Simulation and modeling of the Gamble II self-pinched ion beam transport experiment

Summary form only given. Progress in numerical simulations and modeling of the self-pinched ion beam transport experiment at the Naval Research Laboratory (NRL) is reviewed. In the experiment, a 1.2-MeV, 100-kA proton beam enters a 1-m long, transport region filled with a low pressure gas (30 250 mT...

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Hauptverfasser: Rose, D.V., Ottinger, P.F., Hinshelwood, D.D., Mosher, D., Myers, M.C., Neri, J.M., Stephanakis, S.J., Weber, B.V., Young, F.C., Welch, D.R.
Format: Tagungsbericht
Sprache:eng
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Zusammenfassung:Summary form only given. Progress in numerical simulations and modeling of the self-pinched ion beam transport experiment at the Naval Research Laboratory (NRL) is reviewed. In the experiment, a 1.2-MeV, 100-kA proton beam enters a 1-m long, transport region filled with a low pressure gas (30 250 mTorr helium, or 1 Torr air). The time-dependent velocity distribution function of the injected ion beam is determined from an orbit code that uses a pinch-reflex ion diode model and the measured voltage and current from this diode on the Gamble II generator at NRL. This distribution function is used as the beam input condition for numerical simulations carried out using the hybrid particle-in-cell code IPROP. Results of the simulations will be described, and detailed comparisons will be made with various measurements, including line-integrated electron-density, proton-fluence, and beam radial-profile measurements. As observed in the experiment, the simulations show evidence of self-pinching for helium pressures between 35 and 80 mTorr. Simulations and measurements in 1 Torr air show ballistic transport. The relevance of these results to ion-driven inertial confinement fusion will be discussed.
ISSN:0730-9244
2576-7208
DOI:10.1109/PLASMA.1999.829457