Papers › Unveiling a New β-Scaling of the Tearing Instability in Weakly Collisional Plasmas

Unveiling a New β-Scaling of the Tearing Instability in Weakly Collisional Plasmas

16 Mar 2025arXiv:2503.12702links table onlyarchive 2025-07-28

Gabriel L. Ferreira-Santos, Grzegorz Kowal, Diego A. Falceta-Gonçalves

The archive published only this paper's code-link row. Authors, date and abstract are from arXiv's metadata (CC0), read from the Kaggle arXiv metadata snapshot of 2026-09-12 where its title matched the archive's; the title is the archive's.

We investigate the linear tearing instability in weakly collisional plasmas using a non-ideal gyrotropic-MHD framework, uncovering a previously unknown scaling relation for the instability growth rate in high-β environments. Even starting from an isotropic equilibrium, our analysis reveals a β-dependence, with the maximum growth rate scaling as σₘₐₓ τₐ ∝β^(-1/4), challenging the long-held assumption of β-independence inherent in classical MHD formulations. This novel scaling emerges due to self-consistent fluctuations in pressure anisotropy, dynamically induced by perturbations in velocity and magnetic fields. Increasing plasma-β always suppresses the instability, whereas a background pressure anisotropy can either enhance or further suppress it, depending on its sign: for p_(∥,0) < p_(⊥,0) the instability is strengthened, while for p_(∥,0) > p_(⊥,0) it is weakened. Importantly, this effect is not limited to low-collisionality plasmas at high β; it can also manifest in more collisional environments once the strict assumption of pressure isotropy is relaxed. This finding has profound implications for various astrophysical contexts characterized by high β and varying degrees of collisionality, including the solar corona and heliospheric current sheets, planetary magnetospheres, as probed by space missions, and the intracluster medium, where magnetic reconnection critically impacts magnetic field evolution and cosmic ray transport. Our results therefore question the universality of the widely-accepted plasmoid-mediated fast reconnection paradigm and underscore the necessity of incorporating pressure anisotropy effects into reconnection models for accurate representation of astrophysical plasmas.

PaperPDFCode

Code

tberlok/psecas mentioned on GitHubBSD-3-Clause report

Repository list and official/mentioned flags are the archive's, frozen 2025-07-28. Reachability, where shown, is from one Syntology probe window (2026-09-16 to 2026-09-18); repositories not probed show nothing. GitHub stars are not tracked.

Code Syntology ran Syntology

Not run by Syntology. Nothing on this page verifies that the listed code works.

Results from the paper archive 2025-07-28

No leaderboard rows for this paper in the archive.

Report a problem or propose a change · a person checks every report against the paper or source before anything changes; decisions are listed on /corrections