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Anderson Localization of Ballooning Modes, Quantum Chaos and the Stability ofCompact Quasiaxially Symmetric Stellarators

机译:气球模式的anderson定位,量子混沌和紧凑型对称仿星器的稳定性

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The radially local magnetohydrodynamic (MHD) ballooning stability of a compact,quasiaxially symmetric stellarator (QAS), is examined just above the ballooning beta limit with a method that can lead to estimates of global stability. Here MHD stability is analyzed through the calculation and examination of the ballooning mode eigenvalue isosurfaces in the 3-space (s, alpha, theta(subscript)); s is the edge normalized toroidal flux, alpha is the field line variable, and q(subscript) is the perpendicular wave vector or ballooning parameter. Broken symmetry, i.e., deviations from axisymmetry, in the stellarator magnetic field geometry causes localization of the ballooning mode eigenfunction, and gives rise to new types of nonsymmetric eigenvalue isosurfaces in both the stable and unstable spectrum. For eigenvalues far above the marginal point, isosurfaces are topologically spherical, indicative of strong 'quantum chaos.' The complexity of QAS marginal isosurfaces suggests that finite Larmor radius stabilization estimates will be difficult and that fully three-dimensional, high-n MHD computations are required to predict the beta limit.

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