Published May 2010 | Version v1
Journal article

Temperature evolution in a magnetohydrodynamics simulation of a reversed-field pinch

  • 1. Dipartimento di Fisica, Universita della Calabria, ponte P. Bucci, Cubo 31C, 87036 Rende (Italy)

Description

The temperature evolution in a magnetohydrodynamics (MHD) simulation of a reversed-field pinch (RFP) is investigated including thermal conductivity. For numerical reasons, an isotropic thermal conductivity is used, even though in a RFP plasma the parallel conductivity is much larger than the perpendicular one so that magnetic field lines tend to become isothermal. The system shows alternating multiple helicity states and quasi-single helicity states. Single-helical-axis states are formed when the amplitude of the dominant mode is above a determined threshold, as observed in experiments. The relation between heat transport and magnetic field topology that is observed in RFP experiments cannot be found in the simulation, since thermal conductivity is independent of the magnetic field. This difficulty should be taken into account in the numerical investigation of the RFP dynamics. In this paper, the first description of the temperature evolution in a compressible MHD simulation of a RFP is given.

Availability note (English)

Available from http://dx.doi.org/10.1088/0029-5515/50/5/055003

Additional details

Identifiers

DOI
10.1088/0029-5515/50/5/055003;
PII
S0029-5515(10)38752-7;

Publishing Information

Journal Title
Nuclear Fusion
Journal Volume
50
Journal Issue
5
Journal Page Range
[7 p.]
ISSN
0029-5515
CODEN
NUFUAU

INIS

Country of Publication
International Atomic Energy Agency (IAEA)
Country of Input or Organization
International Atomic Energy Agency (IAEA)
INIS RN
42024130
Subject category
S70: PLASMA PHYSICS AND FUSION TECHNOLOGY;
Descriptors DEI
HEAT TRANSFER; HELICITY; MAGNETIC FIELDS; MAGNETOHYDRODYNAMICS; PLASMA SIMULATION; REVERSE-FIELD PINCH; THERMAL CONDUCTIVITY; TOPOLOGY
Descriptors DEC
ENERGY TRANSFER; FLUID MECHANICS; HYDRODYNAMICS; MATHEMATICS; MECHANICS; PARTICLE PROPERTIES; PHYSICAL PROPERTIES; PINCH EFFECT; SIMULATION; THERMODYNAMIC PROPERTIES