The CHIMERAS project: design framework for the Collisionless HIgh-beta Magnetized Experiment Researching Astrophysical Systems

Seth Dorfman, Sayak Bose, Emily Lichko, Mel Abler, James Juno, Jason TenBarge, Yang Zhang, Saikat Chakraborty Thakur, Carlos Cartagena-Sanchez, Peter Tatum, Earl Scime, Garima Joshi, Samuel Greess, Cameron Kuchta

Research output: Contribution to journalArticlepeer-review

Abstract

From the near-Earth solar wind to the intracluster medium of galaxy clusters, collisionless, high-beta, magnetized plasmas pervade our universe. Energy and momentum transport from large-scale fields and flows to small-scale motions of plasma particles is ubiquitous in these systems, but a full picture of the underlying physical mechanisms remains elusive. The transfer is often mediated by a turbulent cascade of Alfvénic fluctuations as well as a variety of kinetic instabilities; these processes tend to be multi-scale and/or multi-dimensional, which makes them difficult to study using spacecraft missions and numerical simulations alone. Meanwhile, existing laboratory devices struggle to produce the collisionless, high ion beta ((Formula presented)), magnetized plasmas across the range of scales necessary to address these problems. As envisioned in recent community planning documents, it is therefore important to build a next generation laboratory facility to create a (Formula presented), collisionless, magnetized plasma in the laboratory for the first time. A working group has been formed and is actively defining the necessary technical requirements to move the facility towards a construction-ready state. Recent progress includes the development of target parameters and diagnostic requirements as well as the identification of a need for source-target device geometry. As the working group is already leading to new synergies across the community, we anticipate a broad community of users funded by a variety of federal agencies (including National Aeronautics and Space Administration, Department of Energy and National Science Foundation) to make copious use of the future facility.

Original languageEnglish (US)
Article numberE121
JournalJournal of Plasma Physics
Volume91
Issue number4
DOIs
StatePublished - Aug 8 2025

All Science Journal Classification (ASJC) codes

  • Condensed Matter Physics

Keywords

  • astrophysical plasmas
  • plasma devices
  • plasma instabilities
  • plasma nonlinear phenomena
  • space plasma physics

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