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Simulating streamer discharges in 3D can computationally be very expensive, which is why 2D Cartesian simulations are sometimes used instead, especially when dealing with complex geometries. Although 2D Cartesian simulations can only be…

等离子体物理 · 物理学 2024-01-24 Zhen Wang , Anbang Sun , Jannis Teunissen

Positive streamers need a source of free electrons ahead of them to propagate. A streamer can supply these electrons by itself through photo-ionization, or the electrons can be present due to external background ionization. Here we…

等离子体物理 · 物理学 2011-11-01 S. Nijdam , G. Wormeester , E. M. van Veldhuizen , U. Ebert

We present hydrodynamical simulations of the photoevaporation of a cloud with large-scale density gradients, giving rise to an ionized, photoevaporation flow. The flow is found to be approximately steady during the large part of its…

天体物理学 · 物理学 2009-11-11 W. J. Henney , S. J. Arthur , Ma. T. Garcia-Diaz

The numerical simulation of the development of a streamer discharge in a gap with an external longitudinal magnetic field was used to demonstrate the self-focusing of such discharges. Self-focusing is caused by a sharp deceleration of the…

等离子体物理 · 物理学 2021-06-02 Andrey Starikovskiy , Nickolay Aleksandrov , Mikhail Shneider

This study investigates the spatio-temporal evolution of the electric field during the early stages of a nanosecond positive corona discharge in atmospheric-pressure air by combining time-resolved E-FISH measurements,…

等离子体物理 · 物理学 2026-01-12 Mhedine Alicherif , Edwin Sugeng , Zhijan Yang , Deanna A. Lacoste , Tat Loon Chng

We investigate the propagation of positive streamers in CO$_2$ through 3D particle-in-cell simulations, which are qualitatively compared against experimental results at 50 mbar. The experiments show that CO$_2$ streamers are much more…

等离子体物理 · 物理学 2024-10-22 Xiaoran Li , Siebe Dijcks , Anbang Sun , Sander Nijdam , Jannis Teunissen

A variational theory is developed to study electrolyte solutions, composed of interacting point-like ions in a solvent, in the presence of dielectric discontinuities and charges at the boundaries. Three important and non-linear…

软凝聚态物质 · 物理学 2013-05-29 Sahin Buyukdagli , Manoel Manghi , John Palmeri

Photo-ionization is the accepted mechanism for the propagation of positive streamers in air though the parameters are not very well known; the efficiency of this mechanism largely depends on the presence of both nitrogen and oxygen. But…

等离子体物理 · 物理学 2010-12-07 Gideon Wormeester , Sergey Pancheshnyi , Alejandro Luque , Sander Nijdam , Ute Ebert

We study water between parallel metal walls under applied electric field accounting for the image effect at $T=298$ K. The electric field due to the surface charges serves to attract and orient nearby water molecules, while it tends to a…

软凝聚态物质 · 物理学 2015-07-24 Kyohei Takae , Akira Onuki

We study how the choice of input data affects simulations of positive streamers in humid air, focusing on H2O cross sections, photoionization models, and chemistry sets. Simulations are performed in air with a mole fraction of 0%, 3% or 10%…

等离子体物理 · 物理学 2025-02-13 Baohong Guo , Hemaditya Malla , Alejandro Malagon-Romero , Jannis Teunissen

The flow of ions through permeable channels causes voltage drop in physiological nanodomains such as synapses, dendrites and dendritic spines, and other protrusions. How the voltage changes around channels in these nanodomains has remained…

软凝聚态物质 · 物理学 2025-01-10 Frédéric Paquin-Lefebvre , David Holcman

We study negative streamers in ambient air using a 2D axisymmetric fluid model. Depending on the background electric field, we observe accelerating, steady and fading negative streamers. Fading occurs in low background fields, when negative…

等离子体物理 · 物理学 2023-08-03 Baohong Guo , Xiaoran Li , Ute Ebert , Jannis Teunissen

Streamer discharges are the primary mode of electric breakdown of air in lightning and high voltage technology. Streamer channels branch many times, which determines the developing tree-like discharge structure. Understanding these branched…

A numerical simulation of evolution of an identical interacting streamers array in semiconductors has been performed using the diffusion-drift approximation and taking into account the impact and tunnel ionization. It has been assumed that…

其他凝聚态物理 · 物理学 2017-11-22 Alexander Kyuregyan

Controlling streamer morphology is important for numerous applications. Up to now, the effect of the voltage rise rate was only studied across a wide range. Here we show that even slight variations in the voltage rise can have significant…

等离子体物理 · 物理学 2012-12-18 T. T. J. Clevis , S Nijdam , U Ebert

In this work, we aim to take a detailed experimental picture of the positive streamer. We apply optical emission spectroscopy to the first negative system (FNS, ${\rm B}^2\Sigma_{\rm u}^+\rightarrow {\rm X}^2\Sigma_{\rm g}^+$) of N$_2^+$…

等离子体物理 · 物理学 2023-05-04 Siebe Dijcks , Lukáš Kusýn , Jesper Janssen , Petr Bílek , Sander Nijdam , Tomáš Hoder

In this paper we study the effects of photoionization processes on the propagation of both negative and positive streamer discharges. We show that negative fronts accelerate in the presence of photoionization events. The appearance and…

等离子体物理 · 物理学 2007-05-23 M. Arrayas , M. A. Fontelos , J. L. Trueba

Streamer electrical discharges are often investigated with computer simulations of density models (also called drift-diffusion-reaction models). We review these models, detailing their physical foundations, their range of validity and the…

等离子体物理 · 物理学 2011-12-01 Alejandro Luque , Ute Ebert

The origin of enhanced reactivity in aqueous microdroplets remains debated, with interfacial electric fields (IEFs) often invoked as catalytic drivers. Here, we provide a quantum-mechanical, spatially resolved characterization of the…

We propose a fully ab initio theory to compute the electron density response under the perturbation in the local field. This method is based on our recently developed local dielectric response theory [Phys. Rev. B 92, 241107(R), 2015],…

材料科学 · 物理学 2020-02-18 Xiaochuan Ge , Deyu Lu