Decomposition of plasma kinetic entropy into position and velocity space and the use of kinetic entropy in particle-in-cell simulations
Creators
- Liang, Haoming1
- Cassak, Paul A.1
- Servidio, Sergio2
- Shay, Michael A.3
- Drake, James F.4
- and others
- Lawrence Berkeley National Laboratory (LBNL), Berkeley, CA (United States). National Energy Research Scientific Computing Center (NERSC)
- University of California, Oakland, CA (United States)
- Space Science Institute, Boulder, CO (United States)
- 1. West Virginia University, Morgantown, WV (United States)
- 2. University of Calabria (Italy)
- 3. University of Delaware, Newark, DE (United States)
- 4. University of Maryland, College Park, MD (United States)
Description
In this work, we describe a systematic development of kinetic entropy as a diagnostic in fully kinetic particle-in-cell (PIC) simulations and use it to interpret plasma physics processes in heliospheric, planetary, and astrophysical systems. In the beginning, we calculate kinetic entropy in two forms—the "combinatorial" form related to the logarithm of the number of microstates per macrostate and the "continuous" form related to flnf, where f is the particle distribution function. We discuss the advantages and disadvantages of each and discuss subtleties about implementing them in PIC codes. Using collisionless PIC simulations that are two-dimensional in position space and three-dimensional in velocity space, we verify the implementation of the kinetic entropy diagnostics and discuss how to optimize numerical parameters to ensure accurate results. We show the total kinetic entropy is conserved to three percent in an optimized simulation of antiparallel magnetic reconnection. Kinetic entropy can be decomposed into a sum of a position space entropy and a velocity space entropy, and we use this to investigate the nature of kinetic entropy transport during collisionless reconnection. We find the velocity space entropy of both electrons and ions increases in time due to plasma heating during magnetic reconnection, as the position space entropy decreases due to plasma compression. This project uses collisionless simulations, so it cannot address physical dissipation mechanisms; nonetheless, the infrastructure developed here should be useful for studies of collisional or weakly collisional heliospheric, planetary, and astrophysical systems. Beyond reconnection, the diagnostic is expected to be applicable to plasma turbulence and collisionless shocks.
Availability note (English)
Available from https://www.osti.gov/servlets/purl/1577595; https://www.osti.gov/biblio/1577595; DOE Accepted Manuscript full text, or the publishers Best Available Version will be available free of charge after the embargo periodAdditional details
Identifiers
Publishing Information
- Journal Title
- Physics of Plasmas
- Journal Volume
- 26
- Journal Issue
- 8
- Journal Page Range
- vp.
- ISSN
- 1070-664X
INIS
- Country of Publication
- United States
- Country of Input or Organization
- United States
- INIS RN
- 55005894
- Subject category
- S79: ASTROPHYSICS, COSMOLOGY AND ASTRONOMY; S70: PLASMA PHYSICS AND FUSION TECHNOLOGY;
- Descriptors DEI
- ASTROPHYSICS; COMPUTERIZED SIMULATION; DISTRIBUTION FUNCTIONS; ENTROPY; KINETICS; MAGNETIC RECONNECTION; THREE-DIMENSIONAL CALCULATIONS; TWO-DIMENSIONAL CALCULATIONS
- Descriptors DEC
- FUNCTIONS; PHYSICAL PROPERTIES; PHYSICS; SIMULATION; THERMODYNAMIC PROPERTIES
Optional Information
- Contract/Grant/Project number
- Contract AC02-05CH11231; SC0019315
- Funding organization
- USDOE Office of Science - SC (United States)
- Secondary number(s)
- OSTIID--1577595