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Stand-off runaway electron beam termination by tungsten particulates for tokamak disruption mitigation

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arxiv 2310.16998 v1 pith:3FJKJNQE submitted 2023-10-25 physics.plasm-ph

Stand-off runaway electron beam termination by tungsten particulates for tokamak disruption mitigation

classification physics.plasm-ph
keywords runawaytungstenparticulatesterminationbeamelectronmitigationscheme
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Stand-off runaway electron termination by injected tungsten particulates offers a plausible option in the toolbox of disruption mitigation. Tungsten is an attractive material choice for this application due to large electron stopping power and high melting point. To assess the feasibility of this scheme, we simulate runaway collisions with tungsten particulates using the MCNP program for incident runaway energies ranging from 1 to 10 MeV. We assess runaway termination from energetics and collisional kinematics perspectives. Energetically, the simulations show that 99% of runaway beam energy is removed by tungsten particulates on a timescale of 4-9 $\mu$s. Kinematically, the simulations show that 99% of runaways are terminated by absorption or backscattering on a timescale of 3-4 $\mu$s. By either metric, the runaway beam is effectively terminated before the onset of particulate melting. Furthermore, the simulations show that secondary radiation emission by tungsten particulates does not significantly impact the runaway termination efficacy of this scheme. Secondary radiation is emitted at lower particle energies than the incident runaways and with a broad angular distribution such that the majority of secondary electrons emitted will not experience efficient runaway re-acceleration. Overall, the stand-off runaway termination scheme is a promising concept for last-ditch runaway mitigation in ITER, SPARC, and other future burning-plasma tokamaks.

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