Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Magnetosphere simulations with ideal MHD, Hall MHD and the MHD with Adaptively Embedded Particle-in-Cell (MHD-AEPIC) models

View through CrossRef
<p>The Magnetohydrodynamic with Embedded Particle-In-Cell (MHD-EPIC) model has been developed and applied successfully to Earth, Mercury, Mars and Ganymede magnetosphere simulations. While MHD-EPIC is many orders of magnitude faster than a fully kinetic global model, it can become prohibitively slow if the potential region of interest where kinetic phenomena, such as magnetic reconnection, can occur is large. This is due to the fact that the PIC domain in MHD-EPIC is restricted to a set of static Cartesian boxes. For example, a very large PIC box would be needed to accommodate the flapping motion of the magnetotail current sheet during a geomagnetic storm simulation. To tackle this problem, we have developed a new MHD with Adaptively Embedded Particle-In-Cell (MHD-AEPIC) model. MHD-AEPIC inherits all numerical algorithms from MHD-EPIC and incorporates a new adaptive PIC model, the Flexible Kinetic Simulator (FLEKS). FLEKS allows the PIC cells to be activated and deactivated during a simulation. The coupling between the MHD model and the adaptive PIC grid has been developed and implemented into the Space Weather Modeling Framework. We have also developed physics-based criteria to identify potential reconnection sites, which makes the adaptation fully automatic. In this work, we apply the new MHD-AEPIC model to a geomagnetic storm simulation and demonstrate how adaptation makes this simulation feasible. We compare MHD-AEPIC, Hall MHD and ideal MHD simulation results with each other and with observations ranging from electron scales to global scales. In particular, we demonstrate that MHD-AEPIC is capable of reproducing electron-scale physics in a global simulation.</p>
Title: Magnetosphere simulations with ideal MHD, Hall MHD and the MHD with Adaptively Embedded Particle-in-Cell (MHD-AEPIC) models
Description:
<p>The Magnetohydrodynamic with Embedded Particle-In-Cell (MHD-EPIC) model has been developed and applied successfully to Earth, Mercury, Mars and Ganymede magnetosphere simulations.
While MHD-EPIC is many orders of magnitude faster than a fully kinetic global model, it can become prohibitively slow if the potential region of interest where kinetic phenomena, such as magnetic reconnection, can occur is large.
This is due to the fact that the PIC domain in MHD-EPIC is restricted to a set of static Cartesian boxes.
For example, a very large PIC box would be needed to accommodate the flapping motion of the magnetotail current sheet during a geomagnetic storm simulation.
To tackle this problem, we have developed a new MHD with Adaptively Embedded Particle-In-Cell (MHD-AEPIC) model.
MHD-AEPIC inherits all numerical algorithms from MHD-EPIC and incorporates a new adaptive PIC model, the Flexible Kinetic Simulator (FLEKS).
FLEKS allows the PIC cells to be activated and deactivated during a simulation.
The coupling between the MHD model and the adaptive PIC grid has been developed and implemented into the Space Weather Modeling Framework.
We have also developed physics-based criteria to identify potential reconnection sites, which makes the adaptation fully automatic.
In this work, we apply the new MHD-AEPIC model to a geomagnetic storm simulation and demonstrate how adaptation makes this simulation feasible.
We compare MHD-AEPIC, Hall MHD and ideal MHD simulation results with each other and with observations ranging from electron scales to global scales.
In particular, we demonstrate that MHD-AEPIC is capable of reproducing electron-scale physics in a global simulation.
</p>.

Related Results

Do Mercury's Dipolarization Fronts Originate From Flux Ropes? MHD-AEPIC Simulations and Observations of Mercury's Magnetosphere
Do Mercury's Dipolarization Fronts Originate From Flux Ropes? MHD-AEPIC Simulations and Observations of Mercury's Magnetosphere
Mercury’s small magnetosphere and strong solar wind driving results in short-lived, highly dynamic substorms where large amounts of magnetic flux is processed in the magnetotail th...
Complex Collision Tumors: A Systematic Review
Complex Collision Tumors: A Systematic Review
Abstract Introduction: A collision tumor consists of two distinct neoplastic components located within the same organ, separated by stromal tissue, without histological intermixing...
Frequency of Common Chromosomal Abnormalities in Patients with Idiopathic Acquired Aplastic Anemia
Frequency of Common Chromosomal Abnormalities in Patients with Idiopathic Acquired Aplastic Anemia
Objective: To determine the frequency of common chromosomal aberrations in local population idiopathic determine the frequency of common chromosomal aberrations in local population...
The Magnetosphere of Uranus
The Magnetosphere of Uranus
This is an advance summary of a forthcoming article in the Oxford Research Encyclopedia of Planetary Science. Please check back later for the full article. ...
Particle Acceleration in Earth’s Global Magnetosphere: a Multiple Step Process
Particle Acceleration in Earth’s Global Magnetosphere: a Multiple Step Process
<p>Particle velocity distribution functions measured by spacecraft show that suprathermal ion and electron populations are a common feature of Earth’s m...
Analysis of energetic particle-driven Alfvénic instabilities in tokamak and stellarator plasmas using three dimensional numerical tools
Analysis of energetic particle-driven Alfvénic instabilities in tokamak and stellarator plasmas using three dimensional numerical tools
In this thesis, a detailed analysis of the experientially observed energetic particle-driven Alfvénic instabilities in tokamak and stellarator plasmas using three dimensional numer...
Interplanetary magnetic field control of the entry of solar energetic particles into the magnetosphere
Interplanetary magnetic field control of the entry of solar energetic particles into the magnetosphere
We have investigated the entry of energetic ions of solar origin into the magnetosphere as a function of the interplanetary magnetic field orientation. We have modeled this entry b...
MARS-seq2.0: an experimental and analytical pipeline for indexed sorting combined with single-cell RNA sequencing v1
MARS-seq2.0: an experimental and analytical pipeline for indexed sorting combined with single-cell RNA sequencing v1
Human tissues comprise trillions of cells that populate a complex space of molecular phenotypes and functions and that vary in abundance by 4–9 orders of magnitude. Relying solely ...

Back to Top