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McKenna, P; MacLellan, D A; Butler, N M H; Dance, R J; Gray, R J; Robinson, A P L; Neely, D; Desjarlais, M P, E-mail: paul.mckenna@strath.ac.uk2015
AbstractAbstract
[en] The role of low-temperature electrical resistivity in defining the transport properties of mega-Ampere currents of fast (MeV) electrons in solids is investigated using 3D hybrid particle-in-cell (PIC) simulations. By considering resistivity profiles intermediate to the ordered (lattice) and disordered forms of two example materials, lithium and silicon, it is shown that both the magnitude of the resistivity and the shape of the resistivity-temperature profile at low temperatures strongly affect the self-generated resistive magnetic fields and the onset of resistive instabilities, and thus the overall fast electron beam transport pattern. The scaling of these effects to the giga-Ampere electron currents required for the fast ignition scheme for inertial fusion is also explored. (paper)
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Available from http://dx.doi.org/10.1088/0741-3335/57/6/064001; Country of input: International Atomic Energy Agency (IAEA)
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