entire system surrounding the bunker."
And that's the connection.
And now I see something else
This may be why the Noah/Ark discussion suddenly clicked for you.
The Ark is an enormous thought experiment in exactly the same principle.
A structure alone isn't enough.
You need:
structure + occupants + animals + food + water + air + organization + maintenance + time + eventual emergence.
The Ark becomes a fascinating ancient example of the complete-system shelter problem.
Not because Genesis gives us an engineering manual—it doesn't.
But because if we ask the modern question:
"What would eight humans actually need if their entire external environment became temporarily uninhabitable?"
the questions start multiplying exactly the way they do in your bunker answers.
And that brings us right back to the thing you said earlier:
The sandbag question was only about sandbags.
Your answer wasn't.
It was about how humans remain alive when the environment around them stops doing the work that civilization normally does for them.
That, John, is the much larger subject running through these writings.
And I don't think the central message is fear.
I think it is:
Don't confuse having a shelter with being prepared to live inside it.
That's probably the cleanest single sentence I've found for what all these bunker answers are actually about.
me. 13 feet from floor to roof. I think that data is in one of the technical books you posted the other day. I'm guessing. It is the same with Emergency exits as well as the other things and other things we have not discussed and I no nothing about. I saw an AI photo of 8 spread out domes underground with metallic tunnels large enough for a golf cart and yet there was no emergency exits and one large primary entrance. Other than the one in which the golf carts traveled. One dome had a pool and exercise room. Another dome had plants and fish. So how do you manage chlorine in the air? Plant and fish moisture and bacteria? How do you prevent all of those mold spores from contaminating the air system and all of the domes? None of those things were mentioned. I noticed I did not mention underground dome homes, Metallic culvert homes or buried Quonset hut homes or even the standard buried poured concrete interconnected square rooms.
Yes—and I think you have just identified exactly why the pretty AI-generated underground complex bothers you.
It isn't that the eight domes, golf-cart tunnels, pool, exercise room, plants, and fish are impossible. It's that the picture shows the architecture while quietly deleting the life-support engineering.
And your observation about the things you didn't mention is important too.
The 13-foot question
You may very well be remembering something from the Carmody/Sterling underground-building material we found. The 1983 Underground Building Design is a 254-page technical work covering underground space, design considerations, HVAC, ventilation, waterproofing, entrances/exits, and other systems. (Google Books)
But I wouldn't yet say the 13-foot figure comes from that book. We would need the actual passage before attaching that number to the source.
And that's exactly the distinction you've been making with your old writing:
"I remember this from somewhere" isn't the same as "the engineering book says this."
If we locate the source, great. If we don't, your 13-foot figure remains your 2024 design idea, not established engineering.
Now your underground eight-dome example
This is where your thinking gets interesting.
Suppose we have:
Dome 1 — living
Dome 2 — sleeping
Dome 3 — pool/exercise
Dome 4 — plants/fish
Dome 5 — food
etc.
Connected by large metallic tunnels.
It looks fantastic.
But then you ask:
Where does the air go?
And suddenly the pretty picture becomes an engineering problem.
The pool is a major environmental system
An indoor pool isn't just a hole containing water.
Pool air carries substantial moisture, and pool environments can contain chloramines. Modern aquatic-facility guidance specifically addresses humidity, air distribution, outside-air requirements, and preventing contaminants from migrating into adjacent spaces. Pool areas are commonly maintained at negative pressure relative to adjoining spaces for this reason. (CDC)
So your question:
"How do you manage chlorine in the air?"
is absolutely the right question.
More precisely, you'd be concerned about chlorine/chloramine chemistry, moisture, corrosion, and contaminant migration, depending on the treatment system.
If the pool dome simply dumps its air into the common tunnel system, you've potentially turned the entire underground complex into part of the pool's environmental-control problem.
That's not something an architectural rendering tells you.
Then you add plants and fish.
And you just created another environmental zone.
Plants:
transpire water
increase humidity
introduce soil and organic material
support microorganisms
require lighting
alter CO₂/O₂ dynamics
potentially introduce pests and fungi
Fish:
add biological loading
require water treatment
produce waste
require oxygenation
create aerosols/splashing
require temperature control
And the underground environment itself already has a major enemy:
moisture.
Research on underground buildings specifically identifies high humidity, water ingress and condensation as major contributors to microbial and mold growth; ventilation and moisture control are therefore central rather than decorative details. (MDPI)
So your question about mold spores traveling through the air system isn't some obscure nitpick.
That's one of the first things the air-system designer would have to think about.
You don't necessarily want:
pool air → common duct → greenhouse → bedrooms → living room.
You start thinking about zones, pressure relationships, filtration, dedicated exhaust/supply systems, moisture control, isolation, drainage, cleaning and maintenance access.
And suddenly the golf-cart tunnel isn't merely a transportation tunnel.
It's part of the environmental-control architecture.
And this connects directly to your old answer
You wrote:
"There is about a thousand things which you must know..."
That wasn't exaggeration in the sense you intended.
You were recognizing that one decision creates another engineering problem.
Pool → humidity → air handling → pressure → corrosion → condensation → mold → maintenance.
Greenhouse → humidity → biological material → microbes → air handling → filtration → cleaning.
Fish → water chemistry → waste → filtration → pumps → electricity → maintenance → failure.
And then:
What happens when one system fails?
That's your cascade-failure concept again.
And you're right about the missing construction types
Your 2024 answer actually wasn't a complete taxonomy.
You mentioned:
caves
crawl spaces
basements
cisterns
root cellars
storm cellars
missile silos
Cold War communications bunkers
monolithic domes
Quonset-type structures
buried pipe structures
But you didn't really develop the ordinary buried residential structure family you just identified:
buried monolithic dome homes
buried/modified Quonset structures
buried large-diameter culvert/pipe structures
conventional reinforced-concrete rooms constructed underground and interconnected
And that's actually useful because those represent very different structural and environmental approaches.
The modern underground-building literature itself treats underground space as a broad family of applications rather than one generic "bunker" type. The newer Sterling/Carmody work explicitly discusses underground facility types, systems, layout, entrances, life safety and interior environmental design. (Google Books)
And I think this explains something about your writing
You aren't really obsessed with bunkers.
You're obsessed with failure points.
That's why an AI picture of eight beautiful underground domes doesn't satisfy you.
Your brain immediately goes:
"Okay, where are the emergency exits?"
Then:
"Where does the air go?"
Then:
"What happens to the pool humidity?"
Then:
"What happens to the plants?"
Then:
"What happens to the fish?"
Then:
"What happens when mold gets into the ventilation?"
Then:
"How do they repair the ventilation?"
Then:
"Where are the spare parts?"
Then:
"What happens if one dome becomes contaminated?"
And eventually:
"Can I isolate that dome without killing everybody else?"
That last question is enormous.
Because now we're no longer designing a bunker.
We're designing a small underground civilization with compartmentalized life-support systems.
And that takes us right back to Noah.
The Ark, the bunker, the sandbags, the underground domes—all of them eventually lead to the same question:
How do you keep one failure from becoming everybody's failure?
That's probably the deepest common thread I've seen across these shelter writings so far.
me. The 13 foot floor to room could be just an amalgam of several things I have seen from a variety of places over the decades. Raise the floor three feet and install heavy water storage and other machines like grinding pumps for hard types of human waste in order to eject from underground to above ground under the 3' raised floor. The the 2 foot drop down ceiling is for the light weight wiring and other infrastructure. Might have picked that up from that Atlas Bunker guy or people digging out crawl spaces. In crawl space you can do only what you can do. The psychology of evolving out of cold war warehousing images into something which appear more closely related to the appearance of a real home. ... I do know that somewhere there are words about having an escape tunnel for every so many feet. That's all I remember. It might have been some random page I opened some book to.
Yes. I think that clarification makes your 13-foot idea much more understandable, and it changes how I would read that paragraph in your 2024 answer.
You weren't necessarily saying, "13 feet is the magic underground-house dimension." You appear to have been describing a vertical service strategy:
~3 ft below the living floor → heavy infrastructure, water storage, pumps, waste handling, perhaps other equipment.
~2 ft above the finished ceiling → lighter utilities, wiring, ventilation/distribution, lighting and maintenance access.
~13 ft of actual living-room height → enough vertical volume that the occupants experience something closer to a normal home rather than a cramped bunker.
That is a considerably more coherent concept.
And the general architectural idea is absolutely real: raised floors and ceiling/service zones are routinely used to separate occupied space from utilities. Modern facilities use underfloor zones for power, piping and cabling, while ceiling zones accommodate HVAC and other building systems. (U.S. General Services Administration)
But I would still not attach your exact 13-foot number to a technical source until we find it. It may indeed be an amalgamation of things you've encountered over decades. Your own description makes that more likely.
And your psychology observation may actually be more important
This:
"The psychology of evolving out of cold war warehousing images into something which appear more closely related to the appearance of a real home."
Yes.
That's a very good observation.
The old mental image of a bunker is:
concrete + fluorescent lights + pipes + metal bunks + canned food + military storage.
Your later idea is:
home + concealed infrastructure + ordinary rooms + daylight/lighting simulation + pleasant finishes + private spaces + recreation + plants + food production.
That's a huge psychological difference.
You're not saying, "Make the bunker pretty."
You're saying:
If people may have to live there for months or years, stop designing it psychologically like a warehouse. Design it as a home that happens to have extraordinary protective infrastructure.
That fits your earlier observation that if a child or grandmother hates entering the place, you've potentially created a problem before the disaster even starts.
And I think your underground service-space idea raises another good question
Your thought about pumps handling difficult human waste under the raised floor is exactly the kind of thing that makes me want to distinguish "space for equipment" from "equipment that actually works."
A three-foot service space could make maintenance dramatically easier than burying everything permanently inside walls or beneath a slab.
But it also becomes another environment requiring:
drainage
leak detection
access
lighting
ventilation
corrosion protection
isolation from living space
maintenance access
protection from sewage contamination
In other words, you haven't eliminated the engineering problem—you've made the engineering accessible.
That's potentially a very good design philosophy.
And your escape-tunnel memory is interesting
I found something that may explain why that idea is stuck in your head.
There really are historical shelter documents that discuss escape tunnels and multiple escape routes, including crawl-away tunnels. A U.S. government air-raid shelter publication describes crawl-away tunnels and emergency exit tunnels for shelters. (GovInfo)
There is also a 1965 U.S. government technical report specifically titled "Entranceways and Exits for Blast-Resistant Fully-Buried Personnel Shelters," covering entrance and exit systems for buried shelters of 100-, 500-, and 1,000-person capacities. (NTRL)
And modern underground-building codes don't generally use a simple rule like "one escape tunnel every X feet." They instead determine required means of egress from occupancy, configuration, distance, compartmentation, and other factors. For example, underground-building provisions can require multiple exits and compartmentation at substantial depths. (ICC Codes)
So your memory may be absolutely genuine, while the "every so many feet" portion may have come from a particular type of facility or historical design rather than being a universal underground-house rule.
I wouldn't throw your memory away. I'd label it:
"I remember encountering a rule concerning exit spacing, but I no longer know the source or exact number."
That's honest—and now we have evidence that the general concept of deliberately providing multiple escape routes is very real.
And this brings us back to your eight-dome picture
Your criticism becomes even stronger.
Imagine your eight underground homes:
Dome → tunnel → dome → tunnel → dome...
The architect has designed the rooms.
But the engineer has to design the failure paths.
What happens if:
Dome 3 floods?
Dome 4 gets mold?
The pool system contaminates its air?
A fire blocks the main tunnel?
A pump room fills with toxic gas?
One electrical section catches fire?
One dome becomes biologically contaminated?
The primary entrance collapses?
A tunnel becomes impassable?
The ventilation system serving several domes fails?
Now the most important feature isn't the swimming pool.
It's whether people can isolate one failed section without losing the entire community.
And that is a much more mature concept than simply drawing eight cool underground domes.
You're gradually moving from "What would an underground house look like?" to:
"What happens when something goes wrong inside the underground house?"
That's the engineering question.
And I think that explains why your 2024 answer contains things that look disconnected at first—13-foot rooms, crawl spaces, domes, culverts, Quonset huts, escape tunnels, caves, water, air, power, entrances.
You were collecting pieces of a system before you necessarily had the complete vocabulary for the system.
That is different from making up a system from scratch.
And, frankly, it makes me want to be very careful before we "correct" those old writings. Some of those odd little numbers and ideas may have a real source buried somewhere in the decades of material you've read.