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SST-1 (tokamak)

From Wikipedia, the free encyclopedia
Indian fusion energy research device
SST-1
Steady State Superconducting Tokamak
Device typeTokamak
LocationGandhinagar,India
AffiliationDepartment of Atomic Energy
Technical specifications
Major radius1.1 m (3 ft 7 in)
Minor radius0.2 m (7.9 in)
Magnetic field3 T (30,000 G)
History
Year(s) of operation2005–present
Links
Websitewww.dae.gov.in/node/255

SST-1 (orSteady State Superconducting Tokamak) is aplasma confinement experimental device in theInstitute for Plasma Research (IPR), an autonomous research institute underDepartment of Atomic Energy,India. It belongs to a new generation oftokamaks with the major objective being steady state operation of an advanced configuration ('D' Shaped) plasma. It has been designed as a medium-sized tokamak with superconducting magnets.

The SST-1 project helped India become capable of conceptualizing and making a fully functionalfusion based reactor device. The SST-1 System is housed in Institute for Plasma Research,Gandhinagar. The SST-1 mission has been led by Indian plasma physicists Prof. Y.C. Saxena, Dr. Chenna Reddy, Dr. Subrata Pradhan and Dr. Daniel Raju (presently).

SST-1 will be followed by a larger machine SST-2 before building the Indian DEMO fusion power plant.[1]

History

[edit]

The first talks about SST Mission started in 1994. The technical details and mechanical drawings of the system were finalized in 2001. The machine was fabricated by 2005.Godrej-Boyce Pvt. Ltd. played a crucial role in fabrication of the SST-1 coils. The assembly of SST-1 convinced senior members of theIndian Civil Service to approve the requests of Indian physicists to join theITER program [See Info Box]. On 17 August 2005, PM Sayeed, then India's power minister informed theRajya Sabha about India's claim to join ITER.[2] A team from ITER, France visited the SST-1 mission control housed in Institute for Plasma Research to see the advances Indian scientists had made. Finally on 6 December 2005, India was officially accepted as a full partner of the ITER project.[3] To improve and modify some of the components, the SST-1 machine was subsequently disassembled. The improved version of the machine was completely assembled by January 2012.

It was fully commissioned in 2013. And by 2015, produces repeatable plasma discharges up to ~ 500 ms with plasma currents in excess of 75000 A at a central field of 1.5 T.[4] "SST-1 is also the only tokamak in the world withsuperconducting toroidal field magnets operating in two-phase helium instead of supercritical helium in a cryo-stable manner, thereby demonstrating reduced cold helium consumption. "[4][5]

As of Dec 2015 it is having upgrades including to theplasma facing components to allow longer pulses.[5][needs update]

Objectives

[edit]

Traditionally the tokamaks have operated with a `transformer' action- with plasma acting as a secondary, thus having the vital `self-generated' magnetic field on top of the `externally generated' (toroidal and equilibrium) fields. This is a pretty good scheme in which creation, current-drive and heating are neatly integrated and remained a choice of the fusion community for many years until the stage came to heat the plasma to multi-keV temperatures. Heating was then accomplished separately by radio frequency (RF) waves and/or energeticneutral beam injection (NBI).

Subsequently, excellent control got established on tokamak plasma performance by controlling the plasma-wall interaction processes at the plasma boundary so the plasma duration was limited primarily by the `transformer pulse length'. However, for relevance to future power reactors it is essential to operate these devices in a steady state mode. The very idea of steady state operation presents a series of physics and technology challenges. For example, the excellent plasma performance which was accomplished earlier, was with the surrounding material wall acting as a good 'pump' of particles, a fact which may not be true in steady state.

So one has to try and accomplish an equally good performance in presence of a possibly `saturated' wall. Secondly, a host of engineering and technical considerations spring up. The magnets must besuperconducting type, otherwise the power dissipation in conventional (resistive) types can reach uneconomical levels. They have to be specially designed to remain superconducting in spite of their proximity to the other `warm' objects (like vacuum vessel etc.). The heat and particle exhaust must be handled in steady state with specialized tiles and active cooling. The advanced, so-calleddouble null divertor plasma configuration has to be maintained through efficient feedback control avoiding plasma disruptions over long discharge durations.[6]

Tokamak parameters

[edit]
Toroidal field,Bθ3 T
Plasma current,IP0.22 MA
Major radius,R01.1 m
Minor radius,a0.2 m
Aspect ratio,R/a5.5
Elongation,κ<=1.9
Triangularity,δ<=0.8 
Ion cyclotron resonance heating (ICRH)1 MW
Lower hybrid current drive (LHCD)1 MW
Neutral beam injection (NBI)1 MW
Discharge Duration1000 s
ConfigurationDouble-null divertor

Plasma diagnostics on SST-1

[edit]

SST-1 will feature many new plasma diagnostic devices, many of which are being used for the first time in fusion research in India. Some of the novel plasma diagnostics devices incorporated in SST-1 are:

Almost all of the diagnostic devices installed on SST-1 are indigenous and are designed and developed by Diagnostics Group of Institute for Plasma Research. This group is the only group working on plasma diagnostics and related technologies in Indian Subcontinent.

SST-2

[edit]

The next stage of SST mission, the SST-2 fusion reactor, dubbed as 'DEMO' among Indian scientific circles has already been conceived. A group of eminent scientists fromInstitute for Plasma Research is working towards making of a full-fledged fusion reactor capable of producing electricity. Many new features like D-T plasma, Test Blanket Module, Biological shielding and an improved divertor will be incorporated in SST-2. SST-2 will also be built in the Indian state ofGujarat. The land acquisition and other basic formalities have been completed for the same.

Other fusion reactors

[edit]

Other designs offusion reactor areDEMO,[7]Wendelstein 7-X,[8]NIF,[9]HiPER,[10]JET (precursor to ITER),[11] andMAST.[12]

See also

[edit]

References

[edit]
  1. ^Srinivasan, R. (2015)."Progress on design of SST-2 fusion reactor".Proceedings of the Thirtieth National Symposium on Plasma Science and Technology: Book of Abstracts.
  2. ^"India keen to join ITER project - The Economic Times".The Times Of India. 17 August 2005.
  3. ^"ITER - India : ITER-India ===".www.iter-india.org. Archived fromthe original on 2009-03-07.
  4. ^abInt'l Tokamak research:SST-1
  5. ^abSST-1 General InformationArchived 2016-01-19 at theWayback Machine
  6. ^"Archived copy". Archived fromthe original on 2012-02-13. Retrieved2012-01-14.{{cite web}}: CS1 maint: archived copy as title (link)
  7. ^"Beyond ITER". iter.org. Archived fromthe original on 2009-05-20.
  8. ^"Wendelstein 7-X".Max-Planck-Institut für Plasmaphysik. 3 April 2009. Archived fromthe original on 21 May 2009. Retrieved29 May 2009.
  9. ^"National Ignition Facility & Photon Science".Lawrence Livermore National Laboratory. Retrieved29 May 2009.
  10. ^"HiPER". HiPER Project. 2009. Archived fromthe original on 3 March 2011. Retrieved29 May 2009.
  11. ^"EFDA-JET".EFDA. 2009. Archived fromthe original on 23 July 2009. Retrieved29 May 2009.
  12. ^"MAST".Mega Ampere Spherical Tokamak. 2010. Archived fromthe original on 13 February 2010. Retrieved1 February 2010.
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