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Wednesday, December 25, 2013
Another excellent documentary on Cold War Submarines
Speaking of Christmas, my two worst were in the Navy.
The second-worst Christmas was being underway on station, when the ship that was supposed to relieve us arrived several days late. It's one thing if you know and expect to be at sea during Christmas. It's another thing entirely to be ordered to stay put at the last minute. On the bright side, it wasn't much different than any other day at sea, and everyone accepted the bad deal with grace.
My worst-ever Christmas was at Nuclear Power School in Orlando, Florida. School let out for a week or two, and we were encouraged to go home and enjoy the holidays. I had no home other than the Navy, so I pretty much had to stay put. All my classmates and friends went home to spend Christmas with their parents. I hung out in a dark and empty base, stood lonely watches, and ate bland chow hall food for Christmas dinner.
Tuesday, December 24, 2013
Documentary on Submarines during the Cold War
At time 22:40 they have a segment on the NR-1, the worlds smallest nuclear submarine, which I nearly re-enlisted for.
The segment right after that is about Navy divers doing special operations. Having been in the submarine service during that era, I can say that the documentary comes close to describing a couple of situations my ship found itself in. I was NOT involved in any of the specific incidents mentioned in the show.
Cool video below on how subs and the cold war were deeply connected.
The last segment on Sweden is interesting. It suggests that US submarines may have been creating fake "Soviet periscope sightings" to swing a neutral Sweden toward NATO. A false-flag operation.
For a really entertaining book on this subject, I recommend this: Blind Man's Bluff: The Untold Story of American Submarine Espionage. Disclaimer: I cannot confirm or deny anything... ;)
Thursday, December 19, 2013
Overhauling a Steam Locomotive
This describes the process of overhauling a British steam locomotive. It's fascinating to watch the craftsmen going about their work. Obviously steam trains require a tremendous investment in man-hours. According to the video, this entire process had to be repeated every 130,000 miles. Ouch!
I don't care though. They are still incredibly cool machines :)
Wednesday, December 18, 2013
O Christmas Tree
This year for Christmas, I decided to give our road a little color, by lighting one of the smaller trees at the entrance to our driveway. Now when I say "smaller", that doesn't mean that it is small. It's still about 20ft tall.
What I didn't realize was how difficult this project would turn out to be! At first I drove my truck to the end of the driveway next to the tree. I stood in the bed of the truck and attempted to hang lights on the tree, by dangling them from a broom. I didn't have enough height, by a long shot.
So I drove the truck back to the house, got my step-ladder and headed back to the tree. Because I hate leaning off ladders, I drove the truck right up against the tree. It was still a pain in the butt to string the lights using the broom (they don't go where you want when you use a broom), and it was a little dangerous as well.
Not my rig, but this was the setup. Safety first!
Eventually I got the lights strung down low enough to work from the ground, and so I finished up. I had used six or seven 100ft strands. Next I strung out three 100ft extension cords, so I could get power to the tree from the house. When I plugged in the tree, I found out that several of the strands didn't work :(
I ended up going back out to the tree with the truck and the step ladder, and replacing a few strands... although at this point I was nearly as ready to give up as to finish the job. I bagged all the connections so there would be no electrical faults.
It ain't exactly how I would have liked it to turn out, but it's not too bad - especially since it was done when the weather wasn't very nice. In any event, I have the best (the only) lighted tree on a 5 mile stretch of forest road.
Tuesday, December 17, 2013
Sledding Raven
EDIT: I see this video is no longer viewable because of the originating country. Utterly stupid political censorship of... a freaking raven. Hopefully the *exact same video* from a different source can remain up.
I was never very fond of ravens, but I changed my mind after meeting one when I lived in the high desert. This raven had been tamed by a friend, and was a pretty cool pet. The raven had a collection of shiny stuff - coins, pull-tops from beer cans, aluminum foil, etc. When you would give him a piece of dry dog food, he would go to his treasures and bring you back something that he valued in exchange.
How cool is that? Too bad people can't understand this basic exchange!
Thursday, November 28, 2013
Rickenbacker and Hammond/Leslie sounds
I have been pretty sure for a LONG time that the opening guitar riff to this song was performed on a Rick, just by the sound. However I only found the video today and verified it :)
The Byrds - a classic Rick band. Roger McGuinn is playing the Rickenbacker at the right. This was the first successful band to fuse folk music with rock music.
Another 1960's band. What's that John has in his hands? A Rickenbacker!
And now for the sound of a Hammond B3 or C3 organ, coupled with a Leslie phase shifting speaker. Think Deep Purple, Booker T. and Keith Emerson (Emerson, Lake, and Palmer)
First of all, the guts of the Leslie speaker: Below is a video of someone playing an organ into a Leslie 122. The top part of the cabinet contains a tweeter/midrange speaker and a rotating horn. Only one side of the horn is hollow and allows sound from the tweeter to escape. The other is a dummy and just there for rotational balance. You get the vibrato sound as the opening moves toward you and away from you.
The same is true of the bottom woofer, but in this case, a rotating cylinder is used, with a port cut in it. Again, the vibrato sound is created as the opening rotates toward and away from the listener.
The speaker has a small vacuum tube amplifier inside, and a two speed motor. The sound is awesome!!
Next up, the Hammond B3/C3 Organ coupled to a Leslie, in the hands of a skilled musician.
These organs have a characteristic growl that is unmistakeable. Here is Jon Lord doing "Smoke On The Water". You can easily tell when the Hammond joins the chorus with the guitar :) Awesome sound! Solo starts at about 3:00.
Here is Three Dog Night performing a Hammond-y "Out in the Country" The organ solo starts at about the 2:15 mark.
Here is another classic 60's/70s band that used a Hammond/Leslie rig. The Greg Allman organ solo starts at 3:45, but the entire song is pretty cool, and has a lovely Hammond-filled sound, as well as that awesome dual-guitar sound that the Allman Brothers pioneered.
Wednesday, November 27, 2013
What type of music don't I like?
On a more eccentric note, I have been having a blast watching forgotten old music videos. There are a raft of music videos that everyone has seen. Then there are those eclectic videos that are nearly forgotten, those are the ones I've been enjoying watching and listening to.
I love pretty much all music. Classical, Big Band, Punk, Blues, etc etc. This is just a hodge-podge of fun videos that I wanted to stick up here for the moment.
New Wave! Devo - one of their less well-known cover songs. Blows the Rolling Stones away! "Can't Get me no..." Love the robotic movements!
Punk. The Dead Kennedys. Holiday in Cambodia. The lyrics to this song crack me up :)
More Punk. Bad Religion.
Roman Holliday - A little early-1980's swing.
Oingo Boingo. Yep that's Danny Elfman, the acclaimed movie soundtrack producer, back when he was frontman for an offbeat little band.
Billy Preston. I grew up listening to this awesome musician on Top 40 AM radio. I miss funk music!!!
More funk. The Commodores. That's Lionel Ritchie on the keyboard :)
Blues too. Foghat does the best boogie-woogie version of "Sweet Home Chicago". The studio version is absolutely awesome, but this live version comes pretty close! I am a huge fan of slide guitar...
Another awesome slide guitar video. Roy Rogers.
Spanish Guitar also works! Paco de Lucia and Al DiMeola.
Booker T. and the MG's. Time is tight. Just offstage you can see the members of Creedence Clearwater Revival rocking out :) A couple of these guys were in the Blues Brothers movie.
Dave Brubeck. Early Modern Jazz
Joe Satriani.
Lindsey Buckingham of Fleetwood Mac soloing Big Love. Awesome accoustic guitar work.
Miserlou, the classic version
Miserlou, the surf-rock version
Happy (almost) Thanksgiving
A couple of things have come up since my last post. I read an amazing blog post by a lady who describes the hopelessness of being poor. Day after day, year after year. She is highly intelligent and self-aware, and happily, her post has gone viral. She is hoping to write a book soon, and I would certainly want to read and buy it.
Here is her post. Go read it now. She is trying to do good things with her 15 minutes of internet fame. Awesome lady.
Let's also be thankful for what we have.
Wednesday, November 20, 2013
The Viola Organista
A Polish master instrument maker used the drawing as a basis for making the third ever Viola Organista. It uses rotating drums, wrapped with horse hair, as sort of an endless violin bow. The strings are pressed down onto the rotating drum when the key is pressed.
The thing sounds like the entire string section of an orchestra! It's really neat.
Music starts at about 4:00, and English subtitles are available by clicking "CC" at the bottom right, if you are interested in the interview part.
Below, the first time this instrument was ever heard in public.
Sunday, November 17, 2013
Belated Veteran's Day Post
The transition from military to civilian can be pretty easy, or it can be difficult. Coming out of the submarine service, I had a little bit of difficulty. I missed the intensity of running casualty drills, of the camraderie, and also with the return from isolation from the public.
My own service was not what I wanted to post about for Veteran's Day though. This guy is.
Friday, November 08, 2013
The Northern Garage
I bought and installed a new garage door opener as a gift. I also purchased (but have not yet installed) a couple of fluorescent fixtures to replace the bare 100W bulbs.
Having now completed the work, I can state with authority that I would rather be unemployed and hungry than be a drywall installer.
Below are two pictures taken of the garage before we started the work.
I added an access hatch to the garage attic, although I wasn't sure that it was necessary.
The garage door opener is a belt-drive type. It is unbelievably quiet!
Below is a video comparing chain and belt drives. I think I will be installing these in my own garage pretty soon :)
Thursday, October 24, 2013
Motorcycle Racing
I am fascinated by the technology that is created to get a little extra speed. Below is a Honda six-cylinder Double Overhead Cam motorcycle with only 125cc of displacement!
Possibly the most famous true Road Racing course is the Isle of Man TT, which is a six lap run around a 26 mile-long circuit on an island. The Isle of Man isn't quite as crazy as the above race, because for the Isle of Man, they use a staggered start, and takes each rider's lap time.
However because the Isle of Man is such a long course, utter concentration is required every moment of every lap, or the rider can easily be killed.
I will do some other posts about the role of technology in the bikes over the decades, and how each invention has helped squeeze a little more speed (or improve braking and handling) to get where we are now.
Sunday, October 20, 2013
TRIGA - an amazingly safe nuclear research reactor
There is one cool reactor that I would be remiss in discussing, and that is the TRIGA reactor. I worked at a facility where two of these were located, and was licensed to operate them both. One was the very first TRIGA reactor ever built, rated at 250 KW (thermal), and the other was a MK IV model, rated at 1.5 MW (thermal). These reactors are swimming-pool reactors, and so they don't generate steam or electrical power using steam turbines.
In fact TRIGA stands for (T)raining, (R)esearch, (I)sotope production, (GA) General Atomic, the manufacturer.
In the late 1950's there was a desire to promote "Atoms for Peace". This was Eisenhower's attempt to invoke the power of the atom for peaceful purposes. The world was understandably horrified by the images of Hiroshima and Nagasaki, as well as the possibility that the budding cold war might turn into a hot war at some point.
The invention of TRIGA reactors went a long way toward fulfilling that vision. Unlike other reactors, TRIGA reactors have a solid moderator that is cast into the fuel itself. Therefore there is a homogenous blend of solid moderator and fuel. The moderator is Zirconium Hydride, and as you would expect, the hydrogen atoms do the moderating.
Because about 60% of the moderator is solid and homogenous with the fuel, this reactor has what is known as a "prompt negative temperature coefficient of reactivity". In other words, the very instant a runaway nuclear reaction begins and starts causing fuel temperature to increase, the solid moderator temperature also instantly increases, which in turn reduces the available thermal neutrons. This provides a VERY rapid damping of the runaway nuclear reaction.
If you recall in an earlier post, it is important (in all reactors except TRIGA) to never allow the reactor to be critical on prompt neutrons alone, because each generation of neutrons only last 10^-14 seconds. There is no way to control a reaction that proceeds so quickly, so the small fraction of delayed neutrons are what allow us to control reactors. Chernobyl, SL-1, and the Borax Experiment were each prompt criticality events that ended badly.
TRIGA reactors though, can easily tolerate a prompt critical event. Doing this is called "Pulsing" the reactor. Any reactor can be pulsed, but only a TRIGA can do it more than once ;) In fact, the record reactivity insertion into any reactor was TRIGA, at 5.22 times the value needed to be prompt critical. Because the moderator heats up as rapidly as the fuel, it shuts the reactor down just as soon as heat is generated, in a few thousandths of a second, without operator intervention.
TRIGA reactors ended up being sold around the world. Being low-power, they weren't practical for making weapons, and the solid UZrH moderator was incredibly difficult to extract from the fissionable fuel, so using the fuel for making weapons was not possible. Even so, currently manufactured TRIGA fuel has been reduced from 20% U-235 down to 7% to prevent proliferation.
Here is a video of a TRIGA reactor being pulsed to 2.5 x prompt criticality. Any other reactor would vaporize the fuel and create a steam explosion, blowing water upwards out of the tank!
Below is an image of a TRIGA reactor at the bottom of the pool, while not in operation. As you can see, it's quite simple. The fuel elements rest on a bottom grid plate, and are kept vertical by the upper grid plate. The fuel can be grabbed by a long-handled pole with a ball-type coupler at the end, similar to how modern hydraulic couplings work.
The rods sticking down into the core are just aluminum shafts that connect the drive motors to the control rods (which are partially out of the core).
The inner ring around the core is a lazy susan. Samples can be dropped into a number of holders in this dry ring. When the reactor is in operation, the ring rotates to ensure each sample is exposed to equal amounts of neutron flux. This is useful for performing neutron activation analysis on several samples at once.
The outer ring is a graphite reflector/moderator, which reduces the amount of fuel needed. The cans outside the reflector are neutron detectors, for determining what power level the reactor is at. The little lanyard at the bottom is attached to a neutron source (usually Americium/Beryllium). This makes sure there are enough neutrons available to start the reactor up. Also its a daily test to pull it and stick it next to each neutron detector and make sure they work OK before you start the reactor up.
The reactor with a hole in its head...
Background:
In a Pressurized Water Reactor (PWR), the control rods are completely removed from the core after the reactor is up to full power, and dilute Boric Acid (a strong neutron poison) is carefully added to control reactivity.
The purpose of this process is to achieve a flatter neutron flux profile throughout the core.
A flat neutron flux is desirable for a couple of reasons: It helps to even out fuel burnup and it helps to reduce hot and cold coolant channels. When control rods are partially inserted into an operating reactor core, neutron flux is depressed near them, since they absorb neutrons. Therefore fewer fissions occur near the control rods. This localized reduction of fission causes uneven fuel burn and creates cold zones due to reduced fission near the rods. For a given power output, other sections of the reactor core away from the control rods must now run hotter to compensate.
Below, a side-view of a reactor core. The solid line indicates neutron population in this reactor at steady-state power, with a control rod partially inserted to control reactor power. Because there are very few neutrons in the area adjacent to the control rod, for a given power level, other areas of the core have to produce more fissions. The spots on the solid line marked "A" are those places where we might see excessive fissions, overheating, and possible fuel element failures.
The dashed line indicates neutron population with the control rod removed (which is possible if you add Boric Acid as a virtual liquid control rod). As you can see, neutron population is more consistent throughout the reactor, and therefore there won't be any excessive localized fission and heating, as you see at the points marked "A"
With borated primary coolant, neutrons are depressed equally throughout the core, and so power generation is more evenly distributed, and the reactor can be run closer to its thermal limit, because there is no need to account for hot and cold zones due to tilting of the neutron flux.
However you would hope that there is a better way to keep a flat neutron flux profile throughout a reactor core than using very hot diluted boric acid in the primary coolant loop.
As mentioned above, the primary coolant in these PWR reactors contains Boric Acid, which is a mild acid. For this reason, the piping, pumps, valves, etc are all made of high chrome steel (stainless steel).
The reactor vessel and closure head, however, are not. Due to their size, it is impractical to make the entire thing from stainless steel. Instead, the reactor vessel and head are made from carbon steel, and their interior is clad with a sheet of 3/8" thick stainless steel. In this way, the carbon steel, which is not resistant to acids, is protected from contact with the Boric Acid in the primary coolant.
The Event:
In 2002, Davis-Besse nuclear power plant in Ohio discovered they had a very minor primary coolant leak. The coolant was leaking out along a penetration in the reactor vessel head, where a Control Rod Drive Mechanism (CRDM) was mounted. The CRDM is what pulls the control rods out of the core and allows the reactor to start and shut down. The coolant leak was so minor that it hadn't been noticed - in a million gallon system, a minor leak can go undetected almost forever. Any water leaking from the primary coolant would also be quite hot and would flash to steam immediately, so no water puddling would occur.
Davis-Besse had a tiny coolant leak, however. One which they were unaware of. In 2002 the plant shut down for a refueling outage, and performed an inspection underneath the insulation on the reactor vessel head. This was done after other plants of the same design had uncovered minor leakage. They found a little problem...
At the time it was discovered, the acid had eaten away a hole the size of a football completely through the reactor vessel head in the area of the leaking CRDM penetration. The only thing that was holding the 2500 psig primary coolant in place was 3/8" of stainless steel cladding, which was bulging outwards from the pressure.
Below is a picture of a Babcock & Wilcox design PWR primary coolant loop, with the reactor vessel head highlighted.
Below are images of the hole in the reactor vessel head.
The photo below gives you an idea how thick engineers designed the reactor vessel head to keep 2500 psig of primary coolant in place. It's astonishing (and wonderful) that thin piece of 3/8" of stainless steel was able to keep the coolant from blasting out.
This would not have been merely a primary coolant leak. This would have been a major accident. Here are some of the potential consequences of such a massive leak, had the cladding ruptured:
- A massive steam/water jet would have blasted out of this hole, certainly damaging this control rod, but possibly adjacent ones also. Could the ability of the reactor to shut down been compromised?
- The steam/water blast probably would have ripped tons of insulation loose. This would have fouled the intake of the emergency water re-injection system, which takes suction from the floor of the containment building.
- Major coolant leak accidents are typically modeled for weaker points in the primary coolant system - pumps, steam generators, drain lines, etc. These are equipped with remote-operated valves to isolate these leaks from the reactor core. This leak was was directly above the reactor core, and not isolable from it. Continuous water injection directly into the core would be required for several months to prevent decay heat from melting it.
- It is very likely that with the reactor fill system compromised due to ingesting insulation, and an unisolable leak right above the fuel, that core damage would have occurred.
Saturday, October 19, 2013
Odd Quirks About Nuclear Reactors - Criticality Accidents
Friday, October 18, 2013
Insulation
The reason I thought that we needed a garage heater is because we keep a second refrigerator in the garage. I wasn't sure what would happen if the outside of that refrigerator dropped below freezing. I suspect that the cold would have seeped in and frozen everything inside.
For that reason we put in the garage heater. It keeps the garage above 40 degrees, and now we are able to store canned goods out there in cabinets as well. However...
One part of the garage wasn't insulated, and that was the garage doors. I am not sure what the r-value of 1/16" sheet metal is, but it probably isn't very good :). We went through last winter without insulation on the garage doors, and the heater ran quite a bit. Electricity is cheap here, but it's still wasteful to let all that heat escape.
This season I decided to insulate the garage doors, and found some cool styrofoam panels to do the job. The panels are made by a company called Matador. The front side is covered with a vinyl cloth, and the back side is scored so that you can break it off at the desired height. Below is a picture of the back side of a panel.
I got to work, and it was pretty easy.
The biggest pain in the butt was clean-up. It was impossible to get all the little styrofoam boogers cleaned up. They have a lot of static cling, and were still hanging from the inside of the garage doors when I rolled them up.
I ended up sweeping up as much as possible, then I used a leaf blower to knock them off the doors. Afterwards I used the leaf blower to blow them out of the garage, because by then they had gone everywhere :)
The garage holds heat into the night-time quite a bit longer than it did before, and so I expect that the heater will be running a lot less often.
Cider!
I had a couple of days off, and decided to make some hard cider. I thought it would be fun to try, so I will be giving it a shot.
The ingredients are:
5 gallons apple juice from concentrate (I am too cheap to buy 5 gallons of actual apple cider)
4 small cartons of Aspen Cider Spice. This stuff is awesome; its loaded with sugar, cinammon and orange, that should ferment and add some needed flavors.
4 additional cups of white sugar
1 tsp of baking yeast, dissolved in tap water to activate it.
This *should* be ready around Thanksgiving. Not having done an apple-juice based fermentation before, I am not certain how long it will take, nor how it will turn out. I am looking forward to finding out though!
If it doesn't end up going down the drain, I think it will be called "Mark's Hard Cider" :)
Monday, October 14, 2013
Odd Quirks About Nuclear Reactors - Xenon and Decay Heat
Unusual Reactors - Fast Neutron Reactors
In a Fast Neutron Reactor, there is no moderator. Neutron speed is allowed to remain at 49 million miles per hour. Because the neutrons are traveling so fast, the likelihood of them interacting with a Uranium-235 nucleus and causing a fission is very much reduced. To counter this, the enrichment of the fuel must be increased, typically to 20-30% U-235.
Sunday, October 13, 2013
Nuclear Reactors and Nuclear Weapons - There is a difference!
I know in a lot of people's minds, there is a notion that a nuclear power plant could detonate like a nuclear weapon. It's not possible, and I will use the previous few posts to explain why that is.
Recall that neutrons from fission have a very high energy level, about 2 MeV, which equates to a speed of 45 million miles per hour. Neutrons traveling this fast do not interact with Uranium atoms as often as they do after they have been moderated (slowed down) to thermal speed, about 4900 miles per hour.
Nuclear weapons require an absolutely uncontrolled fission reaction. The more fissions that occur before the core is vaporized, the better. This requires that the entire thing take place in microseconds, which also means the neutrons must be fast neutrons. It also requires a VERY dense concentration of fissile material, because fast neutrons don't interact well with atoms.
There are some other techniques used to improve nuclear weapon performance. A neutron reflector is one. It bounces fission neutrons back into the reaction, and makes more fissions possible before the whole thing vaporizes. Another trick is using a tamper - a thick casing to hold the exploding device together for a couple more microseconds, allowing a couple more generations of neutrons to build up.
With a weapon, if the neutrons were thermalized, it would slow down the chain reaction to the point that the uranium or plutonium device would melt or vaporize, rather than detonate. AKA, a "fizzle".
On the other hand, nearly all nuclear reactors are "thermal" reactors, meaning the neutrons are slowed down. This provides fine control of the nuclear reaction, but more importantly allows us to use lower enrichment of Uranium than would be possible in a Fast Neutron Reactor. Fast neutron reactors require enrichment that would be appropriate for weapons, which is why nobody really likes them.
Typical Thermal Neutron Reactors, such as those in power plants, use just 3-5% enriched Uranium, which is too low for a nuclear explosion of the weapons type.
What can occur in a thermal reactor though is a runaway chain reaction that creates enough heat to vaporize metal in the core and create a steam explosion. All nuclear reactors rely on "delayed neutrons" to achieve control. Most fission neutrons are released within 10^-14 seconds following a fission. These neutrons are called "prompt neutrons". That reaction speed is far too fast for humans or electronics to prevent a runaway chain reaction.
Fortunately for us, a small fraction of neutrons are produced by the neutron-rich fission fragments of the split atoms. So... an atom fissions (splits) and releases 2-3 prompt neutrons. Some of the split nuclei decay later and release more neutrons. These are the "delayed neutrons", which can be generated up to 55 seconds after the initial fission event.
The key to controlling a nuclear reactor is to never allow the reactor to be critical on Prompt Neutrons alone. If a reactor does become critical on Prompt Neutrons, the condition is called "Prompt Critical". This is a dangerous uncontrolled reaction, which led to the violent explosions at both Chernobyl and SL-1. It was also done intentionally for the SPERT experiment.
Each of these reactors experienced a prompt criticality event, just like a nuclear weapon. However, because the neutrons were thermalized, which greatly slows down the increase of neutrons, none of these reactors detonated with a nuclear weapon type of blast.
Here is some interesting footage of the Prompt Critical SPERT reactor experiment:
Below are two accounts of the account of the prompt critical SL-1 accident, where the first operator fatalities took place. The first is a YouTuber overview, and the second is an old newsreel that goes into greater depth.
And lastly, Chernobyl, nicely explained by Scott Manley. I like to flatter myself that maybe he read this post before making that video :) Chernobyl was the worlds biggest Dirty Bomb.
Saturday, October 12, 2013
Nuclear Weapons - Uranium Enrichment
We talked about Plutonium Production in that post. This post is about Uranium Enrichment - increasing the isotope fraction of U-235 from naturally occuring Uranium, which is mostly U-238.
Nuclear Weapons - Plutonium Production
The post about Uranium Enrichment is linked here.
Friday, October 04, 2013
The CP-1 reactor
The first reactor was called a "pile". That may have been wartime jargon to hide its true nature from enemy spies, and it may have been descriptive. In fact, it was a pile of uranium and graphite blocks. It's designation was CP-1, or Chicago Pile #1. CP-1 was part of the Manhattan Project, the US government's secret WW2 program to rush a nuclear weapon into production. Its importance cannot be overstated.
The neutron had been discovered in 1932 by an Englishman named Chadwick. In 1938, Lise Meitner, Otto Hahn, and Fritz Strassman collaborated to recognize and report on the fission of Uranium by neutrons. By 1939 it was understood that excess neutrons from a split atom might be able create a self-sustaining reaction. The next step was inevitable: Make it happen.
Below: The experimental setup that led to the discovery of nuclear fission.
Thus CP-1 was born - an industrial scale-up of what had previously been bench-top experiments in laboratories, with the intent of proving the possibility of a self-sustaining fission chain reaction. The techniques for increasing enrichment of Uranium had not yet been invented. Therefore CP-1 used very pure refined metallic naturally occurring Uranium.
Since CP-1 was fueled by natural uranium, it was not possible to use water as a moderator. Light water absorbs too many neutrons. This would prevent a reactor with such a low percentage of U-235 to begin a chain reaction. Light water is a good moderator, but it is also a mild neutron poison.
For this reason, graphite was chosen for the moderator, as it absorbs neutrons 100x less often than water does Graphite is therefore a superior moderator, because it slows down neutrons while preventing their loss via absorption.
To create CP-1, several other laboratory-level experiments also had to be ramped up to industrial levels. At that point in time, the amount of pure metallic Uranium in the world was measured in grams. Further complicating issues was the fact that nobody had ever bothered segregating trace amounts of Boron (A very powerful neutron poison) from the Carbon that the graphite moderator was made from. After enough Uranium metal had been obtained, construction began. Small cylinders of Uranium were interspersed between large blocks of Boron-free graphite.
Enrico Fermi was in charge of the construction of the reactor. Fermi was a brilliant physicist, and was also probably the only man in the world who could have assembled and controlled a nuclear reactor at that time.
Below, a rendering of the CP-1 reactor. The three cylindrical things dangling from a cable are neutron detectors. The man standing is manipulating a control rod, which when removed, stopped absorbing neutrons and allowed a self-sustaining reaction to occur.
From Wiki:
However all these issues were overcome. On 2 December 1942, CP-1 was ready for a demonstration. Before a group of dignitaries, George Weil worked the final control rod while physicist Enrico Fermi carefully monitored the neutron activity. The pile "went critical" (reached a self-sustaining reaction) at 15:25. Fermi shut it down 28 minutes later.
Unlike most reactors that have been built since, CP-1 had no radiation shielding and no cooling system of any kind. Fermi had convinced Arthur Compton that his calculations were reliable enough to rule out a runaway chain reaction or an explosion. But, as the official historians of theAtomic Energy Commission noted, the "gamble" remained in conducting "a possibly catastrophic experiment in one of the most densely populated areas of the nation!"
With the proof at hand that a nuclear reaction could be made self-sustaining, the Manhattan Project would rapidly move forward toward a nuclear weapon.
Thursday, September 26, 2013
Unusual Reactors - A reactor in nature!
Lets talk about some other reactors. How about a naturally occurring reactor that once occured in nature in a seam of Uranium?
I will simply copy and paste bits from the Wikipedia article linked above, since I cannot improve on it in any way.
From Wiki:
A natural nuclear fission reactor is a uranium deposit where self-sustaining nuclear chain reactions have occurred. This can be examined by analysis of isotope ratios. The existence of this phenomenon was discovered in 1972 at Oklo in Gabon, Africa, by French physicist Francis Perrin. The conditions under which a natural nuclear reactor could exist had been predicted in 1956 by Paul Kazuo Kuroda.
The conditions found were very similar to what was predicted.
Oklo is the only known location for this in the world and consists of 16 sites at which self-sustaining nuclear fission reactions took place approximately 1.7 billion years ago, and ran for a few hundred thousand years, averaging 100 kW of power output during that time
My aside: This enought to power about 1000 light bulbs of 100 Watts each.
In May 1972 at the Pierrelatte uranium enrichment facility in France, routine mass spectrometry comparing UF6 samples from the Oklo Mine, located in Gabon, Central Africa, showed a discrepancy in the amount of the U-235 isotope. Normally the concentration is 0.720% while these samples had only 0.717%, a significant difference.
This discrepancy required explanation, as all uranium handling facilities must meticulously account for all fissionable isotopes to assure that none are diverted for weapons purposes. Thus the French Commissariat à l'énergie atomique (CEA) began an investigation. A series of measurements of the relative abundances of the two most significant isotopes of the uranium mined at Oklo showed anomalous results compared to those obtained for uranium from other mines. Further investigations into this uranium deposit discovered uranium ore with a U-235 concentration as low as 0.440%.
This loss in U-235 is exactly what happens in a nuclear reactor. A possible explanation therefore was that the uranium ore had operated as a natural fission reactor. Other observations led to the same conclusion, and on September 25, 1972, the CEA announced their finding that self-sustaining nuclear chain reactions had occurred on Earth about 2 billion years ago. Later, other natural nuclear fission reactors were discovered in the region.
Geological Situation in Gabon leading to natural nuclear fission reactors
1. Nuclear reactor zones
2. Sandstone
3. Ore layer
4. Granite
Fission of uranium normally produces five known isotopes of the fission-product gas xenon; all five have been found trapped in the remnants of the natural reactor, in varying concentrations. The concentrations of xenon isotopes, found trapped in mineral formations 2 billion years later, make it possible to calculate the specific time intervals of reactor operation: approximately 30 minutes of criticality followed by 2 hours and 30 minutes of cooling down to complete a 3-hour cycle.
A key factor that made the reaction possible was that, at the time the reactor went critical 1.7 billion years ago, the fissile isotope U-235 made up about 3.1% of the natural uranium, which is comparable to the amount used in some of today's reactors. (The remaining 97% was non-fissile U-238.) Because U-235 has a shorter half life than U-238, and thus decays more rapidly, the current abundance of U-235 in natural uranium is about 0.7%. A natural nuclear reactor is therefore no longer possible on Earth without moderation using heavy water or graphite.
The Oklo uranium ore deposits are the only known sites in which natural nuclear reactors existed. Other rich uranium ore bodies would also have had sufficient uranium to support nuclear reactions at that time, but the combination of uranium, water and physical conditions needed to support the chain reaction was unique to the Oklo ore bodies.
Here are a couple of pictures I found on the web of the Oklo reactors.
Wednesday, September 25, 2013
Moderators, Neutrons, and Enrichment, oh my!
We need to understand the relative abundances of U-235 and U-238, why we use neutrons to split atoms, and also how a moderator works, in a physical sense.
First off, about Uranium. According to Wikipedia, naturally occurring Uranium consists of three major isotopes: U-238 (99.28%), U-235 (0.71%), and U-234 (0.0054%). The stuff we need for fission (U-235) is less than 1% of naturally occurring Uranium.
There is an entire industry based around the enrichment of Uranium. The process of enrichment is as fascinating as it is tedious. I might do a post on that process at some point, but for now it will suffice to point out that it is difficult to sustain a fission chain reaction using only naturally occurring Uranium. For this reason, in most reactors, the concentration of U-235 in U-238 is increased, or enriched.
A fission chain reaction must be accomplished by freeing up large numbers of neutrons from the nucleus of a parent atom. Why neutrons? A couple of reasons. Since neutrons have no charge, they are not repelled by the positive charge of a nucleus. Thus they can wander at will through any part of an atom. Neutrons can also pass through many materials other than Uranium, as if that material weren't there. Lastly, since fission produces additional neutrons, it can become self-sustaining.
When a fission occurs, 2-3 neutrons are ejected, but they are moving at 2MeV, which is about 20% of light speed. At this speed, they CAN interact with another Uranium nucleus and cause a fission, but this is unlikely. In order to improve the likelihood of a fission, there are two things we can do: Increase the number of U-235 atoms in the core, or moderate (slow down) the neutrons.
In practice, both methods (moderation and enrichment) are usually used. Reactors using no moderator, and containing a core of highly enriched U-235 have been built and operated. Since there is no moderator slowing the neutrons down, these type of reactors are called "Fast Neutron Reactors".
The vast majority of reactors are "Thermal Neutron Reactors". The reasons most reactors use thermal neutrons are two-fold. Fast Reactors require fuel enriched above 20%, which can potentially be diverted and used for a nuclear weapon. Additionally Fast Reactors have poor safety characteristics from a reactor physics standpoint, and not surprisingly, have an abysmal safety record. Of the handful of Fast Reactors built, several have suffered meltdowns.
More on moderators though. The purpose of moderation is to slow neutrons down to the point where they are at thermal equilibrium with the surrounding material. The way to accomplish this is by allowing them to impact (or "scatter") against atoms with low mass, and low neutron absorption. If a neutron is absorbed by the moderator, then it is no longer available to split a Uranium atom.
Think of the neutron as a ping-pong ball fired from a cannon. To remove the most energy by collision, ideally it should run into another ping-pong ball, which will recoil and remove some speed. If it collides with a heavy nucleus, like steel, it would be like our ping pong ball bounced off a boulder. It would not lose as much energy to the boulder.
Water is a decent, but not great, moderator. It has two hydrogen atoms for neutrons to scatter against, and it is reasonably dense. The oxygen molecule has the ability to scatter a neutron, but it due to its mass (16) it would take many more oxygen atom collisions to accomplish the task. Water is also plentiful and cheap. This is why in most applications, water is used as a moderator.
Water though, is not an ideal neutron moderator, and here is why: Both the hydrogen and oxygen atoms have a small, but noticeable possibility of absorbing a neutron, thus removing it from the process and making it unavailable to cause a fission.
There are other moderators that are superior to light water from the standpoint of neutron absorption. Even though a Fast neutron may require a larger number of collisions to reach thermal equilibrium, the lower likelihood of being absorbed make other materials superior moderators.
Moderator Number of collisions Likelihood of neutron absorption %
Hydrogen 18 0.3326
Dueterium 25 0.000519
Beryllium 86 0.0076
Carbon 114 0.0035
Oxygen 150 0.00019
Uranium 2152 7.57
Dueterium (in the form of heavy water) is probably the best moderator. This is water with hydrogen atoms that already have one neutron and one proton. Normal hydrogen atoms have just one proton, and occasionally capture one, taking it out of use for the reactor. Dueterium hydrogen atoms have already absorbed a neutron, and are highly unlikely to absorb a second one.
Dueterium is found in nature, but like U-235, is not abundant. It also needs to be enriched at great difficulty and expense to be used as a moderator. However, it is such an efficient moderator that a reactor can be operated with Uranium fuel that has not been enriched.
Beryllium is another excellent moderator, with very little likelihood of absorbing a neutron. Its disadvantages are expense and high toxicity.
Carbon is an excellent moderator, even with the large number of collisions required, its low neutron absorption, and low cost make it a practical moderator, even if it is not a good material to remove heat. A graphite-moderated reactor can also sustain a chain reaction with Uranium that has not been enriched.
The other two items on the list, Oxygen and Uranium are not moderators at all. They just show how increasing the mass of the target atom increases the number of collisions required to moderate a neutron. However on the right hand column, notice the likelihood of absorption for Naturally Occurring Uranium. It does love to vacuum up neutrons :)
In the next post, using what we have learned here, I will describe a few unusual reactors that have been built, either for testing purposes, or for breeding additional nuclear fuel, for nuclear weapons production, and how a nuclear weapon itself works.
Boiling Water Reactors
The primary coolant loop in a PWR is kept at about 2200 psig (155 bar) to prevent boiling in the core. This means the reactor vessel, pressurizer, and steam generators as well as all primary loop components, must be very robust. In addition, they must be made from (or lined with) corrosion resistant materials, due to the addition of boric acid for reactivity control.
With a Boiling Water reactor, the primary coolant loop is also the steam loop. There are no steam generators or pressurizer. The operating pressure is about half that of a PWR, and no boric acid is used. Thus a boiling water reactor can be built with less cost. A BWR also has higher thermal efficiency than a PWR.
Below is a diagram of a BWR vessel. While less expensive to build than a PWR, these are still pretty complex reactors.
Below is a simplified overall diagram of an entire BWR steam/water circuit.
A few things you will notice that are different from a pressurized water reactor:
- The top of the reactor vessel is used as a steam drum, to separate water and steam.
- Because the top of the reactor is a steam drum, control rods are moved to the bottom.
- Inside the reactor vessel are circulation pumps (#4). More on these later.
- Steam directly from the reactor core flows through the entire steam system.
- Not shown in the above image are the feedwater and steam shutoff valves. In the event of a steam line rupture, it is important to keep water in the core, and also to prevent the release of radioactive steam outside of the containment structure.
- Note the shielding required around the entire steam system.
- The control rods and circulating pumps penetrate the bottom of the reactor vessel. Should a leak develop there, it can drain all the water from the reactor vessel. Since the fuel must be kept submerged in water (even for several years after use), this is a potential hazard.
- Water circulating in a power plant always contains minor levels of corrosion - flecks of iron from valves and pumps, and magnetite that falls from the inside of piping as temperatures expand and contract the pipe. These corrosion particles can be carried through the reactor core and absorb a neutron. They can become very radioactive, and then settle outside the reactor core. This material is called CRUD, and is only detectable with a radiation detector.
- In a PWR, CRUD is all contained within the primary loop and inside the containment structure. In a BWR, CRUD is everywhere within the steam system - the steam and drain lines, the turbine, the condenser, the condensate pumps, and feedwater pumps.
- There is an important nuclear reaction that occurs that involves the Oxygen in water molecules, H2O. Oxygen-16, when hit with a high energy neutron, can absorb the neutron and eject\ a proton. It then becomes radioactive Nitrogen-16. This is a nasty isotope of nitrogen, mainly because it decays by emitting a gamma of 7.37 MeV. That's a VERY hot gamma ray. Nitrogen-16 has a half-life of 7.1 seconds, so that means it will be emitting these hot gamma rays while it is passing through the steam turbine, condenser, and settling in the hotwell. Therefore massive shielding is required from all steam and feedwater systems during operation.
- Due to the short half-life of Nitrogen-16, it quickly decays away. Shortly after the reactor is shutdown, the only serious radiological hazard in the steam system is due to CRUD, which is composed of metals that have longer half-lives.
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