Javascript must be enabled to continue!
Swift generator for 3D magnetohydrodynamic turbulence
View through CrossRef
Turbulent states of motion are almost unavoidable in fluids, gases, and plasmas. The ubiquitous presence of turbulence largely contributes to the central role that its study holds in many research fields. This work focuses on space and astrophysical plasmas, where magnetohydrodynamic turbulence is observed nearly everywhere. However, it builds on an issue that is shared by all turbulence-related field of studies: direct numerical simulations (DNS), required to verify turbulent states properties such as scaling law behaviors, require substantial computing resources.The presentation will introduce the audience to BxC[1], an analytic generator of realistic-looking turbulent magnetic fields, that computes 3D O(10003 grid points) solenoidal vector fields in minutes to hours on desktops. The model is inspired by recent developments in 3D incompressible fluid turbulence theory: intermittent, multifractal random fields are generated through non-linear transformations of a Gaussian white noise vector, combined to specifically designed geometrical constructions. Furthermore, the model is implemented starting from a modified Biot-Savart law, which allows for a clear interpretation of the BxC parameters.The turbulent magnetic field realized with BxC is then compared and validated against a much more computationally expensive DNS in terms of: (i) characteristic sheet-like structures of current density, (ii) volume-filling aspects across current intensity, (iii) power-spectral behaviour, (iv) probability distribution functions of increments for magnetic field and current density, structure functions, spectra of exponents, and (v) partial variance of increments. [1] Durrive, J.-B., Changmai, M., Keppens, R., Lesaffre, P., Maci, D., and Momferatos, G. (2022). Swift generator for three-dimensional magnetohydrodynamic turbulence. Phys. Rev. E, 106:025307
Title: Swift generator for 3D magnetohydrodynamic turbulence
Description:
Turbulent states of motion are almost unavoidable in fluids, gases, and plasmas.
The ubiquitous presence of turbulence largely contributes to the central role that its study holds in many research fields.
This work focuses on space and astrophysical plasmas, where magnetohydrodynamic turbulence is observed nearly everywhere.
However, it builds on an issue that is shared by all turbulence-related field of studies: direct numerical simulations (DNS), required to verify turbulent states properties such as scaling law behaviors, require substantial computing resources.
The presentation will introduce the audience to BxC[1], an analytic generator of realistic-looking turbulent magnetic fields, that computes 3D O(10003 grid points) solenoidal vector fields in minutes to hours on desktops.
The model is inspired by recent developments in 3D incompressible fluid turbulence theory: intermittent, multifractal random fields are generated through non-linear transformations of a Gaussian white noise vector, combined to specifically designed geometrical constructions.
Furthermore, the model is implemented starting from a modified Biot-Savart law, which allows for a clear interpretation of the BxC parameters.
The turbulent magnetic field realized with BxC is then compared and validated against a much more computationally expensive DNS in terms of: (i) characteristic sheet-like structures of current density, (ii) volume-filling aspects across current intensity, (iii) power-spectral behaviour, (iv) probability distribution functions of increments for magnetic field and current density, structure functions, spectra of exponents, and (v) partial variance of increments.
 [1] Durrive, J.
-B.
, Changmai, M.
, Keppens, R.
, Lesaffre, P.
, Maci, D.
, and Momferatos, G.
(2022).
Swift generator for three-dimensional magnetohydrodynamic turbulence.
Phys.
Rev.
E, 106:025307.
Related Results
Inner Flow Field PIV Measurement and Study on Turbulence Generator of Medium Consistency Pump
Inner Flow Field PIV Measurement and Study on Turbulence Generator of Medium Consistency Pump
In order to study the flow characteristic in turbulence generator of medium consistency pump, a new particle image velocimetry (PIV) test rig was established. 2D-plane flow field w...
Quantum turbulence
Quantum turbulence
Abstract
Chapter 5 delves into quantum turbulence in superfluid helium and atomic Bose-Einstein condensates (BECs). The foundation of quantum turbulence research ...
Stagnation Region Heat Transfer Augmentation at Very High Turbulence Levels
Stagnation Region Heat Transfer Augmentation at Very High Turbulence Levels
A database for stagnation region heat transfer has been extended to include heat transfer measurements acquired downstream from a new high intensity turbulence generator. This work...
Impact of magneto-rotational instability on grain growth in protoplanetary disks
Impact of magneto-rotational instability on grain growth in protoplanetary disks
Grain growth in protoplanetary disks is the first step towards planet formation. One of the most important pieces in the grain growth model is calculating the collisional velocity ...
Characteristic parameters of adaptive optical imaging system in oceanic turbulence
Characteristic parameters of adaptive optical imaging system in oceanic turbulence
Since recently one is interested in underwater communications, imaging, sensing and lidar appeared, it is important to study characteristic parameters of the adaptive optical imagi...
Analisa Pengaruh Tegangan Harmonik Terhadap Regulasi Tegangan Eksitasi Generator Satu Fasa
Analisa Pengaruh Tegangan Harmonik Terhadap Regulasi Tegangan Eksitasi Generator Satu Fasa
Esensinya setiap generator listrik satu fasa maupun tiga fasa telah dilengkapi dengan sistem eksitasi. Sistem eksitasi generator ada tiga, yaitu sistem eksitasi statis, dinamis, da...
Unraveling the lidar-turbulence paradox
Unraveling the lidar-turbulence paradox
The meteorological community, and in particular the wind energy community, have been trying to establish a methodology to correct/convert turbulence measures derived from measureme...
Magnetoclinicity: Density variance effects in large-scale instability in magnetohydrodynamic turbulence
Magnetoclinicity: Density variance effects in large-scale instability in magnetohydrodynamic turbulence
<p>In the presence of strong compressibility an oblique configuration between the mean density gradient and magnetic field contributes to the electromotive force [1,2...

