TRIGA (Training, Research, Isotopes, General Atomics) is a class of nuclear research reactor designed and manufactured by General Atomics. The design team for TRIGA, which included Edward Teller, was led by the physicist Freeman Dyson. Multiple variants of the reactor have been built, with a total of 66 having been installed across 24 different countries. The reactors have constant thermal power outputs ranging from 0.1-16 MW and can be pulsed to 22,000 MW.

Design

TRIGA is a swimming pool reactor that can be installed without a containment building, and is designed for research and testing use by scientific institutions and universities for purposes such as undergraduate and graduate education, private commercial research, non-destructive testing and isotope production.

The TRIGA reactor uses uranium zirconium hydride (UZrH) fuel, which has a large, prompt negative fuel temperature coefficient of reactivity, meaning that as the temperature of the core increases, the reactivity rapidly decreases. Because of this unique feature, it has been safely pulsed at a power of up to 22,000 megawatts.[1] The hydrogen in the fuel is bound in the uranium zirconium hydride crystal structure with a vibrational energy of 0.14eV.[2] These levels fill when the fuel is hot, and transfer energy to thermal neutrons making them more energetic and, therefore, less likely to cause a fission. TRIGA was originally designed to be fueled with highly enriched uranium, but in 1978 the US Department of Energy launched its Reduced Enrichment for Research Test Reactors program, which promoted reactor conversion to low-enriched uranium fuel.[3][4]

History

The concept of the TRIGA reactor was invented in the summer of 1956 when the president of the newly founded company General Atomics, Frederic de Hoffmann, invited a group 30–40 nuclear scientists (many of them alumni of the Manhattan Project) to consider what types of reactors would be commercially promising. The exploratory work focused on three concepts: a "Ship Reactor" (to propel merchant ships), a "Test Reactor" (for experimentally irradiating parts of nuclear power reactors), and a "Safe Reactor" (which eventually became TRIGA). During June-September the scientists worked out designs for the three reactors, and at the end of the summer de Hoffmann chose TRIGA for commercial development.[5]

The "Safe reactor" working group was led by Edward Teller, who proposed that General Atomics should break into the market by developing a reactor that was much safer than its competitors. In Teller's words the reactor should be safe "even in the hands of a young graduate student"[6], or in the words of Freeman Dyson "even in the hands of an idiot clever enough to by-pass the entire control system and blow out the control rods with dynamite."[5] The working group comprised ten physicists, chemists, and engineers, including Freeman Dyson (who worked on the mathematical theory) and Massoud T. Simnad (who developed the fuel chemistry). At the end of the summer the preliminary design was handed over to a smaller team of General Atomics scientists, Ted Taylor, Stan Koutz, and Andrew McReynolds, for detailed development. The prototype for the TRIGA nuclear reactor (TRIGA Mark I) was commissioned on 3 May 1958 on the General Atomics campus in San Diego and operated until shut down in 1997. It has been designated as a nuclear historic landmark by the American Nuclear Society.

Mark II, Mark III, and other variants of the TRIGA design have subsequently been produced, and a total of 33 TRIGA reactors have been installed at locations across the United States. Those that remain operational continue to be upgraded or modernized.[7] A further 33 reactors have been installed in other countries. Many of these installations were prompted by US President Eisenhower's 1953 Atoms for Peace policy, which sought to extend access to nuclear physics to countries in the American sphere of influence. Consequently, TRIGA reactors can be found in a total of 24 countries, including Austria, Bangladesh, Brazil, Congo, Colombia, United Kingdom, Finland, Germany, Taiwan, Japan, South Korea, Italy, Indonesia, Malaysia, Mexico, Morocco, Philippines, Puerto Rico, Romania, Slovenia, Thailand, Turkey, and Vietnam.

TRIGA International, a joint venture between General Atomics and CERCA—then a subsidiary of AREVA of France—was established in 1996. Since then, all TRIGA fuel assemblies have been manufactured at CERCA's plant in Romans-sur-Isère, France.

Some of the main competitors to General Atomics in the supply of research reactors are Korea Atomic Energy Research Institute (KAERI) of South Korea and INVAP of Argentina.

The TRIGA Power System (TPS) is a proposed small power plant and heat source, based upon the TRIGA reactor and its unique uranium zirconium hydride fuel, with a thermal power output of 64 MW producing 16 MW of electricity.[8][9]

Inherent Safety via Warm Neutrons

Edward Teller's goal was an "inherently safe" reactor, meaning that even if all the control rods are abruptly withdrawn, the reactor will settle to a stable state before it is damaged by the heat. To achieve this it needs to have a large negative temperature coefficient, i.e. the amount of reactivity should decrease quickly as the reactor gets hotter.

Most nuclear reactors exhibit a negative temperature coefficient to some extent. As fuel temperature rises, thermal expansion reduces the fuel density, lowering reactivity. In addition, the neutron absorption of U-238 (the non-fissile uranium isotope) increases with temperature due to Doppler broadening, increasing neutron capture and thereby reducing the number of neutrons available to sustain the fission chain reaction.

The TRIGA design additionally makes use of effects related to the energy of thermal neutrons.[10] Like most reactors, TRIGA is a thermal-neutron reactor in which fast neutrons produced by fission are slowed by a neutron moderator until they reach thermal equilibrium with the surrounding material. The U-235 fission cross section is much larger for low-energy neutrons than for higher-energy ones. As the temperature of the moderator increases, the average energy of thermal neutrons also increases, reducing the probability that they will induce fission and increasing the likelihood that they will escape from the fuel (the "leakage effect") and be absorbed elsewhere. An even larger negative coefficient can be obtained by incorporating neutron absorbers such as erbium into the fuel[11], which preferentially absorb higher-energy thermal neutrons.

The challenge of exploiting the leakage effect was to ensure that the temperature of the neutrons tracks the temperature of the reactor. In general the thermal energy of the neutrons will always correspond closely to the temperature of the moderator. But in a conventional reactor the moderator is separate from the fuel; for example a light-water reactor uses water next to the fuel rods as a neutron moderator. If there is a power surge in such a reactor, the fuel rods can heat up and melt long before the water starts to heat up. Therefore, the TRIGA designers set out to make a "homogeneous reactor", where the fissionable material and the moderator are combined in a homogeneous mixture.[10]

Several candidate materials were investigated as potential moderators that could be combined with uranium fuel, including beryllium, beryllium oxide, graphite, lithium hydride, sodium hydride, and zirconium hydride (ZrHx). Zirconium hydride was ultimately selected because of its low chemical reactivity, low toxicity, good thermal conductivity, and low cost. However, little was known in 1956 about the metallurgy or neutronics of ZrH, so extensive experimental and theoretical work was needed.[12]

The TRIGA fuel consists of a homogeneous alloy of uranium-zirconium hydride. The zirconium matrix can hold a large number of hydrogen atoms (with a H/Zr ratio around 1.6[13]), and the hydrogen is a good moderator. Water surrounding the fuel provides additional moderation and cooling. Because the uranium is dispersed inside the zirconium hydride matrix, the temperature of the hydrogen and hence the thermal neutrons instantly track the rest of the fuel. Using standard TRIGA fuel, 50% of the temperature coefficient of the reactor is due to the thermal spectrum of the neutrons.[11]

List of all TRIGA Nuclear reactors built around the world

CountryCityNameTypeStatusThermal Power [kW]Operation DateClosure DateOwner and OperatorNotes
AustriaViennaTRIGA II VIENNATRIGA Mark II2501962-03-07Atominstitute / Institute of Atomic and Subatomic Physics
BangladeshSavar, DhakaBTRR, BAEC TRIGA Research ReactorTRIGA Mark II3000[14]1986-09-14Atomic Energy Research Establishment (Bangladesh)
BrazilBelo HorizonteTRIGA IPR-R1TRIGA Mark I1001960-11-06CDTN - Centro de Desenvolvimento de Tecnologia Nuclear
  • The expansion to 250 KW is in the licensing process, for which a new refrigeration system has been installed.
ColombiaBogotaIAN-R1TRIGA CONV301965-01-20
Congo, DR ofKinshasaTRICO ITRIGA Mark I501959-06-061970CREN-K University of Kinshasa
TRICO IITRIGA Mark II11972-03-24CREN-K University of Kinshasaextended shut down since 2004 [18]
FinlandEspooFIR-1TRIGA Mark II2501962-03-272015VTT Technical Research Centre of Finland
GermanyFrankfurt am MainFRF-2TRIGA Conv11977-10-01
HeidelbergTRIGA HD ITRIGA Mark I2501966-08-01
HannoverFRHTRIGA Mark I2501973-01-31
HeidelbergTRIGA HD IITRIGA Mark I2501978-02-28
MainzFRMZTRIGA Mark II1001965-08-03Johannes Gutenberg-Universität Mainz
MunichFRNTRIGA Mark III11972-08-23
IndonesiaBandungTRIGA Mark II, BandungTRIGA Mark II20001964-10-192MW installed 1997
SlemanKARTINI-PSTATRIGA Mark II1001979-01-25
ItalyRomeTRIGA RC-1TRIGA Mark II11960-06-11
PaviaLENA, TRIGA II PAVIATRIGA Mark II2501965-11-15
JapanTōkai, IbarakiNSRRTRIGA Acpr3001975-06-30
YokosukaTRIGA-II RikkyoTRIGA Mark II1001961-12-08
TokyoMusashi ReactorTRIGA Mark II1001963-01-30
Korea, Republic ofSeoulKRR-1TRIGA Mark II2501962-03-19KAERIResearch Reactor,100 kW, built 1962 (Decommissioned)[52]
SeoulKRR-2TRIGA Mark III21972-04-10KAERIResearch Reactor, 2MW, BUILT 1972 (Decommissioned)[53]
MalaysiaKajang, SelangorTRIGA Puspati (RTP)TRIGA Mark II11982-06-28Malaysian Nuclear Agency
MexicoLa Marquesa OcoyoacacTRIGA Mark IIITRIGA Mark III11968-11-08National Institute for Nuclear Research
MoroccoRabatMA-R1TRIGA Mark II22007-05-02
PhilippinesQuezon CityPRR-1Subcrit (TRIGA-converted)03 MW TRIGA-converted reactor, Quezon City. Managed by the Philippine Nuclear Research Institute (formerly Philippine Atomic Energy Commission). 1st criticality in August 1963, reactor conversion in March 1984, criticality after conversion in April 1988, shut down since 1988 for pool repairs, on extended shutdown at present.
Puerto RicoMayagüez - TRIGA reactor (dismantled)
RomaniaPitestiTRIGA II Pitesti - SS CoreTRIGA Dual Core140001980-02-02
TRIGA II Pitesti - PulsedTRIGA Dual Core5001980-02-02
SloveniaLjubljanaTRIGA- MARK II LJUBLJANATRIGA Mark II2501966-05-31Jožef Stefan Institute(web page link) [51]
TaiwanHsinchu CityTHORTRIGA Conv1961-04-13[56]
ThailandBangkokTRR-1/M1TRIGA Mark III1977-11-07Thailand Institute of Nuclear Technology (TINT)Thai Research Reactor 1/Modification 1, Installed 1962, modified 1975–77.
TurkeyIstanbulITU-TRRTRIGA Mark II2501979-03-11Istanbul Technical UniversityInstitute of Energy
United KingdomBillinghamICI TRIGA ReactorTRIGA Mark I2501971-08-011988ICI Physics and Radioisotopes Dept of ICI R&D (later to become Tracerco)
USAUrbana, ILLOPRA Univ. IllinoisTRIGA101971-12-28
San Ramon, CAARRRTRIGA CONV2501964-07-09
Pullman, WAWSUR Washington State Univ.TRIGA CONV10001961-03-07
Madison, WIUWNR Univ. WisconsinTRIGA CONV10001961-03-26
College Station, TXNSCR Texas A&M Univ.TRIGA CONV10001962-01-01
Mayagüez, Puerto RicoTRIGA Puerto Rico Nuclear CenterTRIGA CONV20001972-01-19
State College, PAPSBR Penn St. Unv.TRIGA Mark CONV10001955-08-15
Silver Spring, MDDORF TRIGA Mark FTRIGA Mark F2501961-09-01
Bethesda, MDAFRRI TRIGATRIGA Mark F10001962-01-01
Hawthorne, CATRIGA Mark F, NorthropTRIGA Mark F10001963-01-01
Omaha, NEVeterans Affairs RRTRIGA Mark I201959-06-26
Salt Lake City, UTTRIGA Univ. UtahTRIGA Mark I1001975-10-25
Tucson, AZUniv. Arizona TRIGATRIGA Mark I1001958-12-06
San Diego, CAGA-TRIGA ITRIGA Mark I2501958-05-03
San Diego, CAGA-TRIGA FTRIGA Mark I2501960-07-01
Portland, ORRRR Reed CollegeTRIGA Mark I2501968-07-02
Irvine, CAUC Irvine TRIGATRIGA Mark I2501969-11-25
Austin, TXUT TRIGA Univ. TexasTRIGA Mark I2501963-01-01
East Lansing, MITRIGA Mark I Michigan State Univ.TRIGA Mark I2501969-03-21
Midland, MIDow TRIGATRIGA Mark I3001967-07-06
Richland, WANRF, Neutron Rad FacilityTRIGA Mark I10001977-03-01
DenverGSTR US Geological SurveyTRIGA Mark I10001969-02-26
San Diego, CATRIGA Mark IITRIGA Mark II501959-12-11
Manhattan, KSKSU TRIGA Mark IITRIGA Mark II2501962-10-16
Idaho Falls, IDNRADTRIGA Mark II2501977-10-12
Ithaca, NYTRIGA Cornell UnivTRIGA Mark II5001962-01-01
Corvallis, OROSTR, Oregon State Univ.TRIGA Mark II11001967-03-08
Austin, TXTRIGA II Univ. TexasTRIGA Mark II11001992-03-12
Urbana, ILUniversity of Illinois Advanced TRIGATRIGA Mark II15001960-08-161998Grainger College of Engineering - Nuclear, Plasma & Radiological Engineering[15]
Sacramento, CAUC Davis/McClellan TRIGATRIGA Mark II20001990-01-20
Berkeley, CABRR UC BerkeleyTRIGA Mark III10001966-08-10
San Diego, CAGA-TRIGA IIITRIGA Mark III20001966-01-01
College Park, MDMUTR Univ. MarylandTRIGA MODIFIED2501960-12-01
Albuquerque, NMACRR Annular Core RRTRIGA MODIFIED24001967-06-01
VietnamDa LatDalat Research ReactorTRIGA Mark II5001963-02-26(supplied by USA 1963, shut down 1975, reactivated by USSR 1984)

See also

Notes

  1. ^ TRIGA Nuclear Reactors General Atomics
  2. ^ TRIGA Nuclear Reactors General Atomics
  3. ^ Argonne National Laboratory. "RERTR Radiological Threat Reduction Program". Retrieved 2013-12-09.
  4. ^ "Global Threat Reduction Initiative - Strategic Plan January 2009". Retrieved 16 February 2018.
  5. ^ Dyson, Freeman (April 15, 1981). "Chapter 9: Little Red Schoolhouse". Disturbing The Universe. Basic Books.
  6. ^ Teller, Edward & Shoolery, Judith L. (2002). Memoirs: a twentieth-century journey in science and politics. Oxford: Perseus Press. p. 423. ISBN 9780738207780.
  7. ^ "New Console Installed at U's Triga Reactor". 29 October 2020.
  8. ^ "UxC: Small Modular Reactor Market Outlook". www.uxc.com
  9. ^ Triga Power System: A Passive Safe Co-Generation Unit for Electric Power and Low Temperature Heat, Small Reactors for Low Temperature Heat Applications, IAEA-TECDOC-463 (International Atomic Energy Agency, Vienna, 1988) pp. 45-55
  10. ^ No. 3127325.
  11. ^ No. 4186050.
  12. ^ IAEA Technical Reports Series 482: History, Development and Future of TRIGA Research Reactors. IAEA. July 2016. Retrieved 2026-03-08.
  13. ^ Simnad, Massoud T. (February 1980). "The U-ZrHx Alloy: Its properties and use in TRIGA fuel. Report E-117-833.". General Atomic Company. Retrieved 2026-03-08.
  14. ^ "Centre for Research Reactor". baec.gov.bd
  15. ^ Mumm, Susan (2015-09-14). "Former TRIGA Reactor gains ANS National Historic Landmark status". University of Illinois Urbana-Champaign

References