Neutral-beam injectionNeutral-beam injection (NBI) is one method used to heat plasma inside a fusion device consisting in a beam of high-energy neutral particles that can enter the magnetic confinement field. When these neutral particles are ionized by collision with the plasma particles, they are kept in the plasma by the confining magnetic field and can transfer most of their energy by further collisions with the plasma. By tangential injection in the torus, neutral beams also provide momentum to the plasma and current drive, one essential feature for long pulses of burning plasmas.
Reversed field pinchA reversed-field pinch (RFP) is a device used to produce and contain near-thermonuclear plasmas. It is a toroidal pinch which uses a unique magnetic field configuration as a scheme to magnetically confine a plasma, primarily to study magnetic confinement fusion. Its magnetic geometry is somewhat different from that of the more common tokamak. As one moves out radially, the portion of the magnetic field pointing toroidally reverses its direction, giving rise to the term reversed field.
Z-pinchLes machines à striction axiale (ou appelées aussi Z-pinch) présentent l'une des méthodes de confinement inertiel en cours d'investigation pour le contrôle de la fusion nucléaire. vignette|L'un des principes du Z-Pinch : le courant dans la direction Z provoque un champ B dans la direction θ (selon la loi d'Ampère). Ici, le courant est représenté en jaune et le champ B qu'il génère est indiqué en violet.
Toroidal and poloidal coordinatesThe terms toroidal and poloidal refer to directions relative to a torus of reference. They describe a three-dimensional coordinate system in which the poloidal direction follows a small circular ring around the surface, while the toroidal direction follows a large circular ring around the torus, encircling the central void. The earliest use of these terms cited by the Oxford English Dictionary is by Walter M.
Guiding centerIn physics, the motion of an electrically charged particle such as an electron or ion in a plasma in a magnetic field can be treated as the superposition of a relatively fast circular motion around a point called the guiding center and a relatively slow drift of this point. The drift speeds may differ for various species depending on their charge states, masses, or temperatures, possibly resulting in electric currents or chemical separation.
Kink instabilityA kink instability (also kink oscillation or kink mode), is a current-driven plasma instability characterized by transverse displacements of a plasma column's cross-section from its center of mass without any change in the characteristics of the plasma. It typically develops in a thin plasma column carrying a strong axial current which exceeds the Kruskal–Shafranov limit and is sometimes known as the Kruskal–Shafranov (kink) instability. The kink instability was first widely explored in fusion power machines with Z-pinch configurations in the 1950s.
Plasma confinementIn plasma physics, plasma confinement refers to the act of maintaining a plasma in a discrete volume. Confining plasma is required in order to achieve fusion power. There are two major approaches to confinement: magnetic confinement and inertial confinement.
Centre CEA de CadaracheLe centre CEA de Cadarache est le plus grand centre de recherche et développement en Europe sur les énergies bas carbone. Il fait partie des neuf centres du Commissariat à l'énergie atomique et aux énergies alternatives (CEA) implantés sur le territoire français, réunissant . Installé en Provence-Alpes-Côte d'Azur, sur la commune de Saint-Paul-lès-Durance, le centre CEA de Cadarache est au cœur de la transition énergétique avec ses instituts de recherche et plateformes expérimentales dans le domaine des énergies bas-carbone : énergie nucléaire (fission, fusion), bioénergies et énergies solaires.
Bohm diffusionThe diffusion of plasma across a magnetic field was conjectured to follow the Bohm diffusion scaling as indicated from the early plasma experiments of very lossy machines. This predicted that the rate of diffusion was linear with temperature and inversely linear with the strength of the confining magnetic field. The rate predicted by Bohm diffusion is much higher than the rate predicted by classical diffusion, which develops from a random walk within the plasma. The classical model scaled inversely with the square of the magnetic field.
Focalisateur de plasma denseUn focalisateur de plasma dense (en anglais dense plasma focus, abrégé DPF), est un appareil qui, par accélération et compression électromagnétiques, donne naissance à un cordon de plasma à vie courte qui produit, grâce aux températures et densités très élevées qu'il atteint, une abondance de rayonnements multiples. Sa conception, qui date du début des années 1960, est due à la fois à l'Américain J.W. Mather et au Russe N.V. Filippov, qui l'ont inventé parallèlement et indépendamment l'un de l'autre.