Showing posts with label 2 fluid MSR. Show all posts
Showing posts with label 2 fluid MSR. Show all posts

Monday, May 2, 2011

The Molten Salt Reactor Family: One Fluid Reactors

One of the fundamental ways to classify Molten Salt Reactors is the concept of one and two fluid reactors. A one fluid reactor is homogeneous, or as David LeBlanc explains,
both the fertile and fissile material is within the same carrier salt.
It might be added that moderators and fission products can also be carried in the single fluid carrier salt. Everything goes into a single pot. Both Oak Ridge National Laboratory (ORNL) Molten Salt Reactors (MSRs) were single fluid reactors. There are both fairly obvious and some less obvious advantages to the single fluid approach. David LeBlanc listed the advantages.
Advantages:
* Simple core design and can learn from MSRE experience directly,
* Slightly lower neutron losses in the carrier salt (one salt instead of two),
* Ability to run as simple converter reactor if fuel processing not employed,
ORNL researchers worked to develop a two fluid MSR breeder during the mid 1960's. But as ORNL-4541 reported,
In the fall of 1967, however, information was obtained that made a single-fluid MSBR, in which fissile and fertile materials are dissolved in the same salt, appear practical and attractive. The two-fluid study was set aside and a design study of the single-fluid system commenced.

Some of the factors involved were:
1. Research it, the processing of the molten-salt fuels showed that protactinium and other fission products could be separated from the salts containing both uranium and thorium by reductive extraction into liquid bismuth. A single salt containing both the fissile and fertile materials could thus be processed, although with more difficulty than if separate fuel and fertile salts were used.

2. Nuclear calculations indicated that a conversion ratio greater than 1.0 could be achieved in a one-fluid reactor with an acceptably low inventory if the graphite-to-fuel ratio were reduced in the outer regions of the reactor, core. While the fuel specific power feil short of the performance of a two-fluid type, yields of 3 to 4%/year were indicated.

3. Reactor exposure limitations were found to exist relative to use of a graphite moderator, making it necessary to design for graphite replacement. In a two-fluid reactor it appears more practical to replace the entire reactor assembly, including the reactor vessel, when replacing the graphite. The single-fluid MSBR, however, permits easier access through the top head, so that only the core graphite need be replaced.

4. The two-fuid concept depends upon the integrity of the graphite "plumbing" in the reactor vessel to keep the fuel and fertile salt streams separated. The single-fluid des:gn eliminates this potential problem.

5. Radiation damage to graphite during reactor exposure leads to dimensional changes in graphite which are more easily accommodated in a sinsle- fluid MSBR than in a two-fluid design.
David LeBlanc notes some of the disadvantages of the Single-fluid breeder:
Disadvantages

1. Fission product processing greatly complicated by the presence of Thorium
2. Higher neutron leakage
3. Weakly positive temperature coefficient, can be fixed but at large cost
4. Pa removal needed unless both thorium and 233U loading increased substantially
David notes,
Point 3 above is important to discuss. A positive temperature feedback coefficient is generally a bad thing for any reactor design. It is not as serious as may be thought however since the positive term results from effects of the graphite which will lag behind any temperature increase in the salt by tens of seconds at least. Original ORNL work thought it to be slightly negative, recent French studies have shown that to be mistaken. This was mainly due to older calculations treating the graphite and salt mix as homogeneous. In order to solve this problem without destroying the ability to breed, French proposals have gone the route of having an extra Thorium blanket around the core (radial only, not axial). This make it a partial 1 and 1/2 Fluid reactor.
The problem which has been the focus of much attention by French researchers, is that ORNL's single fluid MSBR had a safety flaw in the ORNL one fluid design that if not corrected, could cause loss of control in the ORNL designed one fluid MSBR. This flaw is probably not fatal, but the French seem anxious to not simply replicate ORNL research, so they have made a big deal of it, and at any rate some, but by no means all, reactor design specialists are concerned enough to write off the one fluid graphite moderated MSRs.

The Japanese company International Thorium Energy & Molten-Salt Technology (IThEMS) plans to build a very small 10 MWe Mini-FUJI MSR as well as a larger FUJI MSR in the 100 MWe range. Both FUJI Reactors rely heavily on ORNL developed technology. Both reactors will be designed as converters rather than breeders, both will be single fluid reactors, and both will use the thorium fuel cycle.

ORNL reactor scientists were not all in agreement on the superiority of the single fluid MSBR design. Many continued t0 believe that the two fluid approach offered advantages.


Sunday, December 12, 2010

The MSR/LFTR Beyond WASH-1222

Where is the LFTR on the product development cycle?

A proof of concept MSR prototype was built in the 1950's. It was regarded as highly successful. A more advanced MSRE prototype was built and tested between 1965 and 1969. It was, like the first prototype, considered an outstanding successes. The MSRE accomplished all experimental objectives The MSRE, tested many advanced technologies, including
* Online reactor refueling
* First single reactor to use U-235, U-233, and Pu-239 as nuclear fuel
* The longest reactor runs between shutdowns at the time
* Verified MSR safety features
* Successfully use of the liquid LiF-BeF2-UF4 fuel/coolant formula.
Several developmental problems emerged from the test:
1. Tritium, a radioactive form of hydrogen, was found to have escaped the reactor. This was considered highly undesirable, but not entirely unexpected. ORNL researchers believed that a tritium control system had to be developed. They later accomplished this task.
2. Cracking on the surface of metal alloys that came in contact with liquid salts was observed. Later research identified the cause of the of the cracking, a fission product, and methods of preventing the problem.
3 Prolonged and heavy neutron radiation exposure of graphite, lead to changes of graphite internal structure. This produced swelling of the graphite moderators which also served as the inner plumbing of the reactor. The swelling of the graphite structure weakened it. This problem has not yet been solved, but it can be worked around. One work around would involve the floating of hundreds of graphite pebbles, that is small graphite balls in and out of the MSR core. The pebbles would not have any structural function, but would serve as a moderator. When the pebbles swell from excessive radiation, they can be captured sas they flote out of the reactor core, and removed from the reactor.

By the time the MSRE project was shut down, the design of a large (1000 MWe) LFTR, the MSBR was well under way. The MSBr was designed to serve as a thorium fuel cycle breeder that could produce electricity at a cost that was competitive with electricity produced by conventional Light Water Reactors. The jump from the 10MWt MSRE to a 3000t MW MSBR was in hindsight overly ambitious, but was expected by AEC. The development of the sort of small modular MSR proposed in ORN-4037: ORNL4119: ORNL4191: and ORNL-4528 was very promising, even if the graohite core presented a challenge. ORNL management, and MSBR in particular believed that the solution to the graphite problem in 2 fluid reactors was particularly unsatisfactory. A two fluid core design, that is a core design in which fuel salts and fertile blanket salts were intended to be kept separate, required a graphite core structure. Graphite swelling lead to problems with graphity 2 fluid core structures, and one solution was to periodically remove the core graphite removed and replace it. There are several less drastic alternatives, which ORNL management chose to not include. The included periodic core graphite replacement, the building of a very large graphite core, or the use od a pebble bed core graphite solutuin, with pebbles being periodically replaced, as the began to swell.

Wash-1222 listed a number of developmental issues facing the MSBR design and development team. Wash-1222 stated, "the development of these larger components along with their special handling and maintenance equipment is probably one of the most difficult and costly phases of MSBR development. However, reliable, safe, and maintainable components would need to be developed in order for any reactor system to be a success".

WASH-1222 also noted, "The salt valves for large MSBR's represent another development problem, although the freeze valve concept which was employed successfully in the MSRE could likely be scaled up in size and utilized for many MSBR applications. Mechanical throttling valves would also be needed for the MSBR salt systems, even though no throttling valve was used with the MSRE. Mechanical shutoff valves for salt systems, if required, would have to be developed". This would seem to be a simple developmental task. Further, the writer of WASH-1222 seems unaware of how the negative temperature coefficient of reactivity characteristic of good Molten Salt Reactr designs, effects throttling. As heat is extracted from a MSR core, the core fluid contracts, and more fuel carrying fluid is automatically drawn into the core, throttling a MSR up. If MSR core temperature rises, core fluid expands, and more fuel carrying fluid is expelled from the core, decreasing core reactivity.

WASH-1222 also noted that an integrated fuel reprocessing system would have to be tested, and a design for system integration for the entire MSBR was also required. But the development of MSR fuel reprocessing technology was already underway at ORNL, and the developmental tasks were well understood. It is not as if the development of fuel reprocessing technology would start from scratch.

Many of the developmental tasks listed by WASH-1222 apply primarily or entirely to the MSBR. One of the flaws of WASH-1222 was its failure to assess, how far existing ORNL technology could carry MSR design. In fact it would have required very little effort to develop a commercially viable MSR converter, using MSRE technology. Other developmental tasks intended to take MSR technology beyond the MSRE phase, although some posed significant challenges, would likely have been be routine and not likely to pose a inordinate challenge.

WASH also noted the MSBR "requirement for remote maintenance will significantly affect the ultimate design and performance of the plant system". It then pointed to one of the significant problems with the MSBR design, "the removal and replacement of core internals, such as graphite, might pose difficult maintenance problems because of the high radiation levels involved and the contamination protection which would be required whenever the primary system is opened". This pointed to one of the most significant problem of the MSBR design, the resolution of the graphite problem by periodic core removal. French MSR researchers, have recently made the choice to follow a developmental track that eliminates graphite from the core of their proposed MSR. Their analysis of the difficulties posed by the graphite core of the MSRE, lead them to conclude that despite some significant disadvantages, the a graphite free core offered more advantages. This issue is far from settled, and it is my no means certain that the graphite challenge corresponds to the worst case scenario.

But replacing graphite was hardly an impossible challenge, and MSR designers had their choice of several technologies to get the job done. We have already noted that some believe that one solution was to float graphite pebbles in and out of MSR cores.

WASH-1222 raised questions about the safety of the MSBR. Subsequent MSR safety analysis by Uri Gat, and Gat and Dodds, would seem to resolve most safety questions on a conceptual level. Recent discussions in the "Energy from Thorium" raised questions about assurances that the "salt freeze safety valve would operated in a timely fashion in the event of an emergency shut down. My rather brief review of ORNL reports did not shed light on the question. In absence of definitive evidence from ORNL reports, the proper functioning of the emergency reactor drain system including the freeze valve, should be verified, and any short comings rectified.

Thus the major MSBR developmental problems noted by WASH-1222 were the tritium problem, and the problem of core graphite. The tritium problem requires a technological fix that is clearly not impossible. Several work around ideas have been proposed for the graphite problem, and a French MSR design team has adopted one.

In addition to the developmental issues noted by WASH-1222, the problem of protactinium extraction, a problem that bedeviled my father from the late 1950's to the mid 1960's, has been the subject of continuing discussions on "Energy from Thorium". The tenor of the discussion seems to be as follows, protactinium extraction fro a single fluid reactor is difficult and probably should be avoided if possible. This was my father's view.

I mentioned alternative approaches to the graphite problem. Again some available options have been discussed on "Energy from Thorium". These include the big pot approach which has attracted french interest. The reactor core is simply a open chamber into which liquid salt coolant/fuel is poured. No moderator is used although the liquid coolant/fuel does have some moderating effect. There are disadvantages to this approach. The amount of fissionable fuel required to sustain a chain reaction would be much greater that in a moderated MSR.

As i have already mentioned several times, one interesting option would be to put graphite pebbles into the pot in order to provide a moderator. The graphite pebbles would float in the liquid salt and could be periodically removed for replacement. This system was actually suggested at ORNL in 1970.

"Jaro" suggested the use of self-cleansing carbon nanotubes as MSR moderators. Another "jaro" suggestion involved the use of heavy water being piped through the MSR core. There would probably be safety concerns about this design, although heavy water would work even better as a moderator that graphite.

It would appear then that the graphite problem was not the big MSR deal killer WASH-1222 imagined it to be. Solutions and work arounds exist for the graphite problem, but reactor developers have to decide which one to choose.

Finally, research on the tritium problem was problem was continued at ORNL into the mid 1970's. Tritium (H-3) is a radioactive isotope of hydrogen that primarily is produced from lithium-6 isotopes. If pure lithium-7 is used in the fuel, then the LFTR tritium problem would be greatly reduced, but not entirely eliminated. Tritium like the other forms of hydrogen diffuse through metal barriers. Tritium is most likely to escape the MSR/LFTR through the thin walls the heat exchange. ORNL researchers in 1977 later reported that they were making progress toward a solution to the tritium problem when their funding was cut off by the United States government energy bureaucracy. Again the tritium problem seems no deal breaker. The ORNL researchers who were trying to solve the tritium problem stated:
"Although a complete understanding of the behavior of tritium in sodium fluoroborate could not be developed from this series of experiments due to the termination of the Molten-Salt Reactor- Program, the effectiveness of sodium fluoroborate to trap tritium was demonstrated. Furthermore, use of sodium fluoroborate as a secondary coolant in an MSBR would be expected t:o adequately limit the transport of tritium to the reactor steam system and environment".

The ORNL researchers further summarized their findings:

The tritium addition experiments conducted in the CSTF demonstrated sodium fluoroborate’s effectiveness for sequestering tritium. However, further experimentation and research would be required to yield a better understanding of tritium behavior in sodium fluoroborate, to better define basic parameters, and to explain some of the observed phenomena as a result
of conducting the experiments in the CSTF.

If the MSR program were to be continued, further investigation relating to the following would be desirable:
1. The chemistry of sodium fluoroborate and the trapping process by which tritium is retained by the salt,
2. Permeability values for Hastelloy N.
3. Solubility data for the dissolution of elemental hydrogen (tritium) in sodium fluoroborate.
4. Data on gas-liquid equilibria in the pump bowl in an effort to explain behavior such as that observed in experiment T4 when, upon increasing the off-gas flow rate to 4 liters/min, equilibrium conditions in the pump bowl between the gas and liquid were altered drastically.
5. Identification of the sink that required saturating before steady state conditions could be established.
6. Determination of the existence of an extraneous source of hydrogen in the off-gas system and its effect (if present) on the behavior and distribution of tritium in the CSTF
".

Thus the obstacles to successful development of the MSR/LFTR mentioned by the WASH-1222, were probably significantly smaller than those which faced the LMRBR development at the same time, and significantly less than the challegens facing the high breeding ratio IFR at the current time.. Design choices and promising research avenues known since the 1970's are still available.

Currently the International Thorium Energy & Molten-Salt Technology Inc. (IThEMS) has proposed to build a MSRE size and technology single fluid prototype reactor which Dr. Furukawa argues can be developed for $300,000,000. Dr. Furukawa believes that a 200 MWe Small FUJI reactor can be ready for serial production in as little as 10 to 12 years. if the costs arew proportionate to those which he imagines for the Mini-FUJI, the FUJI would offer a very promising line of post carbom energu development.

Dr. Furukawa's estimates are very optomistic, but camnot and should not be dismissed, until they are shown t9 be based on false assumptions.

Sunday, April 12, 2009

ORNL-4528 and the two fluid modular MSR

Kirk and I have been separately looking at ORNL-4528, a document that sets out ORNL thinking about a modular two fluid, graphite moderated MSR project. This concept was developed at ORNL between 1966 and 1967 and ORNL-4528 documents thinking about the concept during that brief period. This design work is of current interest because of interest in small factory build LFTRs in the Energy from Thorium community. ORNL's interest in modular MSRs was motivated by somewhat different concerns. For ORNL scientists, the lifespan of a MSR Graphite core was am issue of major concern. The limited lifespan of the graphite core necessitated periodic reactor shutdown for core replacement. The use of small modular reactors allowed a generation plant to continue operating at 75% of capacity while one core was being replaced. The replacement of the smaller chore of the modular reactor would also have been a somewhat easier task.

The basic purpose of ORNL-4528 differed from other MSR designs between 1962 and 72. Unlike other reactor system design projects ORNL-4528 was not written to as a part of an ongoing development program. Rather it was written after the two fluid line of development it represented had been dropped in favor of a single fluid design. ORNL-4528 was one of five 1 GWe MSR designs developed between 1961 and 1971 by ORNL or by associated engineering firms. The purpose of the other 4 designs was explained by ORNL-5018:
The objectives of this activity are: (I) to develop the conceptual
design for a commercial 1000 MW(e) MSBR in sufficient detail to identify the major areas im which additional technology development is required and to produce meaningful estimates of the nuclear and economic performances of this reactor type, (2) to develop the design criteria and conceptual design for a molten-salt demonstration reactor that will provide the information necessary for construction of commercial MSBRs in sufficient detail to identify additional technology development which is required for construction of the demonstration reactor and to provide improved estimates of the capital and operating costs for the demonstration reactor, (3) to develop the design criteria and conceptual design for a molten-salt test reactor in sufficient detail to identify additional
technology development which is required for construction of the test reactor and to provide improved estimates of the capital and operating costa for the test reactor, and (4) to develop the design criteria and conceptual design for a molten-salt teat reactor mockup in sufficient detail to identify additional technology development which is required for construction of the test reactor mockup and to provide improved estimates of the capital and operating costs for the mckup.

An additional important objective of this activity is the examination of alternate reactor types such as molten-salt converter reactors using uranium or plutonium fuel makeup as well as uses for molten-salt reactors other than large central station electric power generation in sufficient detail to assess the likely economic importance of alternate molten-salt reactor types. Limited conceptual design work would be carried out on alternate reactor types which show promise.
Because the line of research document led by ORNL-4528, its intent was not to offer clues for future development, but to document a terminated line of research. Many ORNL scientists, including my father, were not in agreement with the decision to abandon the two fluid approach, their continued believe in the soundness of their views, may have motivated the desire to document the modular two fluid design.

At any rate the design documented by ORNL-4528 is far from mature and contains flaws. I would encourage readers to find flaws and comment on them.

ORNL-4528
UC-80 - Reactor Technology

TWO-FLUID MOLTENSALT BREEDER REAmOR DESIGN STUDY
(STATUS AS OF JANUARY 1, 1968)
R. C. Robertson
R. B. Briggs
O. L. Smith
E. S. Bettis

ABSTRACT
A conceptual design study of a 1000 Mw(e) thermal breeder power station based on a two-fluid MSBR was commenced in 1966 as part of a program to determine whether a molten-salt reactor using the thorium-U-233 fuel cycle could produce electric power at sufficiently low cost to be of interest and at the same time show good utilization of U.S. nuclear fuel resources. This report covers the progress made in the study up to August 1967, at which time the two-fluid MSBR work was set aside in order to study a single-fluid MSBR concept. The latter became of interest at that time due to the discovery that protactinium and other fission products could be separated from a uranium-and-thorium-bearing fuel salt by reductive extraction into liquid bismuth.

The two-fluid MSBR is graphitemoderated and -reflected, with a 'LiF-BeFz-UFe fuel salt circulated through the core and a 'LiF-ThF4-BeF2 blanket salt circulated through separate flow channels distributed throughout the core, as well as in a surrounding under moderated region. The fissings raise the temperature of the fuel salt to about 1300 F and that of the blanket salt to about 1250 F. Heat is removed from the salts in shell-and-tube heat exchangers to raise the temperature of a circulating NaBF4-NaF coolant salt to about 1150°FbThe co$ant salt transports the heat to steam generators and reheaters to provide 3500-psia 1000 F/l000 F steam for a conventional turbine generator.

The conceptual design was based on use of four reactors and the associated heat transfer systems in a socalled modular arrangement to supply steam to a single turbine-generator. This made it practical to consider replacement of an entire reactor vessel assembly after the core graphite received its allowable exposure to neutrons. The total fluence at which it was thought that additional graphite dimensional changes would become excessive was taken as 3 x neutrons/cm2 (E > 50 kev), or about eight years of full-power operation.

All portions of the systems in contact with the fluoride or fluoroborate salts would be fabricated of Hastelloy N that has a small amount of titanium added to improve the resistance to radiation damage. The graphite would be a specially coated grade having low gas permeability to xenon and better resistance to radiation damage than conventional material. The two-fluid concept involves joining graphite core elements to Hastelloy N tubing using a brazing process developed at ORNL.

The reactors and associated systems would be housed in concrete cells to provide biological shielding and double containment of all radioactive materials. Plant flowsheets and layouts were developed sufficiently during the study to give an indication of feasibility and to give a basis for cost estimates, but no optimization studies were made. Safety aspects were considered throughout the design effort, but no formal safety analysis was completed.

Fuel and blanket salts would be continuously processed in a nearby cell to remove fission products and to recover the bred product. The processing rate would correspond to removal of uranium and protactinium from the blanket on a 3-day cycle and rareearth fission products from the core on a 6-y cycle. Since no conceptual designs for the chemical plant were completed, cost estimates could not be on a definitive basis. The tentatively estimated fuel cycle cost is about 0.5 mill/kwhr, which includes the fixed charges and operating costs for the processing equipment, the fuel inventory charge, and the credit for bred fuel. Graphite replacement costs, which are not included, would add about 0.2 mill/kWhr.

The tentatively estimated total construction cost of a 1ooo-Mw(e) MSBR station, based on the early 1968 value of the dollar, is about $141 per kilowatt. The power production cost for a privately owned station, based on fixed charges of 13.7% and 80% plant factor, is about 4 mills/kwhr. The net thermal efficiency of the plant would be about 44.9%. The off-gas, fuel processing, afterheat removal, and maintenance systems needed further investigation at the time the study was suspended, and the limited performance of the graphite undoubtedly restricts the design and imposes a maintenance penalty, but the study did not disclose
any aspects which indicated that major technological discoveries would be required to design a two- fluid molten-salt reactor power statiohThe major concern was whether mechanical failure of graphite tubes in the reactor core would cause the effective lifetime of the core to be significantly less than the eight years imposed by the effects of irradiation on the graphite.

Update 4/16/09: Kirk is publishing sections of ORNL-4528 on Energy from Thorium.

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