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Publications (4 of 4) Show all publications
Demidem, C., Nättilä, J. & Veledina, A. (2023). Relativistic Collisionless Shocks in Inhomogeneous Magnetized Plasmas. Astrophysical Journal Letters, 947(1), Article ID L10.
Open this publication in new window or tab >>Relativistic Collisionless Shocks in Inhomogeneous Magnetized Plasmas
2023 (English)In: Astrophysical Journal Letters, ISSN 2041-8205, E-ISSN 2041-8213, Vol. 947, no 1, article id L10Article in journal (Refereed) Published
Abstract [en]

Relativistic collisionless shocks are associated with efficient particle acceleration when propagating into weakly magnetized homogeneous media; as the magnetization increases, particle acceleration becomes suppressed. We demonstrate that this changes when the upstream carries kinetic-scale inhomogeneities, as is often the case in astrophysical environments. We use fully kinetic simulations to study relativistic perpendicular shocks in magnetized pair plasmas interacting with upstream density perturbations. For amplitudes of δρ/ρ ≳ 0.5, the upstream fluctuations are found to corrugate the shock front and generate large-scale turbulent shear motions in the downstream, which in turn are capable of accelerating particles. This can revive relativistic magnetized shocks as viable energization sites in astrophysical systems, such as jets and accretion disks. The generation of large-scale magnetic structures also has important implications for polarization signals from blazars.

National Category
Fusion, Plasma and Space Physics Astronomy, Astrophysics and Cosmology
Identifiers
urn:nbn:se:su:diva-217345 (URN)10.3847/2041-8213/acc84a (DOI)000973442800001 ()2-s2.0-85153390987 (Scopus ID)
Available from: 2023-06-01 Created: 2023-06-01 Last updated: 2023-06-01Bibliographically approved
Pjanka, P., Demidem, C. & Veledina, A. (2023). Shock Corrugation to the Rescue of the Internal Shock Model in Microquasars: The Single-scale Magnetohydrodynamic View. Astrophysical Journal, 947(2), Article ID 57.
Open this publication in new window or tab >>Shock Corrugation to the Rescue of the Internal Shock Model in Microquasars: The Single-scale Magnetohydrodynamic View
2023 (English)In: Astrophysical Journal, ISSN 0004-637X, E-ISSN 1538-4357, Vol. 947, no 2, article id 57Article in journal (Refereed) Published
Abstract [en]

Questions regarding the energy dissipation in astrophysical jets remain open to date, despite numerous attempts to limit the diversity of the models. Some of the most popular models assume that energy is transferred to particles via internal shocks, which develop as a consequence of the nonuniform velocity of the jet matter. In this context, we study the structure and energy deposition of colliding plasma shells, focusing our attention on the case of initially inhomogeneous shells. This leads to the formation of distorted (corrugated) shock fronts-a setup that has recently been shown to revive particle acceleration in relativistic magnetized perpendicular shocks. Our study shows that the radiative power of the far downstream of nonrelativistic magnetized perpendicular shocks is moderately enhanced with respect to the flat-shock cases. Based on the decay rate of the downstream magnetic field, we make predictions for multiwavelength polarization properties.

National Category
Astronomy, Astrophysics and Cosmology
Identifiers
urn:nbn:se:su:diva-217006 (URN)10.3847/1538-4357/acbf35 (DOI)000972851100001 ()2-s2.0-85153613187 (Scopus ID)
Available from: 2023-05-23 Created: 2023-05-23 Last updated: 2023-05-24Bibliographically approved
Bresci, V., Lemoine, M., Gremillet, L., Comisso, L., Sironi, L. & Demidem, C. (2022). Nonresonant particle acceleration in strong turbulence: Comparison to kinetic and MHD simulations. Physical Review D: covering particles, fields, gravitation, and cosmology, 106(2), Article ID 023028.
Open this publication in new window or tab >>Nonresonant particle acceleration in strong turbulence: Comparison to kinetic and MHD simulations
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2022 (English)In: Physical Review D: covering particles, fields, gravitation, and cosmology, ISSN 2470-0010, E-ISSN 2470-0029, Vol. 106, no 2, article id 023028Article in journal (Refereed) Published
Abstract [en]

Collisionless, magnetized turbulence offers a promising framework for the generation of nonthermal high-energy particles in various astrophysical sites. Yet, the detailed mechanism that governs particle acceleration has remained subject to debate. By means of 2D and 3D particle-in-cell, as well as 3D (incompressible) magnetohydrodynamic (MHD) simulations, we test here a recent model of nonresonant particle acceleration in strongly magnetized turbulence [Lemoine, Phys. Rev. D 104, 063020 (2021)], which ascribes the energization of particles to their continuous interaction with the random velocity flow of the turbulence, in the spirit of the original Fermi model. To do so, we compare, for a large number of particles that were tracked in the simulations, the predicted and the observed histories of particles momenta. The predicted history is that derived from the model, after extracting from the simulations, at each point along the particle trajectory, the three force terms that control acceleration: the acceleration of the field line velocity projected along the field line direction, its shear projected along the same direction, and its transverse compressive part. Overall, we find a clear correlation between the model predictions and the numerical experiments, indicating that this nonresonant model can successfully account for the bulk of particle energization through Fermi-type processes in strongly magnetized turbulence. We also observe that the parallel shear contribution tends to dominate the physics of energization in the particle-in-cell simulations, while in the magnetohydrodynamic incompressible simulation, both the parallel shear and the transverse compressive term provide about equal contributions.

National Category
Fusion, Plasma and Space Physics
Identifiers
urn:nbn:se:su:diva-209770 (URN)10.1103/PhysRevD.106.023028 (DOI)000842768300008 ()
Available from: 2022-10-10 Created: 2022-10-10 Last updated: 2022-10-21Bibliographically approved
Demidem, C., Lemoine, M. & Casse, F. (2020). Particle acceleration in relativistic turbulence: A theoretical appraisal. Physical Review D, 102(2), Article ID 023003.
Open this publication in new window or tab >>Particle acceleration in relativistic turbulence: A theoretical appraisal
2020 (English)In: Physical Review D, ISSN 1550-7998, E-ISSN 1550-2368, Vol. 102, no 2, article id 023003Article in journal (Refereed) Published
Abstract [en]

We discuss the physics of stochastic particle acceleration in relativistic magnetohydrodynamic (MHD) turbulence, combining numerical simulations of test-particle acceleration in synthetic wave turbulence spectra with detailed analytical estimates. In particular, we study particle acceleration in wavelike isotropic fast mode turbulence, in Alfven and slow Goldreich-Sridhar type wave turbulence (properly accounting for anisotropy effects), including resonance broadening due to wave decay and pitch-angle randomization. At high particle rigidities, the contributions of those three modes to acceleration are comparable to within an order of magnitude, as a combination of several effects (partial disappearance of transit-time damping for fast modes, increased scattering rate for Alfven, and slow modes due to resonance broadening). Additionally, we provide analytical arguments regarding acceleration beyond the regime of MHD wave turbulence, addressing the issue of nonresonant acceleration in a turbulence comprised of structures rather than waves, as well as the issue of acceleration in small-scale parallel electric fields. Finally, we compare our results to the existing literature and provide ready-to-use formulas for applications to high-energy astrophysical phenomenology.

National Category
Physical Sciences
Identifiers
urn:nbn:se:su:diva-183961 (URN)10.1103/PhysRevD.102.023003 (DOI)000544521600005 ()
Available from: 2020-09-23 Created: 2020-09-23 Last updated: 2022-10-21Bibliographically approved
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