Published 2005 | Version v1
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A statistical approach to strange diffusion phenomena

  • 1. Laboratorio Nacional de Fusion, EURATOM-CIEMAT, 28040 Madrid (Spain)
  • 2. Fusion Energy Division, Oak Ridge National Laboratory, P.O. Box 2001, Oak Ridge, TN 37831-2001 (United States)
  • 3. Departamento de Fisica, Universidad Carlos III, Avda. de la Universidad 30, 28911 Leganes (Spain)

Description

The study of particle (and heat) transport in fusion plasmas has revealed the existence of what might be called 'unusual' transport phenomena. Such phenomena are: unexpected scaling of the confinement time with system size, power degradation (i.e. sub-linear scaling of energy content with power input), profile stiffness (also known as profile consistency), rapid transient transport phenomena such as cold and heat pulses (travelling much faster than the diffusive timescale would allow), non-local behaviour and central profile peaking during off-axis heating, associated with unexplained inward pinches. The standard modelling framework, essentially equal to Fick's Law plus extensions, has great difficulty in providing an all-encompassing and satisfactory explanation of all these phenomena. This difficulty has motivated us to reconsider the basics of the modelling of diffusive phenomena. Diffusion is based on the well-known random walk. The random walk is captured in all its generality in the Continuous Time Random Walk (CTRW) formalism. The CTRW formalism is directly related to the well-known Generalized Master Equation, which describes the behaviour of tracer particle diffusion on a very fundamental level, and from which the phenomenological Fick's Law can be derived under some specific assumptions. We show that these assumptions are not necessarily satisfied under fusion plasma conditions, in which case other equations (such as the Fokker-Planck diffusion law or the Master Equation itself) provide a better description of the phenomena. This fact may explain part of the observed 'strange' phenomena (namely, the inward pinch). To show how the remaining phenomena mentioned above may perhaps find an explanation in the proposed alternative modelling framework, we have designed a toy model that incorporates a critical gradient mechanism, switching between rapid (super-diffusive) and normal diffusive transport as a function of the local gradient. It is then demonstrated that this toy model, characterized by both criticality and non-locality, indeed produces the cited phenomena in a natural fashion. (author)

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15. international stellarator workshop 2005. IAEA technical meeting on innovative concepts and theory of stellarators. Abstracts

Additional details

Publishing Information

Imprint Title
15. international stellarator workshop 2005. IAEA technical meeting on innovative concepts and theory of stellarators. Abstracts
Imprint Pagination
[vp.]
Journal Page Range
[1 p.]
Report number
INIS-XA--10K1894

Conference

Title
15. international stellarator workshop 2005; IAEA technical meeting on innovative concepts and theory of stellarators
Dates
3-7 Oct 2005; 10-11 Oct 2005
Place
Madrid (Spain)

INIS

Country of Publication
International Atomic Energy Agency (IAEA)
Country of Input or Organization
International Atomic Energy Agency (IAEA)
INIS RN
41133815
Subject category
S70: PLASMA PHYSICS AND FUSION TECHNOLOGY;
Resource subtype / Literary indicator
Conference
Descriptors DEI
CONFINEMENT TIME; DIFFUSION; FLEXIBILITY; FOKKER-PLANCK EQUATION; GRAPH THEORY; HEAT TRANSFER; PLASMA; POWER INPUT; RANDOMNESS; SIMULATION
Descriptors DEC
DIFFERENTIAL EQUATIONS; ENERGY TRANSFER; EQUATIONS; MATHEMATICS; MECHANICAL PROPERTIES; PARTIAL DIFFERENTIAL EQUATIONS; TENSILE PROPERTIES

Optional Information

Notes
6 refs