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Please use this identifier to cite or link to this item: http://arks.princeton.edu/ark:/88435/dsp018910jx38x
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dc.contributor.authorLunsford, Robert-
dc.contributor.authorRaman, Roger-
dc.contributor.authorBrooks, Arthur-
dc.contributor.authorEllis, Robert A.-
dc.contributor.authorLay, W-S;-
dc.date.accessioned2019-06-12T19:06:07Z-
dc.date.available2019-06-12T19:06:07Z-
dc.date.issued2019-06-
dc.identifier.urihttp://arks.princeton.edu/ark:/88435/dsp018910jx38x-
dc.description.abstractThe Electromagnetic Particle Injector (EPI) concept is advanced through the simulation of ablatant deposition into ITER H-mode discharges with calculations showing penetration past the H-mode pedestal for a range of injection velocities and granule sizes concurrent with the requirements of disruption mitigation. As discharge stored energy increases in future fusion devices such as ITER, control and handling of disruption events becomes a critical issue. An unmitigated disruption could lead to failure of the plasma facing components resulting in financially and politically costly repairs. Methods to facilitate the quench of an unstable high current discharge are required. With the onset warning time for some ITER disruption events estimated to be less than 10 ms, a disruption mitigation system needs to be considered which operates at injection speeds greater than gaseous sound speeds. Such an actuator could then serve as a means to augment presently planned pneumatic injection systems. The EPI uses a rail gun concept whereby a radiative payload is delivered into the discharge by means of the JxB forces generated by an external current pulse, allowing for injection velocities in excess of 1 km/s. The present status of the EPI project is outlined, including the addition of boost magnetic coils. These coils augment the self-generated rail gun magnetic field and thus provide a more efficient acceleration of the payload. The coils and the holder designed to constrain them have been modelled with the ANSYS code to ensure structural integrity through the range of operational coil cuen_US
dc.description.tableofcontentsreadme and digital data filesen_US
dc.language.isoen_USen_US
dc.publisherPrinceton Plasma Physics Laboratory, Princeton Universityen_US
dc.relationFusion Science and Technologyen_US
dc.subjectElectromagnetic Particle Injectoren_US
dc.subjectrail gunen_US
dc.subjectITERen_US
dc.subjectdisruptionen_US
dc.titleModelling of Ablatant Deposition from Electromagnetically Driven Radiative Pellets for Disruption Mitigation Studiesen_US
dc.typeDataseten_US
dc.contributor.funderU. S. Department of Energyen_US
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