Experiments
Experiments glossary term

EXTRAP T2R

Crucial testbed for advanced MHD stability and magnetic feedback control in fusion.

Experiments Also: EXTRAP T2R, extrap-t2r, Extrap-T2R, EXTRAP-T2R RFP Has Dossier → 0 sources

01 Definition

A medium-sized reversed-field pinch magnetic confinement fusion device operated at KTH Royal Institute of Technology in Stockholm.

02 Detailed_Analysis

EXTRAP T2R is an experimental reversed-field pinch (RFP) device located at the Alfvén Laboratory at KTH. Unlike standard tokamaks, it operates with a toroidal magnetic field that reverses sign near the edge plasma. Receiving EURATOM priority status, it is extensively used to investigate resistive wall modes (RWM), MHD equilibrium, plasma-wall interactions, and active magnetic feedback stabilization.

03 Key_Facts

  • Medium-scale reversed-field pinch (RFP) device at KTH Alfvén Laboratory
  • Originally achieved first plasma in 1994; rebuilt with a thin resistive wall in 2000
  • World-leading testbed for active feedback control of resistive wall modes

04 Deep_Dive_Intelligence

Intelligence Summary: EXTRAP T2R Reversed-Field Pinch Device

Node Identity: EXTRAP T2R is a medium-sized reversed-field pinch (RFP) magnetic confinement fusion device located at the Alfvén Laboratory at KTH Royal Institute of Technology in Stockholm. The RFP is an axisymmetric toroidal configuration related to the tokamak but with a fundamentally different spatial dependence of toroidal and poloidal magnetic fields — the toroidal field reverses sign at the edge. EXTRAP T2R received EURATOM priority status in 1990, achieved first plasma operation in 1994, and was rebuilt in 2000 with a new resistive shell enabling studies of resistive wall mode (RWM) stability and active feedback control.

Strategic Relevance: EXTRAP T2R's strategic relevance to the FRC/plasma weapons landscape is indirect but technically significant. The RFP configuration is distinct from both tokamaks and stellarators, providing a flexible test bed for plasma control physics that is directly transferable to advanced tokamak scenarios for ITER/DEMO. The device's state-of-the-art digital feedback control system using arrays of active magnetic field coils represents advanced plasma equilibrium control technology — a capability with inherent dual-use potential for any application requiring precise magnetic field manipulation of high-energy plasmas. The RWM control studies contribute directly to the broader tokamak program, as resistive wall mode control is critical for advanced tokamak scenarios with conducting walls. The device also supports non-fusion applications including plasma waste treatment, plasma generators for surface treatment, and material studies.

Technical Focus / Capabilities: EXTRAP T2R's primary research focus is resistive wall mode (RWM) stability and active feedback control using digital systems with arrays of active magnetic field coils. The device is equipped with state-of-the-art digital feedback control hardware. The experimental program is led by Professor Per Brunsell. Additional research includes RF heating and current drive (using the FEMIC finite element wave solver for ion cyclotron resonance heating, applied to JET and ITER), plasma-wall interaction studies, and space/laboratory plasma physics. The device supports applied plasma research including plasma waste treatment and surface treatment via access ports for sample insertion into the plasma edge.

Network Linkage: EXTRAP T2R maintains 1 documented connection: KTH operates EXTRAP T2R. The device collaborates with Consorzio RFX (Padua, Italy) on RFP physics and with the theory group at Chalmers Department of Electromagnetics on RWM stability and active feedback systems for tokamak configurations. EXTRAP T2R is funded through EUROfusion Sweden and participates in the broader European fusion program. The RF heating group's FEMIC code is applied to JET and ITER scenarios.

07 Related_Entities (6)

08 Timeline_Mentions (10)

1976

Scylla I-C Theta Pinch Experiments

Kenneth F. McKenna reports on basic plasma physics and advanced concepts using the Scylla I-C linear theta pinch at Los Alamos.

fusion-physics
1979

PPPL Compact Toruses Symposium

PPPL symposium consolidating compact toroid (FRC/spheromak) research.

fusion-research
1979

US-Japan Joint Symposium on Compact Toruses

Princeton Plasma Physics Laboratory (PPPL) hosted a collaborative symposium focusing on Spheromaks, FRCs, and relativistic-beam injection, marking a convergence of US and Japanese fusion programs.

fusion-physics
1980-11-10

Ken Shoulders meets Winston Bostick at APS San Diego

Ken Shoulders meets Winston Bostick at the 22nd APS Division of Plasma Physics Annual Meeting in San Diego (November 10-14, 1980). Bostick interests Shoulders in vortex filaments, directly inspiring h

Research
1982

Ninth IAEA Conference on Plasma Physics

The Ninth International Conference on Plasma Physics and Controlled Nuclear Fusion Research is held in Baltimore, Maryland, focusing on Tokamak experiments and plasma heating.

fusion-physics
1983

FRX-C Quadrupole Stabilization Breakthrough

The FRX-C experiment at LANL demonstrates that weak quadrupole magnetic fields can suppress the n=2 rotational instability, extending FRC lifetimes to 300 microseconds.

fusion-physics
1986

Low-Voltage FRC Formation Breakthrough

Hoffman, Slough, and others publish on the formation of FRCs using scalable, low-voltage technology.

fusion-physics
1990-12-01

Avramenko publishes erosion-discharge autonomous plasmoids (ZhTF)

Avramenko et al. report self-confined autonomous plasmoids with ball-lightning-like properties created by erosion discharge in a dielectric-walled cylindrical channel (ZhTF 1990; translation Sov. Phys

Plasma Physics
1992-10-01

Nachamkin Force-Free Plasmoid Model (DTIC ADA257765)

Jack Nachamkin publishes 'Force-Free Time-Harmonic Plasmoids' under AFRL contract F04611-88-C-0020. The paper presents a heretofore unexplored solution of Maxwell's equations for time-harmonic waves i

Plasma Physics
1997-01-01

BMDO Funds ESTS for Missile Defense

The Ballistic Missile Defense Organization awards SBIR BMDO97T003 to Electron Power Systems for ESTS energy storage. The award states: 'This presents an extraordinary opportunity to obtain a breakthro

Funding
View Full Timeline →

09 FAQ

What is EXTRAP T2R?
A medium-sized reversed-field pinch magnetic confinement fusion device operated at KTH Royal Institute of Technology in Stockholm.
Why does EXTRAP T2R matter?
Crucial testbed for advanced MHD stability and magnetic feedback control in fusion.
When did EXTRAP T2R appear in the research timeline?
EXTRAP T2R is referenced in 10 timeline events, including "Scylla I-C Theta Pinch Experiments" (1976). The timeline provides chronological context for the development and application of this concept.
Which entities are associated with EXTRAP T2R?
6 entities are associated with EXTRAP T2R in the network graph, including Princeton Plasma Physics Laboratory, Dr. Glen A. Wurden, James L. Tuck. Explore the network graph for full relationship mapping.
Is there a detailed dossier for EXTRAP T2R?
Yes, EXTRAP T2R has a comprehensive intelligence dossier with deep dive analysis, source documents, and network connections. View the full dossier for complete intelligence assessment.

Quick_Facts

Category
Experiments
Aliases
EXTRAP T2R, extrap-t2r, Extrap-T2R, EXTRAP-T2R RFP
Sources
0
Graph Entities
6
Timeline Events
10