The National Compact Stellarator Experiment (NCSX) is a proof-of-principle experiment whose objective is to demonstrate high beta operation in a quasi-axisymmetric stellarator. NCSX will be housed in the Princeton Beta Experiment (PBX-M) test cell. Many of the existing site assets including the test cell, TF and PF coils, power supplies, neutral beam heating systems, and site utilities can be re-used, minimizing the cost of the project. Saddle coils are used in the reference design. The stellarator core is pre-fabricated and dropped into place on the PBX-M platform. The existing TF and PF coils are then reassembled around the stellarator core. Alternate coil topologies are also being explored
Compact quasi-axisymmetric stellarators offer the possibility of combining the steady-state low-reci...
High-beta, low-aspect-ratio (compact) stellarators are promising solutions to the problem of develop...
The National Compact Stellarator Experiment (NCSX) will require 6 MW of 50 keV neutral beam injectio...
Abstract — Stellarators use 3D plasma and magnetic field shaping to produce a steady-state disruptio...
NCSX [National Compact Stellarator Experiment] is the first of a new class of stellarators called co...
Compact stellarators have the potential to make steady-state, disruption-free magnetic fusion system...
Stellarators use 3D plasma and magnetic field shaping to produce a steady-state disruption-free magn...
A number of technical requirements and performance criteria can drive stellarator costs, e.g., tight...
The National Compact Stellarator Experiment (NCSX) will study the physics of low aspect ratio, high ...
number of technical requirements and performance criteria can drive stellarator costs, e.g., tight t...
A number of technical requirements and performance criteria can drive stellarator costs, e.g., tight...
The National Compact Stellarator Experiment (NCSX) was being constructed at the Princeton Plasma Phy...
The National Compact Stellarator Experiment (NCSX) is being constructed at the Princeton Plasma Phys...
The National Compact Stellarator Experiment, NCSX, is being constructed at the Princeton Plasma Phys...
The National Compact Stellarator Experiment (NCSX) was designed to test a compact, quasiaxisymmetric...
Compact quasi-axisymmetric stellarators offer the possibility of combining the steady-state low-reci...
High-beta, low-aspect-ratio (compact) stellarators are promising solutions to the problem of develop...
The National Compact Stellarator Experiment (NCSX) will require 6 MW of 50 keV neutral beam injectio...
Abstract — Stellarators use 3D plasma and magnetic field shaping to produce a steady-state disruptio...
NCSX [National Compact Stellarator Experiment] is the first of a new class of stellarators called co...
Compact stellarators have the potential to make steady-state, disruption-free magnetic fusion system...
Stellarators use 3D plasma and magnetic field shaping to produce a steady-state disruption-free magn...
A number of technical requirements and performance criteria can drive stellarator costs, e.g., tight...
The National Compact Stellarator Experiment (NCSX) will study the physics of low aspect ratio, high ...
number of technical requirements and performance criteria can drive stellarator costs, e.g., tight t...
A number of technical requirements and performance criteria can drive stellarator costs, e.g., tight...
The National Compact Stellarator Experiment (NCSX) was being constructed at the Princeton Plasma Phy...
The National Compact Stellarator Experiment (NCSX) is being constructed at the Princeton Plasma Phys...
The National Compact Stellarator Experiment, NCSX, is being constructed at the Princeton Plasma Phys...
The National Compact Stellarator Experiment (NCSX) was designed to test a compact, quasiaxisymmetric...
Compact quasi-axisymmetric stellarators offer the possibility of combining the steady-state low-reci...
High-beta, low-aspect-ratio (compact) stellarators are promising solutions to the problem of develop...
The National Compact Stellarator Experiment (NCSX) will require 6 MW of 50 keV neutral beam injectio...